US3305010A - Plate and fin heat exchanger - Google Patents

Plate and fin heat exchanger Download PDF

Info

Publication number
US3305010A
US3305010A US447753A US44775365A US3305010A US 3305010 A US3305010 A US 3305010A US 447753 A US447753 A US 447753A US 44775365 A US44775365 A US 44775365A US 3305010 A US3305010 A US 3305010A
Authority
US
United States
Prior art keywords
elements
fin
plate
assembly
heat exchanger
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US447753A
Inventor
Robert L Campbell
Gene P Deeter
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
United Aircraft Products Inc
Original Assignee
United Aircraft Products Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by United Aircraft Products Inc filed Critical United Aircraft Products Inc
Priority to US447753A priority Critical patent/US3305010A/en
Application granted granted Critical
Publication of US3305010A publication Critical patent/US3305010A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F3/00Plate-like or laminated elements; Assemblies of plate-like or laminated elements
    • F28F3/02Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations
    • F28F3/025Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations the means being corrugated, plate-like elements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28DHEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
    • F28D9/00Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall
    • F28D9/0062Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits for one heat-exchange medium being formed by spaced plates with inserted elements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F9/00Casings; Header boxes; Auxiliary supports for elements; Auxiliary members within casings
    • F28F9/02Header boxes; End plates
    • F28F9/026Header boxes; End plates with static flow control means, e.g. with means for uniformly distributing heat exchange media into conduits
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S165/00Heat exchange
    • Y10S165/355Heat exchange having separate flow passage for two distinct fluids
    • Y10S165/356Plural plates forming a stack providing flow passages therein
    • Y10S165/387Plural plates forming a stack providing flow passages therein including side-edge seal or edge spacer bar
    • Y10S165/39Flange element to connect two adjacent heat exchange plates

