USRE36066E - Use of selected ester oils in drilling fluids and muds - Google Patents

Use of selected ester oils in drilling fluids and muds Download PDF

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Publication number
USRE36066E
USRE36066E US08/506,458 US50645895A USRE36066E US RE36066 E USRE36066 E US RE36066E US 50645895 A US50645895 A US 50645895A US RE36066 E USRE36066 E US RE36066E
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Prior art keywords
invert emulsion
mud
component
drilling
monocarboxylic acid
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US08/506,458
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Heinz Mueller
Claus-Peter Herold
Stephan von Tapavicza
Douglas J. Grimes
Jean-Marc Braun
Stuart P. T. Smith
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BASF Personal Care and Nutrition GmbH
Baroid Ltd
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Henkel AG and Co KGaA
Baroid Ltd
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Priority claimed from DE3842659A external-priority patent/DE3842659A1/en
Priority claimed from US07/759,097 external-priority patent/US5232910A/en
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Priority to US08/506,458 priority Critical patent/USRE36066E/en
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    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K8/00Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
    • C09K8/02Well-drilling compositions
    • C09K8/32Non-aqueous well-drilling compositions, e.g. oil-based
    • C09K8/34Organic liquids

Definitions

  • This invention relates to new drilling fluids based on ester oils and to invert drilling muds based thereon which combine high ecological compatibility with good stability and performance properties.
  • liquid drilling fluids for sinking bores in rock and bringing up the rock cuttings are slightly thickened, water-based or oil-based fluid systems.
  • Oil-based systems are being increasingly used in practice, particularly in offshore drilling or in the penetration of water-sensitive layers.
  • Oil-based drilling fluids are generally used in the form of so-called invert emulsion muds which consist of a three-phase system, namely: oil, water and finely divided additives, including in particular emulsifiers and emulsifier systems, weighting agents, fluid loss additives, alkali reserves, viscosity regulators and the like, for stabilizing the system as a whole and for establishing the desired performance properties.
  • invert emulsion muds consist of a three-phase system, namely: oil, water and finely divided additives, including in particular emulsifiers and emulsifier systems, weighting agents, fluid loss additives, alkali reserves, viscosity regulators and the like, for stabilizing the system as a whole and for establishing the desired performance properties.
  • Full particulars can be found, for example, in the Article by P. A. Boyd et al entitled "New Base Oil Used in Low-Toxicity Oil Muds" in the Journal of Petroleum Technology, 1985, 137 to
  • Oil-based drilling fluids were originally made from diesel oil fractions containing aromatic constituents. For the purposes of detoxification and reducing the ecological problems thus created, it was then proposed to use hydrocarbon fractions substantially free from aromatic compounds--now also known as "nonpolluting oils"--as the continuous oil phase, cf. the literature cited above. Although certain advances were achieved in this way through elimination of the aromatic compounds, a further reduction in the environmental problems caused by drilling fluids of the above type seems to be urgently required. This applies in particular to the sinking of offshore wells for the development of oil and gas sources because the marine ecosystem is particularly sensitive to the introduction of toxic and non-readily degradable substances.
  • the teaching of the present invention is based on the observation that it is in fact possible to produce oil-based invert drilling fluids based on ester oils of high environmental compatibility which correspond in their storage and in-use behavior to the best of the hitherto known oil-based drilling fluids, but have the additional advantage of increased environmental compatibility.
  • esters of monofunctional carboxylic acids with monofunctional alcohols derived from those oils or fats are suitable for the production of such drilling fluids.
  • ester oils of the present type do not in fact show the same in-use behavior as the mineral oil fractions used hitherto based purely on hydrocarbons. In practical application, the ester oils of monofunctional components of the invention undergo partial hydrolysis, resulting in the formation of free fatty acids.
  • the present invention relates to the use of selected esters--flowable and pumpable at temperatures in the range of from 0° to 5° C.--of monofunctional C 2-12 alcohols (alkanols) and olefinically mono- and/or polyunsaturated C16-24 monocarboxylic acids or mixtures thereof with small quantities of other, more especially saturated monocarboxylic acids as the oil phase, or at least a substantial part of the oil phase, of invert drilling muds which contain in a continuous oil phase a disperse aqueous phase and also emulsifiers, weighting agents, fluid loss additives and, if desired, other standard additives together with an alkali (alkaline) reserve, with the proviso that strong hydrophilic bases, such as alkali metal hydroxides and/or diethanolamine, are not used in significant quantities.
  • alkali alkaline
  • Lime calcium hydroxide
  • An addition of lime such as this may be used as the alkali reserve in accordance with the invention.
  • the maximum addition of lime is of the order of 2 lb/bbl (lime/oil mud) and is thus distinctly below the quantities typically used in practice in oil-based invert drilling fluids.
  • the invention relates to mineral-oil-free invert drilling fluids which are suitable for the offshore development of oil and gas sources and, in a continuous oil phase based on ester oils, contain a disperse aqueous phase together with emulsifiers, weighting agents, fluid loss additives and, if desired, other standard additives.
  • the new drilling fluids are characterized in that the oil phase consists at least substantially of esters of monofunctional C 2-12 alcohols and olefinically mono and/or polyunsaturated C 16-24 monocarboxylic acids and in that the w/o emulsion is mildly alkalized and, where lime is added, this alkali reserve preferably does not exceed quantities of about 2 lb/bbl (lime/oil mud).
  • the lime content is preferably slightly below this limit.
  • ester oils selected in accordance with the invention which are intended to form the entire continuous oil phase of the invert drilling muds or at least a substantial part thereof (i.e. over 50% by weight thereof) are discussed first in the following.
  • esters which may be assigned to the class of reaction products of monofunctional carboxylic acids with monofunctional alcohols.
  • carboxylic acids may be derived from unbranched or branched hydrocarbon chains, preferably linear chains.
  • esters of the described type of which more than 70% by weight and preferably more than 80% by weight are derived from olefinically unsaturated C 16-24 carboxylic acids are used.
  • Important natural starting materials are carboxylic acid mixtures which contain at least 90% by weight olefinically unsaturated carboxylic acids in the above C range.
  • the unsaturated carboxylic acids may be mono- and/or polyolefinically unsaturated.
  • the choice of such a comparatively highly unsaturated carboxylic acid component in the ester oils ensures that the ester oils and, ultimately, the final invert emulsions show the rheologic properties required in practice, particularly at relatively low temperatures.
  • the comparatively highly unsaturated ester oils containing 16 to 24 C atoms in the monocarboxylic acid component, which are used in accordance with the invention, have solidification points (pour point and setting point) below -10° C. and more especially below -15° C. in the preferred embodiment.
  • the molecular size of the ester oil prescribed in accordance with the invention ensures that the flashpoints of the ester oils are sufficiently high, being at least 80° C., and generally exceeding a temperature limit of approximately 100° C. Ester oils having flashpoints above 160° C. are preferred. Ester oils of the described type showing high mobility, even at low temperatures, and having flashpoints of 185° C. or higher can be produced without difficulty.
  • preferred ester oils of the described type show a Brookfield (RVT) viscosity at a temperature of 0° to 5° C. of not more than 55 mPa.s and preferably of at most 45 mPa.s or lower. It is possible to adjust values of 30 or even higher, for example in the range of from 20 to 25 mPa.s, at temperatures in the range indicated.
  • RVT Brookfield
  • the first of these sub-classes is based on unsaturated C 16-24 monocarboxylic acids of which no more than about 35% by weight are diolefinically and, optionally, polyolefinically unsaturated. In their case, therefore, the content of di-and polyunsaturated carboxylic acid residues in the ester oil is comparatively limited. Within this sub-class it is preferred that at least about 60% by weight of the carboxylic acid residues are monoolefinically unsaturated.
  • the second sub-class of ester oils of particular significance is derived from C 16-24 unsaturated monocarboxylic acid mixtures of which more than 45% by weight and preferably more than 55% by weight are derived from diolefinically and/or polyolefinically unsaturated acids within the above C range.
  • the most important monoethylenically unsaturated carboxylic acids within the above carbon range are hexadecenoic acids (palmitoleic acid (C 16 )), oleic acid (C 18 ), the related ricinoleic acid (C 18 ) and erucic acid (C 22 ).
  • the most important di-unsaturated carboxylic acid within the range in question here is linoleic acid (C 18 ) while the most important triethylenically unsaturated carboxylic acid is linolenic acid (C 18 ).
  • esters formed from an unsaturated monocarboxylic acid and a monoalcohol can be used as the ester oil in accordance with the invention.
  • esters are the esters of oleic acid, for example of the oleic acid isobutyl ester type. So far as the rheology of the system is concerned and/or for reasons of availability, it is frequently desirable to use esters from acid mixtures. This is of importance so far as meeting the above-stated specifications of the two-classes for preferred ester oils is concerned.
  • Vegetable oils of natural origin of which the hydrolysis or transesterification gives mixtures of carboxylic acids or carboxylic acid esters of the type required here, are for example palm oil, peanut oil, castor oil and, in particular, rapeseed oil.
  • Suitable rapeseed oils are both traditional types of high erucic acid content and also the more modern types of reduced erucic acid content and increased oleic acid content.
  • Ester oils of the first sub-class which correspond to this definition are particularly important for the simple reason that problems possibly arising from the lack of stability to oxidation are reduced.
