US3273144A - Narrow beam antenna system - Google Patents

Narrow beam antenna system Download PDF

Info

Publication number
US3273144A
US3273144A US270123A US27012363A US3273144A US 3273144 A US3273144 A US 3273144A US 270123 A US270123 A US 270123A US 27012363 A US27012363 A US 27012363A US 3273144 A US3273144 A US 3273144A
Authority
US
United States
Prior art keywords
antenna
lobes
antennas
lobe
radiators
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
US270123A
Inventor
Fishbein William
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.)
Individual
Original Assignee
Individual
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 Individual filed Critical Individual
Priority to US270123A priority Critical patent/US3273144A/en
Application granted granted Critical
Publication of US3273144A publication Critical patent/US3273144A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/29Combinations of different interacting antenna units for giving a desired directional characteristic
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S1/00Beacons or beacon systems transmitting signals having a characteristic or characteristics capable of being detected by non-directional receivers and defining directions, positions, or position lines fixed relatively to the beacon transmitters; Receivers co-operating therewith
    • G01S1/02Beacons or beacon systems transmitting signals having a characteristic or characteristics capable of being detected by non-directional receivers and defining directions, positions, or position lines fixed relatively to the beacon transmitters; Receivers co-operating therewith using radio waves
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/06Arrays of individually energised antenna units similarly polarised and spaced apart
    • H01Q21/08Arrays of individually energised antenna units similarly polarised and spaced apart the units being spaced along or adjacent to a rectilinear path