Definitions

  • Still another object of the invention is to provide a-construction characterized by a unique manifold design wherein the primary surface fin area extends into the manifold area in a manner to obviate flow blocking and high tiow restrictions.
  • FIG. 1 is a view in side elevation o f a plate and iin heat exchanger in accordance with the instant invention, a showing of plate and lin elements intermediate ends of the assembly being diagrammatically indicated; v
  • FIG. 2 is a top plan view of the assembly of FIG. 1, shown at a reduced scale;
  • FIG. 3 is a fragmentary view in cross section, taken substantially along the line 3-3 of FIG. 2, and enlarged relatively thereto;
  • FIG. 4 is a front end View of the device as shown FIG. 2; v
  • FIG. 5 is a fragmentary view in cross section, taken substantially along the line 5 5 of FIG. 2, and relatively enlarged;
  • FIG. 6 is a view in exploded isometric, showing detail of the construction and relationship of adjacent plate and tin elements
  • FIG. 7 is a view partly diagrammatic and broken away showing the path of travel of a first liuid through the heat exchanger
  • FIG. 8 is a View like FIG. 7 showing the path of iiow through the heat exchanger of a second fluid.
  • FIG. 9 is a fragmentary view in longitudinal section taken substantially along the line 9-9 of FIG. 2 and enlarged relatively thereto.
  • the illustrative device of the invention is of relatively large size, as shown in FIGS. y
  • a plate type heat exchanger in accordance with the instant invention the plate and iin elements are stacked in a superposed relation one upon another, with the assembly of parts being joined together in a brazing or like operation.
  • core sheets 11 and 12 At the top and bottom of the core comprised of the plate and tin elements are core sheets 11 and 12.
  • plate elements 13 In an alternating relation to one another and disposed between the core sheets are plate elements 13, hereinafter termed parting sheets, and fin elements.
  • the latter are provided in two types 14 and 15, shown in FIG. 6, and which may be described as long and short elements respectively.
  • the core sheets 11 and 12 are flat, continuous surface parts rectangular in their original shape and having their corners cut off to deiine at each end angularly disposed faces converging to a point in the longitudinal axis of each sheet.
  • Each core sheet has iny effect aA tapered nose at each end.
  • the parting sheets 13 are made thin for good heat ⁇ transfer therethrough and have a conguration corresponding to that of the core sheets 11 and 12. In its tap-ered nose portions, however, each parting sheet is cut away to define through openings 16;.
  • the 1in elements 14 have the same coniguration as core sheets 11 and 12 and parting sheets 13, but are somewhat narrower in their side to side dimension.
  • Each of these also is made thin for good heat transfer therethrough and has a crimped or gathered shaped providing peaks and'valleys running lengthwise of the'element.
  • the fin elements 15 are constructed like the elements 14 but are shorter in length, having no tapered nose portions at the ends thereof.
  • a superposed assembly is comprised of a parting sheet 13, a tin element 14 in next adjacent relation thereto, another parting 'sheet 13, a iin element 15, another parting sheet and so on.
  • spacer devices 17 associated with the long fin elements 14 and other spacer devices 18 associated with the short iin elements 1S are also comprised in the core assembly 4 .
  • the devices 17, which may be solid or have the channel-like configuration shown extend longitudinally of the tin elements 14, one on each side thereof and are interposed asspacers between the marginal edges of-overlying and underlying parting sheets 13.
  • the devices 17 complement the fin elements 14 in achieving a side to side dimension corresponding to the width of the parting sheets 13.
  • the spacer devices 18 are disposed in la longitudinal complementary relation to the tin elements 15 at the sides thereof and are interposed as spacers between adjacent overlying and underlying parting sheets 13.
  • the devices 18 are relatively inver! ed to -place their bent over ends 19 in a-projecting relation to respectively opposite ends of the tin element.
  • the angularity of the bent over ends 19 corresponds to that of the tapered nose ends of the sheets 13 and ⁇ elements 14.
  • the parts are brought into a contacting relation in such manner that devices 17 contact and hold spaced apart a pair of parting sheets 13 While the devices 18 similarly contact and hold spaced apart a next adjacent pair of parting sheets 13.
  • the ends 19 of the devices 18 are aligned with marginal edges of end faces of the sheets 13 in such manner as to close a space between adjacent'sheets 13 in a face at one end of the core assembly, and, since the devices 18 are relatively inverted at each iin element 15 then the closed portions at opposite ends of the core are ⁇ at diametrically opposite angular faces.
  • a corresponding space in the same plane is open for ilow of a fluid into or out of the core.
  • Such open area is, moreover, matched by a like opening in the same plane in the diametrically opposite face of the core at the other end.
  • an assembled core presents angular faces 21 and 22 in each of'which is a series of entrance or exit openings 23.
  • the openings 23 are vertically offset.
  • Duct Work suitably placed against or fixed to the respective cre faces may thus be placed in communication with a part of the core interior independently of other duct means attached to the other core face to communicate with the openings therein.
  • Each opening 23 leads into or out of what may be considered a cham-ber 24 extending completely across the end of the core, as distinguished from the opening 23 which occupies only one face thereof ⁇
  • the chamber 24 is formed by overlying and underlying parting sheets 13 and by the end of a fin element 15 co-planar with the opening 23. Fluid within the chamber 24 has access to the iin element 15, on both sides thereof, and has access through the par-ting sheet openings 16 to the underside of an overlying fin element 14 and to the top side of an underlying fin element 14. Assuming a given opening 23 to function as an inlet, a iiuid entering a chamber 24 therethrough distributes itself throughout the chamber to be applied over the entire end of the iin element 15.
  • the liuid flows longitudinally of such element on both sides thereof to the opposite end ofthe core where it enters another chamber 24 and discharges through an aligned opening 23.
  • the fluid at the inlet end flows upward through an opening 16 in an overlying sheet 13 and flows downward through an opening 16 in an underlying sheet 13.
  • There i-t contacts the underside and topside respectively of fin elements 14 and flows along these surfaces to the opposite end of the core.
  • the iin element 15 is in contacting heat conducting relation to overlying and underlying sheets 13 which are in turn in contacting, heat conducting relation to 1in elements 14.
  • the liow through the heat exchanger core is, as noted, counterfiow, the flow being substantially as indicated in FIGS. 7 and 8.