  • the drilling fluid is of course continuously pump-circulated and, in the process, is brought constantly into contact with atmospheric oxygen, often over a large area and at least slightly elevated temperatures, for the purpose of separating out the rock cuttings brought up, for example by sieving.
  • carboxylic acid mixtures of the second subclass mentioned above are also of considerable practical significance for use in accordance with the invention. This is attributable in part to their broad accessibility from natural fats of animal and/or vegetable origin.
  • Classic examples of oils which have a high content of C 16-18 or C 16-22 carboxylic acids and which, at the same time, contain at least about 45% of at least diethylenically unsaturated carboxylic acids are cottonseed oil, soybean oil, sunflower oil and linseed oil.
  • the tall oil acids isolated during the recovery of cellulose also fall within this range.
  • starting materials of the last type are generally distinguished by more or less large additional contents of resin constituents.
  • a typical animal starting material for the production of corresponding carboxylic acid mixtures is fish oil, particularly herring oil.
  • ester oils used in accordance with the invention can be certain selected individual esters corresponding to the above definition.
  • mixtures of esters of corresponding monocarboxylic acids and monoalcohols will normally be present.
  • the scope of the invention encompasses above all those mixtures which, on the one hand, meet the viscosity requirement according to the invention and of which, on the other hand, at least 50% comprise the monofunctional esters of the olefinically mono- and/or polyunsaturated C 16-24 carboxylic acids.
  • Ester constituents and, in particular, carboxylic acid esters or monofunctional alcohols and monofunctional carboxylic acids of different constitution may be present as minor constituents of the mixture providing the mixture has the required property profile.
  • saturated C 16-18 is carboxylic acids preferably make up no more than 20% by weight and, in particular, no more than 10% by weight of the ester oils.
  • the alcohol radicals or the esters or ester mixtures according to the invention are preferably derived from straight-chain and/or branched-chain saturated alcohols, particular significance being attributed to alcohols containing at least 3 C atoms and, more especially, to alcohols containing up to about 10 C atoms.
  • the alcohols can also be of natural origin, in which case they have normally been obtained from the corresponding carboxylic acids or their esters by hydrogenating reduction.
  • the invention is by no means limited to starting materials of natural origin. Both on the monoalcohol side and on the monocarboxylic acid side, the starting materials of natural origin may be partly or completely replaced by corresponding components of synthetic origin.
  • Typical examples of alcohols are the corresponding oxo alcohols (branched alcohols) and the linear alcohols obtained by the Ziegler process.
  • monocarboxylic acid components present in particular in carboxylic acid mixtures can be derived from petrochemical synthesis.
  • the advantages of starting materials of natural origin lie in particular in their proven lower toxicologic values, their ready degradability and their ready accessibility.
  • the natural destruction of the used oil mud ultimately required presupposes that ester oils of the type described herein be both aerobically and anaerobically degradable.
  • Invert drilling muds of the type used herein contain the finely disperse aqueous phase, normally together with the continuous oil phase, in quantities of from 5 to 45% by weight and preferably in quantities of from 5 to 25% by weight. Particularly preferred is the range of 10 to 25% by weight of disperse aqueous phase.
  • This pre-condition from the constitution of conventional drilling muds also applies to the ester-based invert drilling muds of the invention. It is clear that, in continuous practical operation, disturbances of the equilibrium can occur in the multiphase system as a result of partial ester hydrolysis.
  • ester-based oil muds of the invention requires a departure from standard practice so far as these variables are concerned. It is of course necessary in this case, too, to ensure that the pH value of the drilling mud is kept at least in the mildly alkaline range and that a sufficient quantity of alkali reserve is available for unexpected inrushes of, in particular, acidic gases. At the same time, however, the ester hydrolysis should not be undesirably promoted and/or accelerated by such an alkali content.
  • the invention does not use alkali hydroxides or highly hydrophilic amines of the diethanolamine and/or triethanolamine type.
  • Lime may be effectively used as the alkali reserve. In that case, however, it is best to limit the maximum quantity of lime used in the drilling mud to around 2 lb/bbl or slightly lower, for example to between 1 and 1.8 lb/bbl (lime/drilling mud).
  • esters based on olefinically unsaturated C 16-24 monocarboxylic acids defined in accordance with the invention which flow and can be pumped at temperatures in the range from 0° to 5° C., generally make up at least about half the continuous oil phase of the drilling mud.
  • preferred oil phases are those in which esters or ester mixtures of the type according to the invention are very much predominantly present.
  • the oil phase consists almost entirely of such ester oils.
  • Components suitable for mixing with the ester oils defined in accordance with the invention are, in particular, selected other ester oil fractions which are described in U.S. Ser. No.
  • plastic viscosity (PV) in the range of from 10 to 60 mPa.s and preferably in the range of from 15 to 40 mPa.s
  • yield point (YP) in the range of from 5 to 40 lb/100 ft 2 and preferably in the range of from 10 to 25 lb/100 ft 2 , as measured at 50° C.
  • Emulsifiers suitable for use in practice are systems which are capable of forming the required w/o emulsions.
  • Selected olephilic fatty acid salts for example those based on amidoamine compounds, are particularly suitable, examples being described in the already cited U.S. Pat. No. 4,374,737 and the literature cited therein.
  • One particularly suitable type of emulsifier is the product marketed under the name of "EZ-MULTM" by BAROID DRILLING FLUIDS, INC.
  • Emulsifiers of the above type are marketed in the form of concentrate and can be used, for example, in quantities of from 2.5 to 5% by weight and more especially in quantities of from 3 to 4% by weight, based in each case of the ester oil phase.
  • organophilic lignite is used as a fluid-loss additive and forms an impervious coating in the form of a substantially water-impermeable film over the walls of the well.
  • Suitable quantities are, for example, in the range of from 15 to 20 lb/bbl or in the range of from 5 to 7% by weight, based on the ester oil phase.
  • the thickener normally used to create viscosity is a cationically modified, finely divided organophilic bentonite which can be used in quantities of from 8 to 10 lb/bbl or in the range of from 2 to 4% by weight, based on the ester oil phase.
  • the weighing agent normally used in practice to establish the necessary pressure equalization is barite which is added in quantities adapted to the particular conditions to be expected in the well. For example, it is possible by addition of barite to increase the specific gravity of the drilling mud to values of up to about 2.5 and preferably in the range from 1.3 to 1.6.
  • the disperse aqueous phase is charged with soluble salts, generally calcium chloride and/or potassium chloride, the aqueous phase preferably being saturated with the soluble salt at room temperature.
  • emulsifiers or emulsifier systems mentioned above can also be used to improve the oil wettability of the inorganic weighting materials.
  • alkyl benzensulfonates and imidazoline components are further examples. Additional information on the relevant prior art can be found in the following literature references: GB 2,158,437, EP 229 912 and DE 32 47 123.
  • the new drilling fluids are of particular importance in, but is not limited to, the offshore sector.
  • the new drilling fluids can also be used quite generally for land-supported drilling, including for example geothermal drilling, water drilling, geoscientific drilling and mine drilling.
  • the ester-based drilling fluids selected in accordance with the invention basically simplify ecotoxic problems to a considerable extent.
  • the drilling fluids based in accordance with the invention on the co-use of ester oils of the described type are also distinguished by distinctly improved lubricity.
  • Ester oils of the type used as oil phase in accordance with the invention have a distinctly better lubricating effect than the mineral oils hitherto used, which is an important advantage of the present invention.
  • An invert drilling mud was prepared using an undistilled isobutyl rapeseed oil ester at the continuous oil phase.
  • This rapeseed ester was based on a mixture of predominantly unsaturated, straight-chain carboxylic acids which correspond substantially to the following distribution; 60% oleic acid, 20% linoleic acid, 9 to 10% linolenic acid, olefinically unsaturated C 20-22 monocarboxylic acids approximately 4% remainder saturated monocarboxylic acids predominantly in the C 16-18 range.
  • the rapeseed oil ester used had the following characteristic data: density (20° C.) 0.872 g/cm 3 ; pour point below -15° C.; flash point (DIN 51584) above 180° C.; acid value (DGF-C-V 2) 1.2; viscosity at 0° C. 32 mPa.s, viscosity at 5° C. 24 mPa.s; no aromatic compounds.
  • Plastic viscosity (PV), yield point (YP) and gel strength after 10 seconds and 10 minutes were first determined on the material before ageing by viscosity measurement at 50° C.
  • the invert drilling mud was then aged for 16 h at 125° C. in an autoclave in a so-called "roller oven” to determine the effect of temperature on the stability of the emulsion.
  • the viscosity values were redetermined at 50° C.
  • Example 2 Another invert drilling mud was prepared in the same way as in Example 1, except that on this occasion the quantity of lime was increased to 4 g, i.e. drastically beyond the limit of approximately 2 lb/bbl.
  • the oil phase consisted of distilled oleic acid isobutyl ester which has the following characteristic data: density (20° C.) 0.86 gg/cm 3 ; viscosity (20° C.) 8 to 10 mPa.s; pour point below -25° C.; flash point (51584) above 185° C.; acid value (DGF)-CV 2) below 1; no aromatic compounds.
  • a drilling mud of the following composition was prepared:
  • Plastic viscosity, yield point and gel strength after 10 seconds and 10 minutes were determined before and after ageing (16 h at 125° C. in a roller oven) in the same way as in Example 1. The results obtained are shown below.
  • . .1.2 kg.!. .Iadd.1.9 g .Iaddend.lime substantially corresponds to the limit of 2 lb/bbl.
  • Example 2 Another invert drilling oil emulsion was prepared using the formulation of Example 2, except that the addition of lime was increased to 2 g and hence to . .clearly beyond.!. .Iadd.within .Iaddend.the limit of .Iadd.about .Iaddend.2 lb/bbl.
  • the plastic viscosity, yield point and gel strength of the material before and after ageing are shown in the following:

Abstract

Invert emulsion muds for drilling of gas and oil, which are environmentally safe, and which contain:
A. a continuous oil phase composed predominantly of at least one monocarboxylic acid ester of a C2 -C12 monofunctional alkalol wherein the monocarboxylic acid contains from 16 to 24 carbon atoms and is olefinically mono- or poly-unsaturated,
B. a disperse aqueous phase,
C. at least one emulsifier,
D. at least one weighing agent,
E. at least one fluid loss additive, and
F. a mild alkaline reserve.

Description

This application is a continuation of U.S. application Ser. No. 07/452,457 filed on Dec. 18, 1989 now abandoned.
BACKGROUND OF THE INVENTION
1. Field of the Invention
This invention relates to new drilling fluids based on ester oils and to invert drilling muds based thereon which combine high ecological compatibility with good stability and performance properties.
2. State of Related Art
It is known that liquid drilling fluids for sinking bores in rock and bringing up the rock cuttings are slightly thickened, water-based or oil-based fluid systems. Oil-based systems are being increasingly used in practice, particularly in offshore drilling or in the penetration of water-sensitive layers.
Oil-based drilling fluids are generally used in the form of so-called invert emulsion muds which consist of a three-phase system, namely: oil, water and finely divided additives, including in particular emulsifiers and emulsifier systems, weighting agents, fluid loss additives, alkali reserves, viscosity regulators and the like, for stabilizing the system as a whole and for establishing the desired performance properties. Full particulars can be found, for example, in the Article by P. A. Boyd et al entitled "New Base Oil Used in Low-Toxicity Oil Muds" in the Journal of Petroleum Technology, 1985, 137 to 142 and in the Article by R. B. Bennet entitled "New Drilling Fluid Technology--Mineral Oil Mud" in Journal of Petroleum Technology, 1984, 975 to 981 and the literature cited therein.
Oil-based drilling fluids were originally made from diesel oil fractions containing aromatic constituents. For the purposes of detoxification and reducing the ecological problems thus created, it was then proposed to use hydrocarbon fractions substantially free from aromatic compounds--now also known as "nonpolluting oils"--as the continuous oil phase, cf. the literature cited above. Although certain advances were achieved in this way through elimination of the aromatic compounds, a further reduction in the environmental problems caused by drilling fluids of the above type seems to be urgently required. This applies in particular to the sinking of offshore wells for the development of oil and gas sources because the marine ecosystem is particularly sensitive to the introduction of toxic and non-readily degradable substances.
The relevant technology has for some time recognized the significance of ester-based oil pleases for solving these problems. Thus, U.S. Pat. Nos. 4,374,737 and 4,481,121 describe oil-based drilling fluids in which nonpolluting oils are said to be used. Non-aromatic mineral oil fractions and vegetable oils of the peanut oil, soybean oil, linseed oil, corn oil and rice oil type, and even oils of animal origin, such as whale oil, are mentioned alongside one another as nonpolluting oils of equivalent rank. The ester oils of vegetable and animal origin mentioned here are all triglycerides of natural fatty acids which are known to be environmentally safe and which, ecologically, are distinctly superior to hydrocarbon fractions, even where they have been de-aromaticized.
Interestingly, however, not one of the Examples in the US patents cited above mentions the use of such natural ester oils in invert emulsion drilling muds. Mineral oil fractions are used throughout as the continuous oil phase.
In its general descriptive part, U.S. Pat. No. 4,491,121 mentions not only triglycerides, but also a commercial product "Arizona 208" of the Arizona Chemical Company, Wayne, N.J., which is a purified isooctyl-monoalcohol ester of high-purity tall oil fatty acids. An ester of a monofunctional alcohol and monofunctional carboxylic acids, mentioned for the first time here, is described as equivalent to triglycerides of natural origin and/or de-aromaticized hydrocarbon fractions.
The cited US patent does not contain any reproducible Examples relating to the use of such an ester of monofunctional components.
DESCRIPTION OF THE INVENTION
Other than in the operating examples, or where otherwise indicated, all numbers expressing quantities of ingredients or reaction conditions used herein are to be understood as modified in all instances by the term "about".
The investigations on which the present invention is based have shown that the use of readily degradable oils of vegetable and/or animal origin, which was considered in the prior art, is not feasible for practical reasons. The rheologic properties of such oil phases cannot be controlled for the wide temperature range required in practice of 0° to 5° C. on the one hand up to 250° C. and higher on the other hand.
The teaching of the present invention is based on the observation that it is in fact possible to produce oil-based invert drilling fluids based on ester oils of high environmental compatibility which correspond in their storage and in-use behavior to the best of the hitherto known oil-based drilling fluids, but have the additional advantage of increased environmental compatibility. Two key observations in this regard dominate the teaching according to the invention:
The triglycerides accumulating in the form of natural oils are not suitable for the production of mineral-oil-free oil-based invert drilling fluids, whereas the esters of monofunctional carboxylic acids with monofunctional alcohols derived from those oils or fats are suitable for the production of such drilling fluids. The second key observation is that ester oils of the present type do not in fact show the same in-use behavior as the mineral oil fractions used hitherto based purely on hydrocarbons. In practical application, the ester oils of monofunctional components of the invention undergo partial hydrolysis, resulting in the formation of free fatty acids. These free fatty acids react in turn with the alkaline constituents always present in invert drilling fluids, for example with the alkali reserve used to prevent corrosion, to form the corresponding salts. However, salts of highly hydrophilic bases and the acids in the range of from about C16 to C24 commonly encountered in fats and oils of natural origin are known to be compounds having comparatively high HLB values which lead in particular to the formation and stabilization of o/w emulsions. Use is made of this to a very considerable extent in the field of detergents and cleaning preparations. However, the formation of undesirably large quantities of such o/w emulsifier systems must interfere with the w/o emulsions required for solving the problem addressed by the invention and, hence, leads to problems. The teaching of the present invention as described in the following shows how invert drilling fluids based on ester oils can be effectively used in practice despite these difficulties inherent in the system.
In a first embodiment, therefore, the present invention relates to the use of selected esters--flowable and pumpable at temperatures in the range of from 0° to 5° C.--of monofunctional C2-12 alcohols (alkanols) and olefinically mono- and/or polyunsaturated C16-24 monocarboxylic acids or mixtures thereof with small quantities of other, more especially saturated monocarboxylic acids as the oil phase, or at least a substantial part of the oil phase, of invert drilling muds which contain in a continuous oil phase a disperse aqueous phase and also emulsifiers, weighting agents, fluid loss additives and, if desired, other standard additives together with an alkali (alkaline) reserve, with the proviso that strong hydrophilic bases, such as alkali metal hydroxides and/or diethanolamine, are not used in significant quantities. Lime (calcium hydroxide) is often added as the alkali reserve, more especially for protection against inrushes of CO2 and/or H2 S into the drilling fluid and hence for protection against corrosion. An addition of lime such as this may be used as the alkali reserve in accordance with the invention. However, it is important to ensure that only comparatively small quantities of this alkaline component are incorporated. In a preferred embodiment of the invention, the maximum addition of lime is of the order of 2 lb/bbl (lime/oil mud) and is thus distinctly below the quantities typically used in practice in oil-based invert drilling fluids.
In another embodiment, the invention relates to mineral-oil-free invert drilling fluids which are suitable for the offshore development of oil and gas sources and, in a continuous oil phase based on ester oils, contain a disperse aqueous phase together with emulsifiers, weighting agents, fluid loss additives and, if desired, other standard additives. The new drilling fluids are characterized in that the oil phase consists at least substantially of esters of monofunctional C2-12 alcohols and olefinically mono and/or polyunsaturated C16-24 monocarboxylic acids and in that the w/o emulsion is mildly alkalized and, where lime is added, this alkali reserve preferably does not exceed quantities of about 2 lb/bbl (lime/oil mud). The lime content is preferably slightly below this limit.
The ester oils selected in accordance with the invention which are intended to form the entire continuous oil phase of the invert drilling muds or at least a substantial part thereof (i.e. over 50% by weight thereof) are discussed first in the following.
As already stated, an important criterion lies in the choice of esters which may be assigned to the class of reaction products of monofunctional carboxylic acids with monofunctional alcohols. In addition, however, it is intended in accordance with the invention exclusively or at least predominantly to use C16 -C24 carboxylic acids within this class. The carboxylic acids may be derived from unbranched or branched hydrocarbon chains, preferably linear chains. Monocarboxylic acids of this type and of the C16 to C24 range and esters thereof are unsuitable as predominantly saturated hydrocarbon compounds due to their comparatively high solidification points. Even then, however, esters of this type are flowable and pumpable down to temperatures of 0° to 5° C. providing an adequate level of olefinically unsaturated ester constituents is guaranteed. In the preferred embodiment of the invention, therefore, esters of the described type of which more than 70% by weight and preferably more than 80% by weight are derived from olefinically unsaturated C16-24 carboxylic acids are used. Important natural starting materials are carboxylic acid mixtures which contain at least 90% by weight olefinically unsaturated carboxylic acids in the above C range. The unsaturated carboxylic acids may be mono- and/or polyolefinically unsaturated. Where carboxylic acids or carboxylic acid mixtures of natural origin are used, the double ethylenic double bond in particular and, to a lesser extent, even a triple ethylenic double bond per carboxylic acid molecule plays a role in addition to a single ethylenic double bond in the molecule. Particulars of this are given in the following.
In conjunction with the choice of esters of monofunctional reactants in accordance with the invention, the choice of such a comparatively highly unsaturated carboxylic acid component in the ester oils ensures that the ester oils and, ultimately, the final invert emulsions show the rheologic properties required in practice, particularly at relatively low temperatures. The comparatively highly unsaturated ester oils containing 16 to 24 C atoms in the monocarboxylic acid component, which are used in accordance with the invention, have solidification points (pour point and setting point) below -10° C. and more especially below -15° C. in the preferred embodiment. Despite this high mobility at low temperatures, the molecular size of the ester oil prescribed in accordance with the invention ensures that the flashpoints of the ester oils are sufficiently high, being at least 80° C., and generally exceeding a temperature limit of approximately 100° C. Ester oils having flashpoints above 160° C. are preferred. Ester oils of the described type showing high mobility, even at low temperatures, and having flashpoints of 185° C. or higher can be produced without difficulty.
In conjunction with these high flashpoints determined by the size of the molecule, it is possible at the same time to ensure that the viscosity values are within the required limits. Thus, preferred ester oils of the described type show a Brookfield (RVT) viscosity at a temperature of 0° to 5° C. of not more than 55 mPa.s and preferably of at most 45 mPa.s or lower. It is possible to adjust values of 30 or even higher, for example in the range of from 20 to 25 mPa.s, at temperatures in the range indicated.
Among the unsaturated ester oils suitable for use in accordance with the invention, there are two sub-classes of particular importance.
The first of these sub-classes is based on unsaturated C16-24 monocarboxylic acids of which no more than about 35% by weight are diolefinically and, optionally, polyolefinically unsaturated. In their case, therefore, the content of di-and polyunsaturated carboxylic acid residues in the ester oil is comparatively limited. Within this sub-class it is preferred that at least about 60% by weight of the carboxylic acid residues are monoolefinically unsaturated.
In contrast to the first sub-class described above, the second sub-class of ester oils of particular significance is derived from C16-24 unsaturated monocarboxylic acid mixtures of which more than 45% by weight and preferably more than 55% by weight are derived from diolefinically and/or polyolefinically unsaturated acids within the above C range.
The most important monoethylenically unsaturated carboxylic acids within the above carbon range are hexadecenoic acids (palmitoleic acid (C16)), oleic acid (C18), the related ricinoleic acid (C18) and erucic acid (C22). The most important di-unsaturated carboxylic acid within the range in question here is linoleic acid (C18) while the most important triethylenically unsaturated carboxylic acid is linolenic acid (C18).
Selected individual esters formed from an unsaturated monocarboxylic acid and a monoalcohol can be used as the ester oil in accordance with the invention. One example of such esters are the esters of oleic acid, for example of the oleic acid isobutyl ester type. So far as the rheology of the system is concerned and/or for reasons of availability, it is frequently desirable to use esters from acid mixtures. This is of importance so far as meeting the above-stated specifications of the two-classes for preferred ester oils is concerned.
As already mentioned, the first of these two sub-classes is distinguished by the fact that its content of di-unsaturated and polyunsaturated acids is limited and does not exceed about 35% by weight. Vegetable oils of natural origin, of which the hydrolysis or transesterification gives mixtures of carboxylic acids or carboxylic acid esters of the type required here, are for example palm oil, peanut oil, castor oil and, in particular, rapeseed oil. Suitable rapeseed oils are both traditional types of high erucic acid content and also the more modern types of reduced erucic acid content and increased oleic acid content.
Ester oils of the first sub-class which correspond to this definition are particularly important for the simple reason that problems possibly arising from the lack of stability to oxidation are reduced. In practice, the drilling fluid is of course continuously pump-circulated and, in the process, is brought constantly into contact with atmospheric oxygen, often over a large area and at least slightly elevated temperatures, for the purpose of separating out the rock cuttings brought up, for example by sieving.
However, carboxylic acid mixtures of the second subclass mentioned above are also of considerable practical significance for use in accordance with the invention. This is attributable in part to their broad accessibility from natural fats of animal and/or vegetable origin. Classic examples of oils which have a high content of C16-18 or C16-22 carboxylic acids and which, at the same time, contain at least about 45% of at least diethylenically unsaturated carboxylic acids are cottonseed oil, soybean oil, sunflower oil and linseed oil. The tall oil acids isolated during the recovery of cellulose also fall within this range. However, starting materials of the last type are generally distinguished by more or less large additional contents of resin constituents. A typical animal starting material for the production of corresponding carboxylic acid mixtures is fish oil, particularly herring oil.
As already mentioned, the ester oils used in accordance with the invention can be certain selected individual esters corresponding to the above definition. However, mixtures of esters of corresponding monocarboxylic acids and monoalcohols will normally be present. In this regard, the scope of the invention encompasses above all those mixtures which, on the one hand, meet the viscosity requirement according to the invention and of which, on the other hand, at least 50% comprise the monofunctional esters of the olefinically mono- and/or polyunsaturated C16-24 carboxylic acids. Ester constituents and, in particular, carboxylic acid esters or monofunctional alcohols and monofunctional carboxylic acids of different constitution may be present as minor constituents of the mixture providing the mixture has the required property profile. This is important where carboxylic acid mixtures of natural origin are used. Natural starting materials such as these generally also contain more or less large proportions of saturated carboxylic acids, often including linear C16-18 carboxylic acids. Saturated fatty acids of this type and their esters readily give rise to rheologic difficulties due to their comparatively high melting points. According to the invention, therefore, saturated C16-18 is carboxylic acids preferably make up no more than 20% by weight and, in particular, no more than 10% by weight of the ester oils.