  • a first iiuid such as a gas enters the heat exchanger core through one end thereof at one of the angularly disposed faces. Distributing itself and iiowing longitudinally of the core in the manner above described the gas leaves the heat exchanger by way of the diametrically opposed face at the opposite end of the core.
  • another fluid such as air enters the heat exchanger at the same end throughwhich the gas discharges, but in the other angularly disposed face.
  • the air then flows reversely through the heat exchanger, counter to the flow of the gas, and exits through the first described end through the face other than the one admitting the gas.
  • the fluids have a relationship to one another and to the iin elements 14 and 15 substantially as indicated in FIGS. 3 and 5.
  • shaded areas indicate the presence of gas While the unshaded areas indicate the presence of air.
  • a fin element 15 is shown disposed in the air iiow stream.
  • Air is present on both sides of the element 15 and is present also above and below adjacent parting sheets 13 (by virtue of having passed through openings 16 therein) where it is in Contact with CII one side only of respective iin elements 14.
  • gas is pres-ent for a direct transfer of heat through the fin surface.
  • Gas also is present on both sides of the next adjacent iin element 15, and, beyond such iin element 15, on one side of the succeeding iin element 14.
  • the iin elements 15 perform a function in maintaining a spaced relation between the fin elements 14 and serve also as indirect or secondary heat transfer means, conducting heat through contacted plates Or sheets 13 to companion fin elements 14.
  • the openings 23 and chambers 24 at the ends of the core provide a manifolding means which makes possible a high fin density with relatively low restriction and without fluid iiow blockage.
  • the fluid in the chambers 24 has ready access to and is in communication with the underlying and overlying fin elements 14 and movement of the fiuid to and through the flow passages defined by the corrugations of the iin elements is unimpeded.
  • the ends of the iin elements 14 are closed to inhibit bypassing of the iiuids. This may be done in any suitable manner, as by depositing weld metal 25 at the ends ⁇ ofthe elements, as indicated in FIG. 4, whereby to close the face of the core at the location of the elements 14. According to another method the tips of elements 14 may be overlaid by strips having filler portions received between the undulating fins and united therewith in a brazing operation which may be the same operation joining together the several parts of the core.
  • a plate type heat exchanger assembly including superposed stacked plate and fin elements, said plate elements defining liow paths occupied by said iin elements, said iin elements being arranged in sets of three with a middle iin of each set being short in relation to the other iins of the set to dene at least one end of said assembly at each set of said elements a chamber wherein introduced fluid has access to both sides of said middle lin and access to one side only of the said-other fin elements, a plate element being disposed between said middle iin and each of said other tins in heat conducting relation therebetween, adjacent sets of iins having said other fins in common, and manifolding means for introducing fluids of different temperature to opposite ends of said assembly to flow counter to one another through adjacent sets of fin elements, said other fin elements being in projecting relation to said middle iin element at each end thereof to define chambers for the entrance and exit of a fluid, said plate elements being formed to allow communication thereby between said chambers and said other tins on
  • a plate type heat exchanger assembly constructed for the -counterflow of iiuids of different temperature, including a plurality of stacked iin elements comprised of alternating short and long elements, the latter projecting at each end beyond the former and having each end defining different angular faces, the ends of said long elements being closed, means for closing each side margin of said fin elements, certain of said means at the location of said short iin elements extendingacross an angular face at one end of the assembly, adjacent ones of said certain means being relatively inverted to leave at corresponding faces at opposite ends relatively offset openings, a iiuid being admitted to said assembly by way of a series of said openings in one face of said assembly at one end thereof and exhausting from'openings at a diametrically opposite face at the opposite end and a iiuid of different temperature being admitted to said assembly by way of a series of said openings in the other face of said assembly at the said opposite end and exhausting from openings at the other face at said one end, the fluid
  • a plate type heat exchanger according to claim 2, characterized in that said parting sheets are shaped in correspondence with the shape of said long elements and in the portions projected relatively to said short n elements are cut away to provide the described communication.
  • a plate type heat exchanger assembly constructed for the counterow of uids of different temperature, including a plurality of stacked fin elements comprised of alternating short and long elements, the latter projecting at each end beyond the former and having their ends closed, parting sheets between said n elements coextensive in length and aligned with said long fin elements, marginal spacer devices interposed between adjacent pairs of parting sheets along the sides of said fm elements, certain spacer devices at locations of said short fm elements being bent over and extending partly across one end of the assembly, adjacent ones of said certain devices being relatively inverted to leave at each end of the assembly adjacent openings which are laterally and vertically offset from one another, and openings in the portions of said parting sheets projected relatively to said short iin elements whereby a fluid introduced into an opening at one end of the assembly may flow through the assembly in contact with both sides of a short n and in contact with overlying and underlying surfaces only of adjacent long fin elements and may discharge through a corresponding opening at the opposite end of the assembly.
  • a plate type heat exchanger assembly constructed for the counterflow of tluids of dilferent temperature, including a plurality of stacked fin elements comprised of alternating short and long elements, the latter projecting at each end beyond the former, the ends of said long elements being closed, other means for closing each side margin of said fin elements, portions of certain of said means at the location of said short fin elements extending angularly partly across one end of the assembly, adjacent ones of said certain means being relatively inverted to leave at each end relatively offset openings with the openings at opposite ends being reversely disposed, a fluid being admitted to said assembly by way of a vertical series of said openings in one side face of said assembly at one end thereof and exhausting from openings at a diametrically opposite face at the opposite end and a fluid of different temperature being admitted to said assembly by way of a series of said openings in the other face of said assembly at the said opposite end and exhausting from openings at the other face at said one end, fluids owing over said n elements in counterflow through said assembly, the length