By contrast, the presence of saturated carboxylic acids containing less than 16 carbon atoms and, more especially, from 12 to 14 carbon atoms is more acceptable. In small quantities, the contents of such lower, fully saturated fatty acids often present in natural starting materials are frequently valuable mixture components in the context of the problem addressed by the invention. Their esters are not vulnerable to oxidation under practical inuse conditions and their rheologic properties promote the objective of the invention, namely to replace the pure hydrocarbon oils hitherto solely used in practice by ester oils or ester oil fractions.
The alcohol radicals or the esters or ester mixtures according to the invention are preferably derived from straight-chain and/or branched-chain saturated alcohols, particular significance being attributed to alcohols containing at least 3 C atoms and, more especially, to alcohols containing up to about 10 C atoms. The alcohols can also be of natural origin, in which case they have normally been obtained from the corresponding carboxylic acids or their esters by hydrogenating reduction. However, the invention is by no means limited to starting materials of natural origin. Both on the monoalcohol side and on the monocarboxylic acid side, the starting materials of natural origin may be partly or completely replaced by corresponding components of synthetic origin. Typical examples of alcohols are the corresponding oxo alcohols (branched alcohols) and the linear alcohols obtained by the Ziegler process. Similarly, monocarboxylic acid components present in particular in carboxylic acid mixtures can be derived from petrochemical synthesis. However, the advantages of starting materials of natural origin lie in particular in their proven lower toxicologic values, their ready degradability and their ready accessibility. The natural destruction of the used oil mud ultimately required presupposes that ester oils of the type described herein be both aerobically and anaerobically degradable.
However, one important limitation is associated with the use of these ester oils in invert oil muds of the type used in the present invention. This limitation arises out of the difficulty mentioned at the beginning that, in principle, the carboxylic acid esters are vulnerable to hydrolysis and, accordingly, have to behave differently than the pure hydrocarbon oils hitherto used.
Invert drilling muds of the type used herein contain the finely disperse aqueous phase, normally together with the continuous oil phase, in quantities of from 5 to 45% by weight and preferably in quantities of from 5 to 25% by weight. Particularly preferred is the range of 10 to 25% by weight of disperse aqueous phase. This pre-condition from the constitution of conventional drilling muds also applies to the ester-based invert drilling muds of the invention. It is clear that, in continuous practical operation, disturbances of the equilibrium can occur in the multiphase system as a result of partial ester hydrolysis.
The situation is complicated by the fact that, in practice, drilling muds of the present type always contain an alkali reserve. This alkali reserve is particularly important in affording protection against corrosion caused by unexpected inrushes of acidic gases, particularly CO2 and/or H2 S. The danger of corrosion to the drill pipe requires the safe establishment of pH values at least in the mildly alkaline range, for example in the range from pH 8.5 to 9 and higher.
In oil muds based on pure hydrocarbon fractions as the oil phase, strongly alkaline and, at the same time, highly hydrophilic inorganic or organic additives are generally used in practice without any difficulty. Particular significance can be attributed to the alkali hydroxides and, in particular, to sodium hydroxide on the one hand or to highly hydrophilic organic bases, diethanolamine and/or triethanolamine being particularly typical additives for binding impurities of H2 S. In addition to and/or instead of the highly hydrophilic inorganic and organic bases mentioned here, lime or even more weakly basic metal oxides, especially zinc oxide or comparable zinc compounds, are particularly important as the alkali reserve. Lime in particular is widely used an inexpensive alkalizing agent. It may safely be used in comparatively high quantities of, for example, from 5 to 10 lb/bbl (lime/oil mud) or even higher.
The use of the ester-based oil muds of the invention requires a departure from standard practice so far as these variables are concerned. It is of course necessary in this case, too, to ensure that the pH value of the drilling mud is kept at least in the mildly alkaline range and that a sufficient quantity of alkali reserve is available for unexpected inrushes of, in particular, acidic gases. At the same time, however, the ester hydrolysis should not be undesirably promoted and/or accelerated by such an alkali content.
Thus, in the preferred embodiment of the invention, no significant quantities of highly hydrophilic, inorganic and/or organic bases are used in the oil mud. In particular, the invention does not use alkali hydroxides or highly hydrophilic amines of the diethanolamine and/or triethanolamine type. Lime may be effectively used as the alkali reserve. In that case, however, it is best to limit the maximum quantity of lime used in the drilling mud to around 2 lb/bbl or slightly lower, for example to between 1 and 1.8 lb/bbl (lime/drilling mud). In addition to or instead of lime, it is also possible to use other known alkali reserves, including in particular the less basic metal oxides of the zinc oxide type and other comparable zinc compounds. However, even where acid-binding agents such as these are used, it is important not to use excessive amounts to prevent unwanted premature ageing of the drilling mud accompanied by an increase in viscosity and hence a deterioration in the rheologic properties. The particular aspect of the teaching according to the invention prevents or at least limits the formation of unwanted quantities of highly active o/w emulsifiers to such an extent that the favorable rheologic properties are maintained for long periods in operation, even in the event of thermal ageing. In relation to the recommendations of the prior art which have hitherto remained in the realm of theoretical considerations, this represents a significant surplus which actually enables the low toxic properties of ester oils of the present type to be utilized in practice for the first time.
The esters based on olefinically unsaturated C16-24 monocarboxylic acids defined in accordance with the invention, which flow and can be pumped at temperatures in the range from 0° to 5° C., generally make up at least about half the continuous oil phase of the drilling mud. However, preferred oil phases are those in which esters or ester mixtures of the type according to the invention are very much predominantly present. In one particularly important embodiment of the invention, the oil phase consists almost entirely of such ester oils. Components suitable for mixing with the ester oils defined in accordance with the invention are, in particular, selected other ester oil fractions which are described in U.S. Ser. No. 07/452,988 now abandoned "Drilling Fluids and Muds Containing Selected Ester Oils"), filed of even data herewith. The invention also encompasses mixtures with such other selected ester oils. These ester oils, which are described in the above copending application, incorporated herein by reference, are esters of monofunctional C2-12 alcohols and saturated aliphatic C12-16 monocarboxylic acids.
The following rheologic data apply to the rheology of preferred invert drilling muds according to the invention: plastic viscosity (PV) in the range of from 10 to 60 mPa.s and preferably in the range of from 15 to 40 mPa.s, yield point (YP) in the range of from 5 to 40 lb/100 ft2 and preferably in the range of from 10 to 25 lb/100 ft2, as measured at 50° C. Full information on the determination of these parameters, on the measurement techniques used and on the otherwise standard composition of the invert oil muds described herein can be found in the prior art cited above and, for example, in "Manual of Drilling Fluids Technology" published by BAROID DRILLING FLUIDS, INC., cf. in particular the Chapter entitled "Mud Testing--Tools and Techniques" and "Oil Mud Technology", which is freely available to interested experts. In the interests of fullness of disclosure, the following summary observations may be made:
Emulsifiers suitable for use in practice are systems which are capable of forming the required w/o emulsions. Selected olephilic fatty acid salts, for example those based on amidoamine compounds, are particularly suitable, examples being described in the already cited U.S. Pat. No. 4,374,737 and the literature cited therein. One particularly suitable type of emulsifier is the product marketed under the name of "EZ-MUL™" by BAROID DRILLING FLUIDS, INC.
Emulsifiers of the above type are marketed in the form of concentrate and can be used, for example, in quantities of from 2.5 to 5% by weight and more especially in quantities of from 3 to 4% by weight, based in each case of the ester oil phase.
In practice, organophilic lignite is used as a fluid-loss additive and forms an impervious coating in the form of a substantially water-impermeable film over the walls of the well. Suitable quantities are, for example, in the range of from 15 to 20 lb/bbl or in the range of from 5 to 7% by weight, based on the ester oil phase.
In drilling muds of the present type, the thickener normally used to create viscosity is a cationically modified, finely divided organophilic bentonite which can be used in quantities of from 8 to 10 lb/bbl or in the range of from 2 to 4% by weight, based on the ester oil phase. The weighing agent normally used in practice to establish the necessary pressure equalization is barite which is added in quantities adapted to the particular conditions to be expected in the well. For example, it is possible by addition of barite to increase the specific gravity of the drilling mud to values of up to about 2.5 and preferably in the range from 1.3 to 1.6.
In invert drilling muds of the present type, the disperse aqueous phase is charged with soluble salts, generally calcium chloride and/or potassium chloride, the aqueous phase preferably being saturated with the soluble salt at room temperature.
The emulsifiers or emulsifier systems mentioned above can also be used to improve the oil wettability of the inorganic weighting materials. In addition to the aminoamides already discussed, alkyl benzensulfonates and imidazoline components are further examples. Additional information on the relevant prior art can be found in the following literature references: GB 2,158,437, EP 229 912 and DE 32 47 123.
One important application for the new drilling fluids is in offshore drilling for the development of oil and/or gas sources, to provide technically useful drilling fluids of high ecological compatibility. The use of the new drilling fluids is of particular importance in, but is not limited to, the offshore sector. The new drilling fluids can also be used quite generally for land-supported drilling, including for example geothermal drilling, water drilling, geoscientific drilling and mine drilling. In this case, too, the ester-based drilling fluids selected in accordance with the invention basically simplify ecotoxic problems to a considerable extent. In addition, the drilling fluids based in accordance with the invention on the co-use of ester oils of the described type are also distinguished by distinctly improved lubricity. This is particularly important when the path of the drill pipe and hence the well deviate from the vertical during drilling, for example at considerable depths. In such cases, the rotating drill pipe readily comes into contact with the well wall and embeds itself therein. Ester oils of the type used as oil phase in accordance with the invention have a distinctly better lubricating effect than the mineral oils hitherto used, which is an important advantage of the present invention.
The invention will be illustrated but not limited by the following examples.
EXAMPLES EXAMPLE 1
An invert drilling mud was prepared using an undistilled isobutyl rapeseed oil ester at the continuous oil phase. This rapeseed ester was based on a mixture of predominantly unsaturated, straight-chain carboxylic acids which correspond substantially to the following distribution; 60% oleic acid, 20% linoleic acid, 9 to 10% linolenic acid, olefinically unsaturated C20-22 monocarboxylic acids approximately 4% remainder saturated monocarboxylic acids predominantly in the C16-18 range.
The rapeseed oil ester used had the following characteristic data: density (20° C.) 0.872 g/cm3 ; pour point below -15° C.; flash point (DIN 51584) above 180° C.; acid value (DGF-C-V 2) 1.2; viscosity at 0° C. 32 mPa.s, viscosity at 5° C. 24 mPa.s; no aromatic compounds.
An invert drilling mud was conventionally prepared using the following mixture constituents:
______________________________________
230    ml rapeseed oil fatty acid ester
26     ml water
6      g organophilic bentonite (GELTONE ™, a product
       of BAROID DRILLING FLUIDS, INC. of Aberdeen,
       Scotland)
0.2    g line
6      g water in oil emulsifier ("EZ-MUL ™", a product
       of BAROID DRILLING FLUIDS, INC.)
340    g basis
9.2    g CaCl.sub.2 × 2H.sub.2 O
20     g organophilic lignite ("DURATONE ™", a product
       of BARIOD DRILLING FLUIDS. INC.)
______________________________________
Plastic viscosity (PV), yield point (YP) and gel strength after 10 seconds and 10 minutes were first determined on the material before ageing by viscosity measurement at 50° C.
The invert drilling mud was then aged for 16 h at 125° C. in an autoclave in a so-called "roller oven" to determine the effect of temperature on the stability of the emulsion. The viscosity values were redetermined at 50° C.
The following results were obtained:
______________________________________
                 Unaged
                       Aged
                 material
                       material
______________________________________
Plastic viscosity (PV)
                   35      62
Yield point (YP)   21      24
Gel strength (lb/100 ft.sup.2)
10 seconds         12      12
10 minutes         14      15
______________________________________
COMPARISON EXAMPLE 1
Another invert drilling mud was prepared in the same way as in Example 1, except that on this occasion the quantity of lime was increased to 4 g, i.e. drastically beyond the limit of approximately 2 lb/bbl.
Once again, the viscosity values and gel strength of the material were determined before and after ageing. The following results were obtained:
______________________________________
                Unaged
                      Aged
                material
                      material
______________________________________
Plastic viscosity (PV)
                  41      cannot
                          be measured
Yield point (YP)  22      cannot
                          be measured
Gel strength (lb/100 ft.sup.2)
10 seconds        11      74
10 minutes        17      72
______________________________________
EXAMPLE 2
Another invert drilling mud was prepared with a continuous oil phase. The oil phase consisted of distilled oleic acid isobutyl ester which has the following characteristic data: density (20° C.) 0.86 gg/cm3 ; viscosity (20° C.) 8 to 10 mPa.s; pour point below -25° C.; flash point (51584) above 185° C.; acid value (DGF)-CV 2) below 1; no aromatic compounds.
A drilling mud of the following composition was prepared:
______________________________________
210    ml isobutyl oleate
6      g fatty-acid-based emulsifier (INVERMUL ™, a
       product of BAROID DRILLING FLUIDS, INC.)
6      g organophilic bentonite (GELTONE II ™, a product
       of BAROID DRILLING FLUIDS, INC.)
13     g organophilic lignite (DURATONE ™, a product
       of BAROID DRILLING FLUIDS, INC.)
1      g lime
3      g water in oil emulsifier (EZ-MUL ™, a product
       of BAROID DRILLING FLUIDS, INC.)
270    g barite
58.2   g saturated aqueous CaCl.sub.2 solution
______________________________________
Plastic viscosity, yield point and gel strength after 10 seconds and 10 minutes were determined before and after ageing (16 h at 125° C. in a roller oven) in the same way as in Example 1. The results obtained are shown below. In the formulation used here, . .1.2 kg.!. .Iadd.1.9 g .Iaddend.lime substantially corresponds to the limit of 2 lb/bbl.
______________________________________
                 Unaged
                       Aged
                 material
                       material
______________________________________
Plastic viscosity (PV)
                   46      41
Yield point (YP)   35      32
Gel strength (lb/100 ft.sup.2)
10 seconds         17      18
10 minutes         21      29
______________________________________
. .COMPARISON.!. EXAMPLE . .2.!. .Iadd.3 .Iaddend.
Another invert drilling oil emulsion was prepared using the formulation of Example 2, except that the addition of lime was increased to 2 g and hence to . .clearly beyond.!. .Iadd.within .Iaddend.the limit of .Iadd.about .Iaddend.2 lb/bbl. The plastic viscosity, yield point and gel strength of the material before and after ageing are shown in the following:
______________________________________
                 Unaged
                       Aged
                 material
                       material
______________________________________
Plastic viscosity (PV)
                   33      46
Yield point (YP)   61      45
Gel strength (lb/100 ft.sup.2)
10 seconds         33      24
10 minutes         40      29
______________________________________

Claims (41)

We claim:
1. An invert emulsion drilling mud free of mineral oil and substantially free from highly hydrophilic basic materials selected from the group consisting of alkali metal hydroxides and amines selected from diethanolamine and triethanolamine, consisting essentially of
A. a continuous oil phase composed predominantly of at least one monocarboxylic acid ester of a C2 -C12 monofunctional alcohol wherein the monocarboxylic acid contains from 16 to 24 carbon atoms and is olefinically mono- or poly-unsaturated,
B. a disperse aqueous phase,
C. at least one emulsifier,
D. at least one weighting agent,
E. a viscosifier,
F. at least one fluid loss additive, and
G. a mildly alkaline alkali reserve component consisting essentially of lime in a quantity not exceeding about 2 lb/bbl of said drilling mud.
2. The invert emulsion mud of claim 1 wherein the disperse aqueous phase B contains at least one of CaCl2 or KCl as a dissolved salt.
3. The invert emulsion mud of claim 1 wherein from about 5 to about 45% by weight of component B is present therein.
4. The invert emulsion mud of claim 3 wherein from about 10 to about 25% by weight of component B is present therein.
5. The invert emulsion mud of claim 1 wherein component A has a Brookfield (RVT) viscosity at 0° to 5° C. of below 50 mPa.s.
6. The invert emulsion mud of claim 1 wherein the invert emulsion mud has a plastic viscosity (PV) in the range of from about 10 to about 60 mPa.s and a yield point (YP) in the range of from about 5 to about 40 lb/100 ft2, as measured at 50° C.
7. The invert emulsion mud of claim 1 wherein component A also contains esters of saturated monocarboxylic acids.
8. The invert emulsion mud of claim 1 wherein in component A the oil phase contains at least about 70% by weight of the at least one monocarboxylic acid ester.
9. The invert emulsion mud of claim 8 wherein about 80% by weight of the at least one monocarboxylic acid ester is present.
10. The invert emulsion mud of claim 8 wherein about 90% by weight of the at least one monocarboxylic acid ester is present.
11. The invert emulsion mud of claim 1 wherein the at least one monocarboxylic acid ester of component A has a pour point and setting point below about -10° C., and a flash point above about 100° C.
12. The invert emulsion mud of claim 11 wherein the pour point and setting point is below about -15° C., and the flash point is above about 160° C.
13. The invert emulsion mud of claim 1 wherein in component A the acid moiety of the at least one monocarboxylic acid ester contains at least about 60% by weight of monoolefinically unsaturated acids and no more than about 35% by weight di- and polyolefinically unsaturated acids.
14. The invert emulsion mud of claim 1 wherein in component A the acid moiety of the at least one monocarboxylic acid ester contains more than about 45% by weight of either diolefinically unsaturated acids, polyolefinically unsaturated acids, or a mixture of di- and poly-olefinically unsaturated acids.
15. The invert emulsion mud or claim 14 wherein said percentage is more than about 55%.
16. The invert emulsion mud of claim 1 wherein in component A the continuous oil phase contains no more than about 20% by weight of esters of saturated C16 -C18 carboxylic acids.
17. The invert emulsion mud of claim 16 wherein said percentage is no more than about 10% by weight.
18. The invert emulsion mud of claim 1 wherein in the at least one monocarboxylic acid ester of component A the monocarboxylic acid is linear.
19. The invert emulsion mud of claim 1 wherein in the at least one monocarboxylic acid ester of component A the alcohol moiety contains from 3 to 10 carbon atoms and is saturated, straight chain or branched.
20. The invert emulsion mud of claim 1 wherein said lime is present in an amount of from 1 to 1.8 lbs/bbl of said drilling mud.
21. The invert emulsion mud of claim 1 wherein said alkali reserve component includes a weakly basic metal oxide, zinc oxide, or zinc compound. . .22. The invert emulsion mud of claim 1 wherein in component A the acid moiety of the at least one monocarboxylic acid ester contains more than about 45% by weight of either diolefinically unsaturated acids, polyolefinically unsaturated acids, or a mixture of di- and poly-
olefinically unsaturated acids..!.23. . .A drilling fluid.!. .Iadd.An invert drilling fluid that is .Iaddend.free of mineral oil . .for use in an invert drilling mud that.!. .Iadd.and .Iaddend.is substantially free from highly hydrophilic basic materials selected from the group consisting of alkali metal hydroxides and amines selected from diethanolamine and triethanolamine, .Iadd.said fluid .Iaddend.consisting of
A. a continuous oil phase composed of at least one monocarboxylic acid ester of a C2 -C12 monofunctional alkanol wherein the monocarboxylic acid contains from 16 to 24 carbon atoms and comprises at least about 60% by weight of monoolefinically unsaturated acids and no more than about 35% by weight of di- and poly- olefinically unsaturated acids, . .and.!.
B. a disperse aqueous phase. ...!. .Iadd., and
C. a mildly alkaline alkali reserve component consisting essentially of lime in a quantity not exceeding above about 2 lb/bbl of said drilling
fluid. .Iaddend.24. The drilling fluid of claim 23 wherein in component A has a Brooksfield (RVT) viscosity at 0° to 5° C. of below 50
mPa.s. 25. The drilling fluid of claim 23 wherein in component A the oil phase contains at least about 70% by weight of the at least one
monocarboxylic acid ester. 26. The drilling fluid of claim 23 wherein the at least one monocarboxylic acid ester of component A has a pour point and setting point below about -10° C., and a flash point above about
100° C. 27. The drilling fluid of claim 23 wherein in the at least one monocarboxylic acid ester of component A the monocarboxylic acid is
linear. 28. The drilling fluid of claim 23 wherein in the at least one monocarboxylic acid ester of component A the alcohol moiety contains from
1 to 10 carbon atoms and is saturated, straight chain or branched. 29. An invert emulsion drilling mud free of mineral oil and substantially free from highly hydrophilic basic materials selected from the group consisting of alkali metal hydroxides and amines selected from diethanolamine and triethanolamine, consisting essentially of
A. a continuous oil phase composed predominantly of at least one monocarboxylic acid ester of a C2 -C12 monofunctional alcohol wherein the monocarboxylic acid contains from 16 to 24 carbon atoms and comprises at least about 60% by weight of monoolefinically unsaturated acids and no more than about 35% by weight of di- and poly- olefinically unsaturated acids,
B. a disperse aqueous phase,
C. at least one emulsifier,
D. at least one weighting agent,
E. a viscosifier,
F. at least one fluid loss additive, and
G. a mildly alkaline alkali reserve component consisting essentially of
lime in a quantity not exceeding about 2 lb/bbl of said drilling mud. 30. The invert emulsion mud of claim 29 wherein from about 5 to about 45%
by weight of component B is present therein. 31. The invert emulsion mud of claim 30 wherein from about 10 to about 25% by weight of component B is
present therein. 32. The invert emulsion mud of claim 29 wherein component A has a Brookfield (RVT) viscosity at 0° to 5° C. of below
50 mPa.s. 33. The invert emulsion mud of claim 29 wherein the invert emulsion mud has a plastic viscosity (PV) in the range of from about 10 to about 60 mPa.s and a yield point (YP) in the range of from about 5 to
about 40 lb/100 ft2, as measured at 50° C. 34. The invert emulsion mud of claim 29 wherein in component A the oil phase contains at least about 70% by weight of the at least one monocarboxylic acid ester.
. The invert emulsion mud of claim 29 wherein the at least one monocarboxylic acid ester of component A has a pour point and setting point below about -10° C., and a flash point above about
100° C. 36. In the development of a source of oil or gas by drilling using a drilling mud, the improvement comprising pumping the
invert emulsion mud of claim 2 into said source. 37. In the development of a source of oil or gas by drilling using a drilling mud, the improvement comprising pumping the invert emulsion mud of claim 6 into said source.
In the development of a source of oil or gas by drilling using a drilling mud, the improvement comprising pumping the invert emulsion mud
of claim 11 into said source. 39. In the development of a source of oil or gas by drilling using a drilling mud, the improvement comprising pumping
the invert emulsion mud of claim 13 into said source. 40. In the development of a source of oil or gas by drilling using a drilling mud, the improvement comprising pumping the invert emulsion mud of claim 1 into
said source. 41. In the development of a source of oil or gas by drilling using a drilling mud, the improvement comprising pumping the invert
emulsion mud of claim 29 into said source. .Iadd.42. The invert emulsion mud of claim 19 wherein the alcohol moiety is branched and the monocarboxylic acid is predominantly oleic acid. .Iaddend..Iadd.43. The invert emulsion mud of claim 42 wherein the monocarboxylic acid is derived from rape seed oil. .Iaddend.
US08/506,458 1988-12-19 1995-08-01 Use of selected ester oils in drilling fluids and muds Expired - Lifetime USRE36066E (en)

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DE3842659 1988-12-19
DE3842659A DE3842659A1 (en) 1988-12-19 1988-12-19 USE OF SELECTED ESTEROILS IN DRILLING RINSING, IN PARTICULAR FOR THE OFF-SHORE DEVELOPMENT OF PETROLEUM OR. NATURAL GAS DEPOSIT (I)
US45245789A 1989-12-18 1989-12-18
US07/759,097 US5232910A (en) 1988-12-19 1991-09-06 Use of selected ester oils in drilling fluids and muds
US08/506,458 USRE36066E (en) 1988-12-19 1995-08-01 Use of selected ester oils in drilling fluids and muds