Description

Feb- 21, 1967 R. l.. CAMPBELL ETAL 3,305,010
` PLATE AND FIN HEAT EXCHANGER Filed April 13, 1965 2 Sheets-Sheet l TC cgn g LFC-u l 1-:
ECC RE; f E* nr 1r *u Cl? INVENTORS 0 7 L CHNPEL ew@ P. ffrfe FE- 4 BY Feb- 21, 1967 R. L. CAMPBELL ETAL 3,305,010
PLATE AND FIN HEAT EXCHANGER Filed April 13, 1965 2 Sheets-Sheet 2 United States Patent O 3,305,010 PLATE AND FIN HEAT EXCHANGER Robert L. Campbell and Gene P. Deeter, Dayton,rhio, assignors to United Aircraft Products, Inc., Dayton, Ohio, a corporation of Ohio Filed Apr. 13, 1965, Ser. No. 447,753
Claims. (Cl. 165-166) This invention relates to plate and 1in heat exchangers,
and particularly to a new construction therefor providing for more efficient operation, that is, a construction lighter heat transfer surface, in heat exchangers of `high n density. y
Still another object of the invention is to provide a-construction characterized by a unique manifold design wherein the primary surface fin area extends into the manifold area in a manner to obviate flow blocking and high tiow restrictions.
Other objects and structural details of the invention will appearfrom the following description, when read in connection with the accompanying drawings, wherein:
FIG. 1 is a view in side elevation o f a plate and iin heat exchanger in accordance with the instant invention, a showing of plate and lin elements intermediate ends of the assembly being diagrammatically indicated; v
FIG. 2 is a top plan view of the assembly of FIG. 1, shown at a reduced scale;
FIG. 3 is a fragmentary view in cross section, taken substantially along the line 3-3 of FIG. 2, and enlarged relatively thereto;
FIG. 4 is a front end View of the device as shown FIG. 2; v
FIG. 5 is a fragmentary view in cross section, taken substantially along the line 5 5 of FIG. 2, and relatively enlarged;
FIG. 6 is a view in exploded isometric, showing detail of the construction and relationship of adjacent plate and tin elements;
FIG. 7 is a view partly diagrammatic and broken away showing the path of travel of a first liuid through the heat exchanger;
FIG. 8 is a View like FIG. 7 showing the path of iiow through the heat exchanger of a second fluid; and
FIG. 9 is a fragmentary view in longitudinal section taken substantially along the line 9-9 of FIG. 2 and enlarged relatively thereto.
Referring to the drawings, the illustrative device of the invention is of relatively large size, as shown in FIGS. y
1 and 2 for example, comprising a large number of plate and fin elements defining heat transfer surface commensurate with a large volume fluid flow. For convenience of illustration the device is shown in fragmentary form or at substantially reduced scale in other views. i
In a plate type heat exchanger in accordance with the instant invention the plate and iin elements are stacked in a superposed relation one upon another, with the assembly of parts being joined together in a brazing or like operation. At the top and bottom of the core comprised of the plate and tin elements are core sheets 11 and 12. In an alternating relation to one another and disposed between the core sheets are plate elements 13, hereinafter termed parting sheets, and fin elements. The latter are provided in two types 14 and 15, shown in FIG. 6, and which may be described as long and short elements respectively.
The core sheets 11 and 12 are flat, continuous surface parts rectangular in their original shape and having their corners cut off to deiine at each end angularly disposed faces converging to a point in the longitudinal axis of each sheet. Each core sheet has iny effect aA tapered nose at each end. The parting sheets 13 are made thin for good heat `transfer therethrough and have a conguration corresponding to that of the core sheets 11 and 12. In its tap-ered nose portions, however, each parting sheet is cut away to define through openings 16;. The 1in elements 14 have the same coniguration as core sheets 11 and 12 and parting sheets 13, but are somewhat narrower in their side to side dimension. Each of these also is made thin for good heat transfer therethrough and has a crimped or gathered shaped providing peaks and'valleys running lengthwise of the'element. There are no openings in the n elements 14 corresponding to the openings 16y in the parting sheets 13. The fin elements 15 are constructed like the elements 14 but are shorter in length, having no tapered nose portions at the ends thereof. As indicated in FIG. 7, in assembling a core structure the sheets 13 are placed in asuperposed alternating relation to the lin elements 14 and to the iin elements 15. Thus a superposed assembly is comprised of a parting sheet 13, a tin element 14 in next adjacent relation thereto, another parting 'sheet 13, a iin element 15, another parting sheet and so on.
Also comprised in the core assembly 4are spacer devices 17 associated with the long fin elements 14 and other spacer devices 18 associated with the short iin elements 1S. Thus the devices 17, which may be solid or have the channel-like configuration shown, extend longitudinally of the tin elements 14, one on each side thereof and are interposed asspacers between the marginal edges of-overlying and underlying parting sheets 13. Thus, the devices 17 complement the fin elements 14 in achieving a side to side dimension corresponding to the width of the parting sheets 13. Similarly/,the spacer devices 18 are disposed in la longitudinal complementary relation to the tin elements 15 at the sides thereof and are interposed as spacers between adjacent overlying and underlying parting sheets 13. The devices 18, however, yare long-er than the devices 17, each having a projected bent over finger portion 19 at one end. On the respective'sides of each iin element 15 the devices 18 are relatively inver! ed to -place their bent over ends 19 in a-projecting relation to respectively opposite ends of the tin element.