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Cited By (47)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6410488B1 (en) 1999-03-11 2002-06-25 Petro-Canada Drilling fluid
US20030036484A1 (en) * 2001-08-14 2003-02-20 Jeff Kirsner Blends of esters with isomerized olefins and other hydrocarbons as base oils for invert emulsion oil muds
US6599863B1 (en) 1999-02-18 2003-07-29 Schlumberger Technology Corporation Fracturing process and composition
US20030144153A1 (en) * 2000-12-29 2003-07-31 Jeff Kirsner Invert drilling fluids and methods of drilling boreholes
US6620770B1 (en) 2001-10-31 2003-09-16 Halliburton Energy Services, Inc. Additive for oil-based drilling fluids
US20040043905A1 (en) * 2000-12-29 2004-03-04 Jeff Miller Drilling fluid and method for enhanced suspension
US20040072697A1 (en) * 2001-01-10 2004-04-15 Kercheville James D. Spotting fluid for differential sticking
US20040149431A1 (en) * 2001-11-14 2004-08-05 Halliburton Energy Services, Inc. Method and apparatus for a monodiameter wellbore, monodiameter casing and monobore
US20040168802A1 (en) * 2003-02-27 2004-09-02 Creel Prentice G. Compositions and methods of cementing in subterranean formations using a swelling agent to inhibit the influx of water into a cement slurry
US20040171498A1 (en) * 2001-10-31 2004-09-02 Miller Jeffrey J. Metallic soaps of modified fatty acids and rosin acids and methods of making and using same
US20040221990A1 (en) * 2003-05-05 2004-11-11 Heathman James F. Methods and compositions for compensating for cement hydration volume reduction
US20040259738A1 (en) * 1996-08-02 2004-12-23 Patel Arvind D. Method for using reversible phase oil-based drilling fluid
US20050037929A1 (en) * 2001-10-31 2005-02-17 Jeff Kirsner Additive for oil-based drilling fluids
US6887832B2 (en) 2000-12-29 2005-05-03 Halliburton Energy Service,S Inc. Method of formulating and using a drilling mud with fragile gels
US20050137093A1 (en) * 2001-10-31 2005-06-23 Halliburton Energy Services, Inc. Metallic soaps of modified tall oil acids
US20050202978A1 (en) * 2004-03-12 2005-09-15 Shumway William W. Polymer-based, surfactant-free, emulsions and methods of use thereof
US20050202977A1 (en) * 2004-03-12 2005-09-15 Shumway William W. Surfactant-free emulsions and methods of use thereof
US20050250652A1 (en) * 2004-05-05 2005-11-10 Taylor Robert S Gelled invert emulsion compositions and methods of use and manufacture
US20060054320A1 (en) * 2004-09-14 2006-03-16 Brothers Lance E Subterranean fluids having improved environmental characteristics and methods of using these fluids in subterranean formations
US20060054321A1 (en) * 2004-08-24 2006-03-16 Szymanski Michael J Cement compositions comprising environmentally compatible defoamers and methods of use
US20060084580A1 (en) * 2004-10-18 2006-04-20 Santra Ashok K Methods of generating a gas in a plugging composition to improve its sealing ability in a downhole permeable zone
US20060086501A1 (en) * 2004-10-21 2006-04-27 Halliburton Energy Services, Inc. Methods of using a swelling agent in a wellbore
US20060213662A1 (en) * 2005-03-25 2006-09-28 Creel Prentice G Methods of delivering material downhole
US20070012447A1 (en) * 2005-07-13 2007-01-18 Fang Cindy C Inverse emulsion polymers as lost circulation material
US20070049500A1 (en) * 2003-07-29 2007-03-01 Heinz Mueller Borehole treating substance containing ether carboxylic acids
US20070142234A1 (en) * 2002-09-18 2007-06-21 Heinz Mueller Borehole treatment agent containing low-toxic oil phase
US20070219097A1 (en) * 2003-10-24 2007-09-20 Mueeller Heinz Emulsifiers For Drilling Fluids
US7285515B2 (en) 2002-06-21 2007-10-23 Petroleo Brasileiro S.A. - Petrobras Compositions of oil-based biodegradable drilling fluids and process for drilling oil and gas wells
US20080234145A1 (en) * 2004-07-15 2008-09-25 Heinz Mueller Use of Lithium Salts of Fatty Alcohol Sulphates for Cleaning Boreholes, Boring Devices and Borings
US7435706B2 (en) 2000-12-29 2008-10-14 Halliburton Energy Services, Inc. Thinners for invert emulsions
US20080261836A1 (en) * 2007-04-20 2008-10-23 Filler Paul A Compositions for use in well servicing fluids
US20090270280A1 (en) * 2008-04-29 2009-10-29 Ying Zhang Water-in-Oil Emulsions With Hydrogel Droplets Background
US7638466B2 (en) 2000-12-29 2009-12-29 Halliburton Energy Services, Inc. Thinners for invert emulsions
US20100256021A1 (en) * 2007-09-14 2010-10-07 Heinz Muller Thickeners for oil-based drilling fluids
US20100258307A1 (en) * 2007-10-24 2010-10-14 Heinz Muller Drilling composition, process for its preparation, and applications thereof
US20100294501A1 (en) * 2007-11-20 2010-11-25 Peter Daute Process for the preparation of an organic composition comprising an n-nonyl ester
US20100298176A1 (en) * 2007-09-14 2010-11-25 Diana Maker Lubricant Additives for Drilling Fluids
US20100300694A1 (en) * 2007-11-20 2010-12-02 Anja Vonderhagen Method for producing an organic composition containing an n-nonyl ether
US20100305009A1 (en) * 2007-09-14 2010-12-02 Alfred Westfechtel Additives for water-based drilling fluids
US20110011645A1 (en) * 2008-02-08 2011-01-20 Heinz Muller Crosslinked glycerol or oligoglycerol esters, and use thereof as an additive in drilling fluids
US20140315764A1 (en) * 2010-10-29 2014-10-23 Racional Energy & Environment Company Reclaimed Oil
US9334436B2 (en) 2010-10-29 2016-05-10 Racional Energy And Environment Company Oil recovery method and product
US10227545B2 (en) 2015-01-07 2019-03-12 Emery Oleochemicals Gmbh Additives for oilfield and industrial applications
US10253236B2 (en) 2013-10-31 2019-04-09 Amril Ag Environmental friendly well treatment fluids comprising an ester
US10435609B2 (en) 2015-01-07 2019-10-08 Emery Oleochemicals Gmbh Hydrophilic ether carboxylic acids as lubricant for salt based drilling systems
US10557335B2 (en) 2014-01-24 2020-02-11 Schlumberger Technology Corporation Gas fracturing method and system
US10683448B2 (en) 2016-02-08 2020-06-16 Saudi Arabian Oil Company Alkyl ester spotting fluid compositions for differential sticking

Citations (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2217926A (en) * 1936-09-05 1940-10-15 Shell Dev Nonaqueous drilling fluid
US2689219A (en) * 1952-02-11 1954-09-14 Stanolind Oil & Gas Co Emulsion drilling fluid
US2698833A (en) * 1952-08-25 1955-01-04 Oil Base Drilling fluid composition and method
US2816073A (en) * 1956-07-16 1957-12-10 Phillips Petroleum Co Drilling fluid
US2862881A (en) * 1955-08-01 1958-12-02 Magnet Cove Barium Corp Water-in-oil emulsion well fluid, methods of using and preparing same
US2999063A (en) * 1957-08-13 1961-09-05 Raymond W Hoeppel Water-in-oil emulsion drilling and fracturing fluid
US3507792A (en) * 1967-11-30 1970-04-21 Sinclair Research Inc Biodegradable,water-dispersible lubricant compositions
US3728277A (en) * 1970-01-12 1973-04-17 Witco Chemical Corp Stable water-in-oil emulsions
US3761410A (en) * 1971-03-22 1973-09-25 Nl Industries Inc Composition and process for increasing the lubricity of water base drilling fluids
US3894959A (en) * 1972-10-17 1975-07-15 Exxon Research Engineering Co Mixed carboxylic acid esters as electrical insulating oils
US3979305A (en) * 1972-09-29 1976-09-07 Union Oil Company Of California Low fluid loss additive composition
EP0009746A1 (en) * 1978-10-05 1980-04-16 Bayer Ag Lactone-modified ester oils and a lubricating composition containing them
US4212794A (en) * 1972-05-23 1980-07-15 Deutsche Texaco Aktiengesellschaft Aqueous drilling fluid
US4356096A (en) * 1981-06-01 1982-10-26 Venture Chemicals, Inc. Method of enhancing the effect of liquid organic lubricants in drilling fluids
US4374737A (en) * 1980-01-14 1983-02-22 Dana E. Larson Nonpolluting drilling fluid composition
US4409108A (en) * 1980-06-02 1983-10-11 Halliburton Company Lubricating composition for well fluids
US4436636A (en) * 1981-12-21 1984-03-13 Nl Industries, Inc. Invert emulsion well servicing fluids
US4474666A (en) * 1981-05-20 1984-10-02 Instituto Mexicano Del Petroleo Balanced-activity improved inverse emulsion to inhibit brittle lutite hydration in oil fields
US4481121A (en) * 1982-05-17 1984-11-06 Hughes Tool Company Viscosifier for oil base drilling fluids
FR2560210A1 (en) * 1983-12-30 1985-08-30 Inst Francais Du Petrole Process for the manufacture of a methyl, ethyl, propyl or butyl ester of a fatty acid suitable for use as diesel fuel
GB2158437A (en) * 1984-05-10 1985-11-13 Milchem Inc Emulsifier and invert emulsion drilling fluids containing it
US4554080A (en) * 1984-05-02 1985-11-19 Texaco Inc. Aqueous drilling fluids containing alkenyl succinic anhydrides
DE3419415A1 (en) * 1984-05-24 1985-11-28 Hans 7432 Urach Schur Production of lubricants, mould oils and drilling emulsions from environmentally friendly raw materials
US4572790A (en) * 1984-05-02 1986-02-25 Texaco Inc. Lubrication additive for aqueous drilling fluids
WO1986002598A1 (en) * 1984-11-01 1986-05-09 Heyden Eugene L Retractable implement closure
US4631136A (en) * 1985-02-15 1986-12-23 Jones Iii Reed W Non-polluting non-toxic drilling fluid compositions and method of preparation
EP0229912A2 (en) * 1985-11-19 1987-07-29 M-I Drilling Fluids Company (a Texas general partnership) Oil based drilling fluids and additives therefor
US4695411A (en) * 1985-02-15 1987-09-22 Institut Francais Du Petrol Process for manufacturing a composition of fatty acid esters useful as gas oil substitute motor fuel with hydrated ethyl alcohol and the resultant esters composition
US4802998A (en) * 1986-07-08 1989-02-07 Henkel Kommanditgesellschaft Auf Aktien Powder-form lubricant additives for water-based drilling fluids
US4964615A (en) * 1988-01-20 1990-10-23 Henkel Kommanditgesellschaft Auf Aktien Compositions for freeing jammed drill pipes

Patent Citations (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2217926A (en) * 1936-09-05 1940-10-15 Shell Dev Nonaqueous drilling fluid
US2689219A (en) * 1952-02-11 1954-09-14 Stanolind Oil & Gas Co Emulsion drilling fluid
US2698833A (en) * 1952-08-25 1955-01-04 Oil Base Drilling fluid composition and method
US2862881A (en) * 1955-08-01 1958-12-02 Magnet Cove Barium Corp Water-in-oil emulsion well fluid, methods of using and preparing same
US2816073A (en) * 1956-07-16 1957-12-10 Phillips Petroleum Co Drilling fluid
US2999063A (en) * 1957-08-13 1961-09-05 Raymond W Hoeppel Water-in-oil emulsion drilling and fracturing fluid
US3507792A (en) * 1967-11-30 1970-04-21 Sinclair Research Inc Biodegradable,water-dispersible lubricant compositions
US3728277A (en) * 1970-01-12 1973-04-17 Witco Chemical Corp Stable water-in-oil emulsions
US3761410A (en) * 1971-03-22 1973-09-25 Nl Industries Inc Composition and process for increasing the lubricity of water base drilling fluids
US4212794A (en) * 1972-05-23 1980-07-15 Deutsche Texaco Aktiengesellschaft Aqueous drilling fluid
US3979305A (en) * 1972-09-29 1976-09-07 Union Oil Company Of California Low fluid loss additive composition
US3894959A (en) * 1972-10-17 1975-07-15 Exxon Research Engineering Co Mixed carboxylic acid esters as electrical insulating oils
US4362635A (en) * 1978-10-05 1982-12-07 Bayer Aktiengesellschaft Lactone-modified ester oils
EP0009746A1 (en) * 1978-10-05 1980-04-16 Bayer Ag Lactone-modified ester oils and a lubricating composition containing them
US4374737A (en) * 1980-01-14 1983-02-22 Dana E. Larson Nonpolluting drilling fluid composition
US4409108A (en) * 1980-06-02 1983-10-11 Halliburton Company Lubricating composition for well fluids
US4474666A (en) * 1981-05-20 1984-10-02 Instituto Mexicano Del Petroleo Balanced-activity improved inverse emulsion to inhibit brittle lutite hydration in oil fields
US4356096A (en) * 1981-06-01 1982-10-26 Venture Chemicals, Inc. Method of enhancing the effect of liquid organic lubricants in drilling fluids
US4436636A (en) * 1981-12-21 1984-03-13 Nl Industries, Inc. Invert emulsion well servicing fluids
US4481121A (en) * 1982-05-17 1984-11-06 Hughes Tool Company Viscosifier for oil base drilling fluids
FR2560210A1 (en) * 1983-12-30 1985-08-30 Inst Francais Du Petrole Process for the manufacture of a methyl, ethyl, propyl or butyl ester of a fatty acid suitable for use as diesel fuel
US4572790A (en) * 1984-05-02 1986-02-25 Texaco Inc. Lubrication additive for aqueous drilling fluids
US4554080A (en) * 1984-05-02 1985-11-19 Texaco Inc. Aqueous drilling fluids containing alkenyl succinic anhydrides
GB2158437A (en) * 1984-05-10 1985-11-13 Milchem Inc Emulsifier and invert emulsion drilling fluids containing it
DE3419415A1 (en) * 1984-05-24 1985-11-28 Hans 7432 Urach Schur Production of lubricants, mould oils and drilling emulsions from environmentally friendly raw materials
WO1986002598A1 (en) * 1984-11-01 1986-05-09 Heyden Eugene L Retractable implement closure
US4631136A (en) * 1985-02-15 1986-12-23 Jones Iii Reed W Non-polluting non-toxic drilling fluid compositions and method of preparation
US4695411A (en) * 1985-02-15 1987-09-22 Institut Francais Du Petrol Process for manufacturing a composition of fatty acid esters useful as gas oil substitute motor fuel with hydrated ethyl alcohol and the resultant esters composition
EP0229912A2 (en) * 1985-11-19 1987-07-29 M-I Drilling Fluids Company (a Texas general partnership) Oil based drilling fluids and additives therefor
US4802998A (en) * 1986-07-08 1989-02-07 Henkel Kommanditgesellschaft Auf Aktien Powder-form lubricant additives for water-based drilling fluids
US4964615A (en) * 1988-01-20 1990-10-23 Henkel Kommanditgesellschaft Auf Aktien Compositions for freeing jammed drill pipes