The angularity of the bent over ends 19 corresponds to that of the tapered nose ends of the sheets 13 and `elements 14. In assembling a core the parts are brought into a contacting relation in such manner that devices 17 contact and hold spaced apart a pair of parting sheets 13 While the devices 18 similarly contact and hold spaced apart a next adjacent pair of parting sheets 13. The ends 19 of the devices 18 are aligned with marginal edges of end faces of the sheets 13 in such manner as to close a space between adjacent'sheets 13 in a face at one end of the core assembly, and, since the devices 18 are relatively inverted at each iin element 15 then the closed portions at opposite ends of the core are `at diametrically opposite angular faces. Correspondingly in a space of one face closed by an end 19 a corresponding space in the same plane is open for ilow of a fluid into or out of the core. Such open area is, moreover, matched by a like opening in the same plane in the diametrically opposite face of the core at the other end.
Viewed from the front, or `from one end, therefore, as shown in FIG. 4, an assembled core presents angular faces 21 and 22 in each of'which is a series of entrance or exit openings 23. In the respective faces the openings 23 are vertically offset. Duct Work suitably placed against or fixed to the respective cre faces may thus be placed in communication with a part of the core interior independently of other duct means attached to the other core face to communicate with the openings therein.
Each opening 23 leads into or out of what may be considered a cham-ber 24 extending completely across the end of the core, as distinguished from the opening 23 which occupies only one face thereof` The chamber 24 is formed by overlying and underlying parting sheets 13 and by the end of a fin element 15 co-planar with the opening 23. Fluid within the chamber 24 has access to the iin element 15, on both sides thereof, and has access through the par-ting sheet openings 16 to the underside of an overlying fin element 14 and to the top side of an underlying fin element 14. Assuming a given opening 23 to function as an inlet, a iiuid entering a chamber 24 therethrough distributes itself throughout the chamber to be applied over the entire end of the iin element 15. The liuid flows longitudinally of such element on both sides thereof to the opposite end ofthe core where it enters another chamber 24 and discharges through an aligned opening 23. At the same time the fluid at the inlet end flows upward through an opening 16 in an overlying sheet 13 and flows downward through an opening 16 in an underlying sheet 13. There i-t contacts the underside and topside respectively of fin elements 14 and flows along these surfaces to the opposite end of the core. At such opposite end it moves into the aforementioned chamber 24 therein through parting sheet openings 16 and rejoins the first described stream of fluid in exiting through the aligned opening 23. The iin element 15 is in contacting heat conducting relation to overlying and underlying sheets 13 which are in turn in contacting, heat conducting relation to 1in elements 14. Accordingly, an indirect transfer of heat takes place through the fin element 15 through overlying and underlying sheets 13 to adjacent fin elements 14. At the same time, however, direct heat transfer takes place through the Walls of the iin elements 14. In this connection, above and below the described iiow passages are other like sets of passages in which a iiuid of different temperature may flow counter to the movement of the first described iiuid. The iin elements 14 are common to adjacent sets of passages with these fin elements accordingly serving as means for a direct transfer of heat between fluids of different temperature. The elements 14 and 15 represent, respectively, primary and secondary heat transfer surfaces.
The liow through the heat exchanger core is, as noted, counterfiow, the flow being substantially as indicated in FIGS. 7 and 8. Thus, as shown in FIG. 7 a first iiuid such as a gas enters the heat exchanger core through one end thereof at one of the angularly disposed faces. Distributing itself and iiowing longitudinally of the core in the manner above described the gas leaves the heat exchanger by way of the diametrically opposed face at the opposite end of the core. Similarly, as shown in FIG. 8, another fluid such as air enters the heat exchanger at the same end throughwhich the gas discharges, but in the other angularly disposed face. The air then flows reversely through the heat exchanger, counter to the flow of the gas, and exits through the first described end through the face other than the one admitting the gas. Within the heat exchanger the fluids have a relationship to one another and to the iin elements 14 and 15 substantially as indicated in FIGS. 3 and 5. In these views, which are fragmentary across sections through the heat exchanger core, shaded areas indicate the presence of gas While the unshaded areas indicate the presence of air. Thus in the uppermost part of FIG. 3 a fin element 15 is shown disposed in the air iiow stream. Air is present on both sides of the element 15 and is present also above and below adjacent parting sheets 13 (by virtue of having passed through openings 16 therein) where it is in Contact with CII one side only of respective iin elements 14. On the other side of these elements 14 gas is pres-ent for a direct transfer of heat through the fin surface. Gas also is present on both sides of the next adjacent iin element 15, and, beyond such iin element 15, on one side of the succeeding iin element 14. The iin elements 15 perform a function in maintaining a spaced relation between the fin elements 14 and serve also as indirect or secondary heat transfer means, conducting heat through contacted plates Or sheets 13 to companion fin elements 14.
The openings 23 and chambers 24 at the ends of the core provide a manifolding means which makes possible a high fin density with relatively low restriction and without fluid iiow blockage. The fluid in the chambers 24 has ready access to and is in communication with the underlying and overlying fin elements 14 and movement of the fiuid to and through the flow passages defined by the corrugations of the iin elements is unimpeded.
The ends of the iin elements 14 are closed to inhibit bypassing of the iiuids. This may be done in any suitable manner, as by depositing weld metal 25 at the ends `ofthe elements, as indicated in FIG. 4, whereby to close the face of the core at the location of the elements 14. According to another method the tips of elements 14 may be overlaid by strips having filler portions received between the undulating fins and united therewith in a brazing operation which may be the same operation joining together the several parts of the core.