Non-Patent Citations (56)

* Cited by examiner, † Cited by third party
Title
Acides Gras et Cires , p. 405 (date unknown). *
Acides Gras et Cires, p. 405 (date unknown).
Analytic Tables, Vegetable Oils, Fatty Acid Components , Ashland Chemical Company, 2 pages, (1973). *
Analytic Tables, Vegetable Oils, Fatty Acid Components, Ashland Chemical Company, 2 pages, (1973).
Article: "Diesel Fuel Derived from Vegetable Oils II: Emission Tests Using Rape Oil Methyl Ester" Energy in Agriculture 4, (1985) pp. 207-215.
Article: "Ester Oils--Structure and Chemical-Physical Properties" By: M. Wildersohn, Tribologie + Schmierungstechnik, pp. 70-75 No Date Available.
Article: "Use of Vegetable Oils and Their Transesterification Products as Diesel Fuels", By: Gateau, J.C. Guibet, G. Hilton, R. Stern; Rev. Pet., 1985 pp. 509-528.
Article: Diesel Fuel Derived from Vegetable Oils II: Emission Tests Using Rape Oil Methyl Ester Energy in Agriculture 4, (1985) pp. 207 215. *
Article: Ester Base Stocks, JSL , Jul. 1984, pp. 153 169. *
Article: Ester Base Stocks, JSL, Jul. 1984, pp. 153-169.
Article: Ester Oils Structure and Chemical Physical Properties By: M. Wildersohn, Tribologie Schmierungstechnik , pp. 70 75 No Date Available. *
Article: Use of Vegetable Oils and Their Transesterification Products as Diesel Fuels , By: Gateau, J.C. Guibet, G. Hilton, R. Stern; Rev. Pet. , 1985 pp. 509 528. *
Chapter: The Basics of Industrial Oleochemistry: A Comprehensive Survey of Selected Technologies Based on Natural Oils and Fats, pp. 90 101 No Date Available By G. Dieckelmann & H.J. Heinz. *
Chapter: The Basics of Industrial Oleochemistry: A Comprehensive Survey of Selected Technologies Based on Natural Oils and Fats, pp. 90-101 No Date Available By G. Dieckelmann & H.J. Heinz.
Composition and Constants of Natural Fats and Oils , 1 page document (date unknown). *
Composition and Constants of Natural Fats and Oils, 1 page document (date unknown).
Document: Presentation of alternative organic carrier fluids for drilling sludge, presented at the Forum on Borehole Stability, in Aberdeen, Sep. 15, 1988. *
Document: Presented at an NIF Course on oil field chemicals held at Fagernes (Norway) in Mar. 1987. *
Document: Presented at NIF Course on oil field chemicals held at Fagerness in Mar. 1987 {3}! Author: Dr. Claus-Peter Herold.
Document: Presented at NIF Course on oil field chemicals held at Fagerness in Mar. 1987 3 Author: Dr. Claus Peter Herold. *
Document: Sent by Henkel KGaA to the Operators, dated Jun. 1986. *
Drilling Fluids Optimization A Practical Field Approach, Penwell Books, 1986 By: James L. Lummus, J.J. Azar. *
Drilling Fluids Optimization--A Practical Field Approach, Penwell Books, 1986 By: James L. Lummus, J.J. Azar.
Ecological Evaluation of Carrier Fluid/Base Oil OMG 233 (Henkel) No Date Available. *
Excerpt from Manual of Drilling Fluids Technology, "Stuck Pipe", NL/Baroid/NL Industries, Inc., pp. 3, 12 & 13 (1985).
Excerpt from Manual of Drilling Fluids Technology, Stuck Pipe , NL/Baroid/NL Industries, Inc., pp. 3, 12 & 13 (1985). *
Kirk Othmer, Encyclopedia of Chemical Technology , vol. 22, third edition, cover page and pp. 531 541 (1982). *
Kirk-Othmer, Encyclopedia of Chemical Technology, vol. 22, third edition, cover page and pp. 531-541 (1982).
L.G. Zachary et al., Tall Oil and its Uses , F.W. Dodge Co., a division of McGraw Hill, pp. 14 and 26, (1965). *
L.G. Zachary et al., Tall Oil and its Uses, F.W. Dodge Co., a division of McGraw-Hill, pp. 14 and 26, (1965).
Letter dated 31 Jul. 1987 from Henkel DGaA Dusseldorf to Anchor Drilling Fluids. *
List of oil chemicals, issued by Henkel KGaA in Jul. 1986. *
Manuel de Rh e ologie des Fluides de Forage et Laitiers de Ciment Editions Technip 27, 1979. *
Manuel de Rheologie des Fluides de Forage et Laitiers de Ciment Editions Technip 27, 1979.
Mineral Oil Free Oil Based Drilling Fluids Development and Outlook 6 Authors: C. P. Herold, H. Muller, Dr. von Tapavicza from Labs of Henkel KGaA Dusseldorf (No Date Available). *
Mineral Oil Free Oil Based Drilling Fluids Developments and Outlook No Date Available. *
Mineral Oil Free Oil-Based Drilling Fluids Development and Outlook {6}! Authors: C.-P. Herold, H. Muller, Dr. von Tapavicza from Labs of Henkel KGaA Dusseldorf (No Date Available).
Mineral Oil Free Oil-Based Drilling Fluids Developments and Outlook No Date Available.
Oleochemicals, Unichema International Product Specifications, May 1988. *
One page document, collection of tables in French (date unknown). *
P.A. Boyd et al., "New Base Oil Used in Low-Toxicity Muds", Journal of Petroleum Technology, 1985.
P.A. Boyd et al., New Base Oil Used in Low Toxicity Muds , Journal of Petroleum Technology, 1985. *
Parrish et al., "Variability of the Acute Toxicity of Drilling Fluids to Mysids `Mysidopsis Bahia`", EPA Report No. EPA/600/D-88/212, 1988.
Parrish et al., Variability of the Acute Toxicity of Drilling Fluids to Mysids Mysidopsis Bahia , EPA Report No. EPA/600/D 88/212, 1988. *
Proposal sent by Henkel KGaA to the Operators, dated Jun. 1986 {4}! Corporate Author: Henkel KGaA Dusseldorf.
Proposal sent by Henkel KGaA to the Operators, dated Jun. 1986 4 Corporate Author: Henkel KGaA Dusseldorf. *
R. B. Bennett, "New Drilling Fluid Technology--Mineral Oil Mud", Journal of Petroleum Technology, 1984.
R. B. Bennett, New Drilling Fluid Technology Mineral Oil Mud , Journal of Petroleum Technology, 1984. *
Sources et monographies des principaux corps gras , p. 315 (date after 1989 not a reference). (Date Unknown). *
Sources et monographies des principaux corps gras, p. 315 (date after 1989--not a reference). (Date Unknown).
Translation of Article: "Use of Vegetable Oils and Their Transesterification Products as Diesel Fuels", P. Gateau et al. Rev. Inst. Fr. Pet. vol. 40, No. 4, Jul./Aug. 1985, pp. 509-528, cited as reference BL in Information Disclosure Statement filed Aug. 1, 1995.
Translation of Article: Use of Vegetable Oils and Their Transesterification Products as Diesel Fuels , P. Gateau et al. Rev. Inst. Fr. Pet. vol. 40, No. 4, Jul./Aug. 1985, pp. 509 528, cited as reference BL in Information Disclosure Statement filed Aug. 1, 1995. *
Translation of DE 34 19 415 (published Nov 28, 1985); cited as reference AO in Information Disclosure Statement filed Aug. 1, 1995. *
Translation of FR 2 560 210 (published 30 Aug. 1985); cited as reference AM in Information Disclosure Statement filed Aug. 1, 1995. *
Ullmans Enzyklop a die der technischen Chemie, 4., neubearbeitele und erweiterte Auflage, Band 11, Erd o l und Erdgas bis Formazanfarbstoffe, Verlag Chemie, Weinheim/Bergstr., cover page and p. 542 (date unknown). *
Ullmans Enzyklopadie der technischen Chemie, 4., neubearbeitele und erweiterte Auflage, Band 11, Erdol und Erdgas bis Formazanfarbstoffe, Verlag Chemie, Weinheim/Bergstr., cover page and p. 542 (date unknown).