What is claimed is:
1. A plate type heat exchanger assembly, including superposed stacked plate and fin elements, said plate elements defining liow paths occupied by said iin elements, said iin elements being arranged in sets of three with a middle iin of each set being short in relation to the other iins of the set to dene at least one end of said assembly at each set of said elements a chamber wherein introduced fluid has access to both sides of said middle lin and access to one side only of the said-other fin elements, a plate element being disposed between said middle iin and each of said other tins in heat conducting relation therebetween, adjacent sets of iins having said other fins in common, and manifolding means for introducing fluids of different temperature to opposite ends of said assembly to flow counter to one another through adjacent sets of fin elements, said other fin elements being in projecting relation to said middle iin element at each end thereof to define chambers for the entrance and exit of a fluid, said plate elements being formed to allow communication thereby between said chambers and said other tins on the said one sides thereof.
2. A plate type heat exchanger assembly constructed for the -counterflow of iiuids of different temperature, including a plurality of stacked iin elements comprised of alternating short and long elements, the latter projecting at each end beyond the former and having each end defining different angular faces, the ends of said long elements being closed, means for closing each side margin of said fin elements, certain of said means at the location of said short iin elements extendingacross an angular face at one end of the assembly, adjacent ones of said certain means being relatively inverted to leave at corresponding faces at opposite ends relatively offset openings, a iiuid being admitted to said assembly by way of a series of said openings in one face of said assembly at one end thereof and exhausting from'openings at a diametrically opposite face at the opposite end and a iiuid of different temperature being admitted to said assembly by way of a series of said openings in the other face of said assembly at the said opposite end and exhausting from openings at the other face at said one end, the fluids owing over said fin elements in counterflow through said assembly, and parting sheets between said fin elements, said sheets affording communication of the openings with the underside and topside of respective adjacent long fin elements to utilize said elements as direct heat transfer surface.
3. A plate type heat exchanger according to claim 2, characterized in that said parting sheets are shaped in correspondence with the shape of said long elements and in the portions projected relatively to said short n elements are cut away to provide the described communication.
4. A plate type heat exchanger assembly constructed for the counterow of uids of different temperature, including a plurality of stacked fin elements comprised of alternating short and long elements, the latter projecting at each end beyond the former and having their ends closed, parting sheets between said n elements coextensive in length and aligned with said long fin elements, marginal spacer devices interposed between adjacent pairs of parting sheets along the sides of said fm elements, certain spacer devices at locations of said short fm elements being bent over and extending partly across one end of the assembly, adjacent ones of said certain devices being relatively inverted to leave at each end of the assembly adjacent openings which are laterally and vertically offset from one another, and openings in the portions of said parting sheets projected relatively to said short iin elements whereby a fluid introduced into an opening at one end of the assembly may flow through the assembly in contact with both sides of a short n and in contact with overlying and underlying surfaces only of adjacent long fin elements and may discharge through a corresponding opening at the opposite end of the assembly.
5. A plate type heat exchanger assembly constructed for the counterflow of tluids of dilferent temperature, including a plurality of stacked fin elements comprised of alternating short and long elements, the latter projecting at each end beyond the former, the ends of said long elements being closed, other means for closing each side margin of said fin elements, portions of certain of said means at the location of said short fin elements extending angularly partly across one end of the assembly, adjacent ones of said certain means being relatively inverted to leave at each end relatively offset openings with the openings at opposite ends being reversely disposed, a fluid being admitted to said assembly by way of a vertical series of said openings in one side face of said assembly at one end thereof and exhausting from openings at a diametrically opposite face at the opposite end and a fluid of different temperature being admitted to said assembly by way of a series of said openings in the other face of said assembly at the said opposite end and exhausting from openings at the other face at said one end, fluids owing over said n elements in counterflow through said assembly, the length of said long elements relative to said short elements being such to define with the extending portions of said certain of said closing means relatively large chambers in which entering fluid may distribute itself for substantially uniform flow through the ow passages communicating with said chambers, and parting sheets between said n elements, said sheets being formed to communicate said openings with said chambers and thereby with the underside and topside of respective adjacent long iin elements to utilize said elements as direct heat transfer surface.
References Cited by the Examiner UNITED STATES PATENTS 2,288,061 6/1942 Arnold 165-157 X 2,566,310 9/1951 Burns et al. 165-157 X 2,875,986 `3/1959 Holm 16S-166 X 3,165,152 1/1965 Jones 16S-166 3,198,248 8/1965 Stack 165-166 3,241,607 3/1966 Rutledge 16S-166 ROBERT A. OLEARY, Primary Examiner. T. W, STREULE, Assistant Examiner.