Cited By (101)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7178594B2 (en) 1996-08-02 2007-02-20 M-I L.L.C. Method for using reversible phase oil-based drilling fluid
US20040259738A1 (en) * 1996-08-02 2004-12-23 Patel Arvind D. Method for using reversible phase oil-based drilling fluid
US6599863B1 (en) 1999-02-18 2003-07-29 Schlumberger Technology Corporation Fracturing process and composition
US6410488B1 (en) 1999-03-11 2002-06-25 Petro-Canada Drilling fluid
US20080032900A1 (en) * 2000-12-29 2008-02-07 Halliburton Energy Services, Inc. Method of formulating and using a drilling mud with fragile gels
US20070078062A1 (en) * 2000-12-29 2007-04-05 Jeff Kirsner Invert drilling fluids and methods of drilling boreholes
US7435706B2 (en) 2000-12-29 2008-10-14 Halliburton Energy Services, Inc. Thinners for invert emulsions
US7547663B2 (en) 2000-12-29 2009-06-16 Halliburton Energy Services, Inc. Invert drilling fluids and methods of drilling boreholes
US7534743B2 (en) 2000-12-29 2009-05-19 Halliburton Energy Services, Inc. Invert drilling fluids and methods of drilling boreholes
US7462580B2 (en) 2000-12-29 2008-12-09 Halliburton Energy Services, Inc. Flat rheology drilling fluids
US7278485B2 (en) 2000-12-29 2007-10-09 Halliburton Energy Services, Inc. Method of formulating and using a drilling mud with fragile gels
US20070078060A1 (en) * 2000-12-29 2007-04-05 Jeff Kirsner Invert drilling fluids and methods of drilling boreholes
US7456135B2 (en) 2000-12-29 2008-11-25 Halliburton Energy Services, Inc. Methods of drilling using flat rheology drilling fluids
US6887832B2 (en) 2000-12-29 2005-05-03 Halliburton Energy Service,S Inc. Method of formulating and using a drilling mud with fragile gels
US20030144153A1 (en) * 2000-12-29 2003-07-31 Jeff Kirsner Invert drilling fluids and methods of drilling boreholes
US20040043905A1 (en) * 2000-12-29 2004-03-04 Jeff Miller Drilling fluid and method for enhanced suspension
US7645723B2 (en) 2000-12-29 2010-01-12 Halliburton Energy Services Method of drilling using invert emulsion drilling fluids
US20070078061A1 (en) * 2000-12-29 2007-04-05 Jeff Kirsner Invert drilling fluids and methods of drilling boreholes
US7572755B2 (en) 2000-12-29 2009-08-11 Halliburton Energy Services, Inc. Drilling fluid comprising a vinyl neodecanoate polymer and method for enhanced suspension
US7488704B2 (en) 2000-12-29 2009-02-10 Halliburton Energy Services, Inc. Invert drilling fluids for use in drilling in subterranean formations
US7638466B2 (en) 2000-12-29 2009-12-29 Halliburton Energy Services, Inc. Thinners for invert emulsions
US6984611B2 (en) * 2001-01-10 2006-01-10 Halliburton Energy Services, Inc. Spotting fluid for differential sticking
US20040072697A1 (en) * 2001-01-10 2004-04-15 Kercheville James D. Spotting fluid for differential sticking
US7485602B2 (en) 2001-08-14 2009-02-03 Halliburton Energy Services, Inc. Drilling method using isomerized olefins and paraffin hydrocarbons as base oils for invert emulsion oil muds
US20040152603A1 (en) * 2001-08-14 2004-08-05 Jeff Kirsner Blends of esters with isomerized olefins and other hydrocarbons as base oils for invert emulsion oil muds
US20030036484A1 (en) * 2001-08-14 2003-02-20 Jeff Kirsner Blends of esters with isomerized olefins and other hydrocarbons as base oils for invert emulsion oil muds
US20050037929A1 (en) * 2001-10-31 2005-02-17 Jeff Kirsner Additive for oil-based drilling fluids
US20040171498A1 (en) * 2001-10-31 2004-09-02 Miller Jeffrey J. Metallic soaps of modified fatty acids and rosin acids and methods of making and using same
US7271132B2 (en) 2001-10-31 2007-09-18 Halliburton Energy Services, Inc. Metallic soaps of modified fatty acids and rosin acids and methods of making and using same
US7432230B2 (en) 2001-10-31 2008-10-07 Halliburton Energy Service, Inc. Metallic soaps of modified fatty acids and rosin acids and methods of making and using same
US7534746B2 (en) 2001-10-31 2009-05-19 Halliburton Energy Services, Inc. Metallic soaps of modified tall oil acids
US7008907B2 (en) 2001-10-31 2006-03-07 Halliburton Energy Services, Inc. Additive for oil-based drilling fluids
US20070259790A1 (en) * 2001-10-31 2007-11-08 Miller Jeffrey J Metallic soaps of modified fatty acids and rosin acids and methods of making and using same
US20050137093A1 (en) * 2001-10-31 2005-06-23 Halliburton Energy Services, Inc. Metallic soaps of modified tall oil acids
US6620770B1 (en) 2001-10-31 2003-09-16 Halliburton Energy Services, Inc. Additive for oil-based drilling fluids
US20040149431A1 (en) * 2001-11-14 2004-08-05 Halliburton Energy Services, Inc. Method and apparatus for a monodiameter wellbore, monodiameter casing and monobore
US20050241855A1 (en) * 2001-11-14 2005-11-03 Halliburton Energy Services, Inc. Method and apparatus for a monodiameter wellbore, monodiameter casing, monobore, and/or monowell
US7066284B2 (en) 2001-11-14 2006-06-27 Halliburton Energy Services, Inc. Method and apparatus for a monodiameter wellbore, monodiameter casing, monobore, and/or monowell
US7225879B2 (en) 2001-11-14 2007-06-05 Halliburton Energy Services, Inc. Method and apparatus for a monodiameter wellbore, monodiameter casing, monobore, and/or monowell
US7571777B2 (en) 2001-11-14 2009-08-11 Halliburton Energy Services, Inc. Method and apparatus for a monodiameter wellbore, monodiameter casing, monobore, and/or monowell
US7285515B2 (en) 2002-06-21 2007-10-23 Petroleo Brasileiro S.A. - Petrobras Compositions of oil-based biodegradable drilling fluids and process for drilling oil and gas wells
US7666820B2 (en) 2002-09-18 2010-02-23 Emery Oleochemicals Gmbh Borehole treatment agent containing low-toxic oil phase
US20070142234A1 (en) * 2002-09-18 2007-06-21 Heinz Mueller Borehole treatment agent containing low-toxic oil phase
US7866394B2 (en) 2003-02-27 2011-01-11 Halliburton Energy Services Inc. Compositions and methods of cementing in subterranean formations using a swelling agent to inhibit the influx of water into a cement slurry
US20040168802A1 (en) * 2003-02-27 2004-09-02 Creel Prentice G. Compositions and methods of cementing in subterranean formations using a swelling agent to inhibit the influx of water into a cement slurry
US20040221990A1 (en) * 2003-05-05 2004-11-11 Heathman James F. Methods and compositions for compensating for cement hydration volume reduction
US20050204960A1 (en) * 2003-05-05 2005-09-22 Heathman James F Methods and compositions for compensating for cement hydration volume reduction
US20070049500A1 (en) * 2003-07-29 2007-03-01 Heinz Mueller Borehole treating substance containing ether carboxylic acids
US7741248B2 (en) 2003-07-29 2010-06-22 Emery Oleochemicals Gmbh Borehole treating substance containing ether carboxylic acids
US20070219097A1 (en) * 2003-10-24 2007-09-20 Mueeller Heinz Emulsifiers For Drilling Fluids
US20050202978A1 (en) * 2004-03-12 2005-09-15 Shumway William W. Polymer-based, surfactant-free, emulsions and methods of use thereof
US20050202977A1 (en) * 2004-03-12 2005-09-15 Shumway William W. Surfactant-free emulsions and methods of use thereof
US7507694B2 (en) 2004-03-12 2009-03-24 Halliburton Energy Services, Inc. Surfactant-free emulsions and methods of use thereof
US8030252B2 (en) 2004-03-12 2011-10-04 Halliburton Energy Services Inc. Polymer-based, surfactant-free, emulsions and methods of use thereof
US7534745B2 (en) 2004-05-05 2009-05-19 Halliburton Energy Services, Inc. Gelled invert emulsion compositions comprising polyvalent metal salts of an organophosphonic acid ester or an organophosphinic acid and methods of use and manufacture
US20050250652A1 (en) * 2004-05-05 2005-11-10 Taylor Robert S Gelled invert emulsion compositions and methods of use and manufacture
US20080234145A1 (en) * 2004-07-15 2008-09-25 Heinz Mueller Use of Lithium Salts of Fatty Alcohol Sulphates for Cleaning Boreholes, Boring Devices and Borings
US7959743B2 (en) 2004-07-15 2011-06-14 Cognis Oleochemicals Gmbh Lithium salts of fatty alcohol sulphates for cleaning boreholes, boring devices and borings
US20060054321A1 (en) * 2004-08-24 2006-03-16 Szymanski Michael J Cement compositions comprising environmentally compatible defoamers and methods of use
US20070012222A1 (en) * 2004-08-24 2007-01-18 Szymanski Michael J Cement compositions comprising environmentally compatible defoamers and methods of use
US7150322B2 (en) 2004-08-24 2006-12-19 Halliburton Energy Services, Inc. Cement compositions comprising environmentally compatible defoamers and methods of use
US7824489B2 (en) 2004-08-24 2010-11-02 Halliburton Energy Services Inc Cement compositions comprising environmentally compatible defoamers and methods of use
US20060270565A1 (en) * 2004-09-14 2006-11-30 Brothers Lance E Subterranean fluids having improved environmental characteristics and methods of using these fluids in subterranean formations
US20060054320A1 (en) * 2004-09-14 2006-03-16 Brothers Lance E Subterranean fluids having improved environmental characteristics and methods of using these fluids in subterranean formations
US7111684B2 (en) 2004-09-14 2006-09-26 Halliburton Energy Services, Inc. Subterranean fluids having improved environmental characteristics and methods of using these fluids in subterranean formations
US7316742B2 (en) 2004-09-14 2008-01-08 Halliburton Energy Services, Inc. Subterranean fluids having improved environmental characteristics and methods of using these fluids in subterranean formations
US20060084580A1 (en) * 2004-10-18 2006-04-20 Santra Ashok K Methods of generating a gas in a plugging composition to improve its sealing ability in a downhole permeable zone
US7642223B2 (en) 2004-10-18 2010-01-05 Halliburton Energy Services, Inc. Methods of generating a gas in a plugging composition to improve its sealing ability in a downhole permeable zone
US7690429B2 (en) 2004-10-21 2010-04-06 Halliburton Energy Services, Inc. Methods of using a swelling agent in a wellbore
US20060086501A1 (en) * 2004-10-21 2006-04-27 Halliburton Energy Services, Inc. Methods of using a swelling agent in a wellbore
US20060213662A1 (en) * 2005-03-25 2006-09-28 Creel Prentice G Methods of delivering material downhole
US7891424B2 (en) 2005-03-25 2011-02-22 Halliburton Energy Services Inc. Methods of delivering material downhole
US8703657B2 (en) 2005-07-13 2014-04-22 Halliburton Energy Services, Inc. Inverse emulsion polymers as lost circulation material
US20070012447A1 (en) * 2005-07-13 2007-01-18 Fang Cindy C Inverse emulsion polymers as lost circulation material
US7870903B2 (en) 2005-07-13 2011-01-18 Halliburton Energy Services Inc. Inverse emulsion polymers as lost circulation material
US20080261836A1 (en) * 2007-04-20 2008-10-23 Filler Paul A Compositions for use in well servicing fluids
US20100298176A1 (en) * 2007-09-14 2010-11-25 Diana Maker Lubricant Additives for Drilling Fluids
US20100305009A1 (en) * 2007-09-14 2010-12-02 Alfred Westfechtel Additives for water-based drilling fluids
US8153562B2 (en) 2007-09-14 2012-04-10 Emery Oleochemicals Gmbh Oligoglycerol fatty acid ester thickeners for oil-based drilling fluids
US8236735B2 (en) 2007-09-14 2012-08-07 Emery Oleochemicals Gmbh Oligoglycerol fatty acid ester lubricant additives for drilling fluids
US20100256021A1 (en) * 2007-09-14 2010-10-07 Heinz Muller Thickeners for oil-based drilling fluids
US8148305B2 (en) 2007-09-14 2012-04-03 Emery Oleochemicals Gmbh Oligoglyercol fatty acid ester additives for water-based drilling fluids
US9745502B2 (en) 2007-10-24 2017-08-29 Emery Oleochemicals Gmbh Drilling composition, process for its preparation, and applications thereof
US20100258307A1 (en) * 2007-10-24 2010-10-14 Heinz Muller Drilling composition, process for its preparation, and applications thereof
US9982182B2 (en) 2007-10-24 2018-05-29 Emery Oleochemicals Gmbh Drilling composition, process for its preparation, and applications thereof
US20100300694A1 (en) * 2007-11-20 2010-12-02 Anja Vonderhagen Method for producing an organic composition containing an n-nonyl ether
US20100294501A1 (en) * 2007-11-20 2010-11-25 Peter Daute Process for the preparation of an organic composition comprising an n-nonyl ester
US20110011645A1 (en) * 2008-02-08 2011-01-20 Heinz Muller Crosslinked glycerol or oligoglycerol esters, and use thereof as an additive in drilling fluids
US8193125B2 (en) 2008-02-08 2012-06-05 Emery Oleochemicals Gmbh Crosslinked glycerol or oligoglycerol esters, and use thereof as an additive in drilling fluids
US7902128B2 (en) 2008-04-29 2011-03-08 Halliburton Energy Services Inc. Water-in-oil emulsions with hydrogel droplets background
US20090270280A1 (en) * 2008-04-29 2009-10-29 Ying Zhang Water-in-Oil Emulsions With Hydrogel Droplets Background
US20140315764A1 (en) * 2010-10-29 2014-10-23 Racional Energy & Environment Company Reclaimed Oil
US9334436B2 (en) 2010-10-29 2016-05-10 Racional Energy And Environment Company Oil recovery method and product
US9334449B2 (en) * 2010-10-29 2016-05-10 Racional Energy And Environment Company Reclaimed oil
US10253236B2 (en) 2013-10-31 2019-04-09 Amril Ag Environmental friendly well treatment fluids comprising an ester
US10557335B2 (en) 2014-01-24 2020-02-11 Schlumberger Technology Corporation Gas fracturing method and system
US10227545B2 (en) 2015-01-07 2019-03-12 Emery Oleochemicals Gmbh Additives for oilfield and industrial applications
US10435609B2 (en) 2015-01-07 2019-10-08 Emery Oleochemicals Gmbh Hydrophilic ether carboxylic acids as lubricant for salt based drilling systems
US10683448B2 (en) 2016-02-08 2020-06-16 Saudi Arabian Oil Company Alkyl ester spotting fluid compositions for differential sticking
US10927285B2 (en) 2016-02-08 2021-02-23 Saudi Arabian Oil Company Alkyl ester spotting fluid compositions for differential sticking
US10927286B2 (en) 2016-02-08 2021-02-23 Saudi Arabian Oil Company Alkyl ester spotting fluid compositions for differential sticking

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