Claims (1)

1. A PLATE TYPE HEAT EXCHANGER ASSEMBLY, INCLUDING SUPERPOSED STACKED PLATE AND FIN ELEMENTS, SAID PLATE ELEMENTS DEFINING FLOW PATHS OCCUPIED BY SAID FIN ELEMENTS, SAID FIN ELEMENTS BEING ARRANGED IN SETS OF THREE WITH A MIDDLE FIN OF EACH SET BEING SHORT IN RELATION TO THE OTHER FINS OF THE SET TO DEFINE AT LEAST ONE END OF SAID ASSEMBLY AT EACH SET OF SAID ELEMENTS A CHAMBER WHEREIN INTRODUCED FLUID HAS ACCESS TO BOTH SIDES OF SAID MIDDLE FIN AND ACCESS TO ONE SIDE ONLY OF THE SAID OTHER FIN ELEMENTS, A PLATE ELEMENT BEING DISPOSED BETWEEN SAID MIDDLE FIN AND EACH OF SAID OTHER FINS IN HEAT CONDUCTING RELATION THEREBETWEEN, ADJACENT SETS OF FINS HAVING SAID OTHER FINS IN COMMON, AND MANIFOLDING MEANS FOR INTRODUCING FLUIDS OF DIFFERENT TEMPERATURE TO OPPOSITE ENDS OF SAID ASSEMBLY TO FLOW COUNTER TO ONE ANOTHER THROUGH ADJACENT SETS OF FIN ELEMENTS, SAID OTHER FIN ELEMENTS BEING IN PROJECTING RELATION TO SAID MIDDLE FIN ELEMENT AT EACH END THEREOF TO DEFINE CHAMBERS FOR THE ENTRANCE AND EXIT OF A FLUID, SAID PLATE ELEMENTS BEING FORMED TO ALLOW COMMUNICATION THEREBY BETWEEN SAID CHAMBERS AND SAID OTHER FINS ON THE SAID ONE SIDES THEREOF.
US447753A 1965-04-13 1965-04-13 Plate and fin heat exchanger Expired - Lifetime US3305010A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US447753A US3305010A (en) 1965-04-13 1965-04-13 Plate and fin heat exchanger

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US447753A US3305010A (en) 1965-04-13 1965-04-13 Plate and fin heat exchanger

Publications (1)

Publication Number Publication Date
US3305010A true US3305010A (en) 1967-02-21

Family

ID=23777611

Family Applications (1)

Application Number Title Priority Date Filing Date
US447753A Expired - Lifetime US3305010A (en) 1965-04-13 1965-04-13 Plate and fin heat exchanger

Country Status (1)

Country Link
US (1) US3305010A (en)

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3377684A (en) * 1965-10-22 1968-04-16 United Aircraft Prod Method of making plate and fin heat exchangers
US3847211A (en) * 1969-01-28 1974-11-12 Sub Marine Syst Inc Property interchange system for fluids
US4523638A (en) * 1979-10-01 1985-06-18 Rockwell International Corporation Internally manifolded unibody plate for a plate/fin-type heat exchanger
WO1987001188A1 (en) * 1985-08-16 1987-02-26 Ab Carl Munters Apparatus for indirect evaporative cooling
WO1987001180A1 (en) * 1985-08-16 1987-02-26 Ab Carl Munters Method and apparatus for cooling of rooms
US10782074B2 (en) 2017-10-20 2020-09-22 Api Heat Transfer, Inc. Heat exchanger with a cooling medium bar

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2288061A (en) * 1940-10-28 1942-06-30 Modine Mfg Co Oil cooler and heat exchanger
US2566310A (en) * 1946-01-22 1951-09-04 Hydrocarbon Research Inc Tray type heat exchanger
US2875996A (en) * 1955-07-05 1959-03-03 Murray Corp Driers
US3165152A (en) * 1960-08-11 1965-01-12 Int Harvester Co Counter flow heat exchanger
US3198248A (en) * 1963-04-10 1965-08-03 Minnesota Mining & Mfg Corrugated heat transfer exchangers
US3241607A (en) * 1964-06-05 1966-03-22 Stewart Warner Corp Brazed joint

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2288061A (en) * 1940-10-28 1942-06-30 Modine Mfg Co Oil cooler and heat exchanger
US2566310A (en) * 1946-01-22 1951-09-04 Hydrocarbon Research Inc Tray type heat exchanger
US2875996A (en) * 1955-07-05 1959-03-03 Murray Corp Driers
US3165152A (en) * 1960-08-11 1965-01-12 Int Harvester Co Counter flow heat exchanger
US3198248A (en) * 1963-04-10 1965-08-03 Minnesota Mining & Mfg Corrugated heat transfer exchangers
US3241607A (en) * 1964-06-05 1966-03-22 Stewart Warner Corp Brazed joint

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3377684A (en) * 1965-10-22 1968-04-16 United Aircraft Prod Method of making plate and fin heat exchangers
US3847211A (en) * 1969-01-28 1974-11-12 Sub Marine Syst Inc Property interchange system for fluids
US4523638A (en) * 1979-10-01 1985-06-18 Rockwell International Corporation Internally manifolded unibody plate for a plate/fin-type heat exchanger
WO1987001188A1 (en) * 1985-08-16 1987-02-26 Ab Carl Munters Apparatus for indirect evaporative cooling
WO1987001180A1 (en) * 1985-08-16 1987-02-26 Ab Carl Munters Method and apparatus for cooling of rooms
US10782074B2 (en) 2017-10-20 2020-09-22 Api Heat Transfer, Inc. Heat exchanger with a cooling medium bar

Similar Documents

Publication Publication Date Title
US2656159A (en) Laminated heat exchanger
US3463222A (en) Double dimpled surface for heat exchange plate
US4081025A (en) Multiple fluid stacked plate heat exchanger
US3498372A (en) Heat exchangers
GB1153403A (en) Plate Type Heat Exchangers.
US3495656A (en) Plate-type heat exchanger
GB1114066A (en) An improved cooling plate
GB1133291A (en) Improvements relating to recuperative heat exchangers
US3613782A (en) Counterflow heat exchanger
CS207380B2 (en) Heat exchanger
US2846198A (en) Heat exchangers
US4893673A (en) Entry port inserts for internally manifolded stacked, finned-plate heat exchanger
US3305010A (en) Plate and fin heat exchanger
US7044206B2 (en) Heat exchanger plate and a plate heat exchanger
GB970299A (en) Plate type heat exchanger and plate therefor
US3554273A (en) Elements for regenerative heat exchangers
US2558752A (en) Regenerative heat exchanger
US3508607A (en) Heat exchanger
US2632633A (en) Punched fin elements for heat exchangers
GB1048122A (en) Improvements in and relating to plate type heat exchangers
US3247899A (en) Plate type heat exchanger
US2656160A (en) Tab strip fin for heat exchanger cores
US2701130A (en) Element set for heat exchangers
GB2110812A (en) Heat exchanger
US4148357A (en) Heat exchanger matrix for recuperative heat exchange among three media and modular heat exchangers combining a plurality of such matrices