Definitions

  • This invention relates to a radar antenna system and more particularly to multiple-beam antenna systems having improved resolution without increasing the number of radiating elements of the antenna structure.
  • Radar resolution applies to the ability of a radar apparatus to distinguish between two closely situated targets.
  • the solution for the problem of increasing resolution most commonly adopted by the art was to increase the number of radiating elements of the antenna structure.
  • the increased number of radiators made such antennas diflicult to construct, too difficult to scan, and have proved to be too cumbersome to be properly handled.
  • the antenna sizes are limited by tactical consideration.
  • One approach to overcome this problem resides in the use of relatively short wavelengths.
  • the radiation or field strength pattern usually associated with radar apparatus are characterized by a single major radiation lobe whose ability to resolve between distant targets is a function of the size and the number of radiators of the antenna.
  • Antenna configurations exhibiting narrow beam width in proportion to their size and number of radiators as compared with the more widely used radar antenna types are equally unsatisfactory because their field strength patterns are composed of a plurality of narrow lobes.
  • the difiiculty with such a plurality of narrow lobes resides in the fact that, while capable of ample resolution, their usefulness for radar purposes is destroyed because there is no way to distinguish between the directivity of the different lobes when targets are detected.
  • a radar antenna system providing improved resolution which includes discrete transmitter and receiver antennas.
  • the transmitter antenna which radiates RF signal energy, has a directivity characten istic including a plurality of angularly spaced main lobes.
  • the receiver antenna intercepts reflections of the radiated R-F signal energy and has a directivity characteristic including a single major lobe which is in the same direction as a selected one of the plurality of the spaced main transmitter antenna lobes.
  • the beam width of the single lobe is such that it can detect signals derived from only one of the lobes of the transmitter antenna.
  • the discrete transmitter and receiver antennas are both of the multiple-beam type, and each having approximately the same directivity characteristic.
  • angular lobe spacing in one antenna with respect to the other is such that, over a prescribed angular sector, if one pair of transmitting and receiving lobes are made to coincide, the others will not coincide.
  • FIG. 1 illustrates one embodiment of a radar antenna system in accordance with my invention
  • FIG. 2 illustrates curves useful in explaining the operation of the FIG. 1 embodiment
  • FIG. 3 represents a second embodiment of the radar antenna system
  • FIGS. 4 and 5 illustrate curves useful in explaining the operation of the FIG. 3 embodiment.
  • the radar antenna system comprises a multiple-beam type transmitting antenna 12 and a receiving antenna 14.
  • Multiple-beam antenna 12 comprises a linear array of a prescribed number of spaced waveguide 'horn radiators, and radiates the R-F energy in a pattern comprised of a plurality of angularly spaced main lobes.
  • the number of lobes will, of course, depend upon the number of radiators provided, and the spacing between lobes and the beam width of the lobes will depend upon the spacing between radiators and the aperture width.
  • the receiving antenna 14 includes a receiving element 16 and a reflecting surface 18.
  • the shape of reflecting surface 18 and receiving element 16 may be constructed in any one of several conventional shapes, the parabolic cylinder and line source, respectively, being represented in FIG. 1.
  • the beam width of the receiving lobe pattern is chosen such that it can pick out any reflected signal derived from a selected one of the lobes of the multi-beam transmitter antenna pattern, while the remaining transmitter antenna lobes fall outside the main lobe of the receiver antenna beam and, consequently, are reduced by the side lobe level of the receiver antenna beam.
  • transmitting antenna 12 comprised ten linearly aligned horn radiators 22, each with a 20 db gain and spaced 30 wavelengths apart.
  • radiators are fed in phase by means of a conventional corporate feed structure represented by the block 24 so that there is produced a uni-form phase front over a 500 megacycle frequency band.
  • the blocks 26 and 28 comprise the transmitter and receiver of the radar and are conventional. With the arrangement hereinabove described, the resulting transmitted antenna pattern will be approximately as shown in FIG. 2A. Every two degrees there is a main lobe 0:16 degree wide. As shown in FIG. 2B the receiving antenna 14 has a beam width of about 1.5 degrees so that it can pick out any selected one of the 0.16 degree main lobes of the transmitter antenna pattern.
  • the round trip antenna pattern is shown in FIG. 2C.
  • Scanning the multiple-beam transmitting antenna 12 may be accomplished by rotating the pedestal it is mounted on or by employing phase shifters in the lines that feed the horn radiators. Mechanical or ferrite phase shifters may be used. The scan angle, of course, is limited to the beam width of the individual horns. With such an arrangement, the system may be programmed by rotating only the receiver antenna 14 in synchronism with the amount of phase shift.
  • FIG. 3 illustrates another embodiment of my invention.
  • the transmitting and receiving antennas 30 and 32 are both of the multiple-beam type and each comprise a linear array of Waveguide horns fed by appropriate respective corporate feed structures. Both antennas are arranged to provide multiple lobe patterns.
  • the wavelength spacing between the radiators in multiple-beam transmitting antenna 30 is made different than the wavelength spacing between the radiators in multiple-beam receiving antenna 32.
  • the lobe spacing in both antennas is chosen such that if one pair of transmitter and receiver antenna lobes are made to coincide, the others will not coincide over the angular sector of interest. For example, should the radiator element spacing of transmitter multi-beam antenna 30 be 18 wavelengths, the lobes Will be spaced by 3.15 degrees.
  • a radiator element spacing of 16 wavelengths for the receiver multi-beam antenna 32 will result in a lobe spacing of 3.50 degrees.
  • the orientation of the respective antennas is such that the broadside lobes coincide, there will not be an overlap until approximately 32 degrees have passed.
  • the individual radiators have a 20 degree beamwidth, the second overlap will be in the side lobes of the transmitted radiator pattern.
  • the round trip pattern will thus have only one lobe.
  • FIGS. 4A and 4B show the calculated patterns for the multiplebeam receiving and transmitting antennas 32 and 30, respectivley.
  • FIG. 4C shows the round trip pattern of an individual radiator.
  • FIGURE 4D is the pattern resulting from the multiplication, in space, of the patterns shown in FIGS. 4A, 4B and 4C, and illustrated a coincidence at The only lobes plotted are those greater than 40 db below the main lobe. It should be noted that there is one main lobe, with secondary lobes at least 14 db down. The 14 db secondary lobe level is a result of the assumption of uniform illumination of the individual horn antennas. A tapered illumination would result in a secondary lobe level of db to db.
  • the two horn antennas and 32 of FIG. 3 could be easily scanned in synchronism by using phase shifters in the feed lines to the individual radiators.
  • a 20 degree sector could be mechanically scanned without moving either antenna more than 3.5 degrees from its initial position.
  • the scanning sequence is as follows: Both antennas face broadside, which causes the broadside lobes to coincide. The two antennas scan in synchronism for 3.15 degrees. The antennas are returned to the broadside position. The antenna with the lobe spacing of 3.50 degrees is then indexed 0.35 degree with respect to the second antenna. This indexing causes the lobes which are 3.15 degrees from broadside to coincide. Both antennas now scan in synchronism for 3.15 degrees, thus covering the second 3.15 degree sector. The antennas are again returned to the broadside position. The transmitting antenna is indexed an additional 0.35 degree With respect to the receiving antenna. Now the lobes which are 6.3 degrees from broadside coincide. The process is repeated until the entire 20 degree sector has been scanned.
  • the optimum spacing of the receiver and transmitter radiator elements can be determined by the following analysis and reference to FIG. 5.
  • n radiator wavelength spacing of receiver antenna 32
  • n radiat0r wavelength spacing of transmitter antenna
  • n and 11 must be chosen to satisfy two conditions. First, if the two lobes of a pair are made to coincide, the second coincidence must occur in the side lobe region of the pattern of an individual radiator. That is to say, if the first coincidence is made to occur at the 3 db point of the radiator pattern, the second coincidence should not occur until angle 1.53 has passed. Second, the minimum spacing between pairs of lobes should be twice the array beam width. If both these conditions are satisfied, there will be only one main lobe in the round trip pattern. FIG. 5 shows the relative positions of the lobes of the two antennas shown in FIG. 3 when both conditions are satisfied. It is to be understood, of course, that the antennas 30 and 32 could readily be interchanged, that is, antenna 30 .could. be the receiving antenna and antenna 32 could be the transmitting antenna, and the systems would operate in the same manner.
  • the spacing between lobes of antenna 32 is given by 1 TL ⁇ and the spacing between lobes of antenna 30 is given by l 0 2 Hz Assuming K lobes of antenna 32 before second coincidence, then Hence, there will be K +1 lobes of antenna 30 before the second coincidence and thus In order to satisfy the second condition hereinabove described,
  • a radar antenna system providing improved reso- 5 such that over a prescribed angular sector if one pair 15 of transmitting and receiving lobes are made to coincide, the others will not coincide.
  • n is the wavelength spacing between radiators in said second antenna
  • B is the beam width of the individual radiators in said first and second antennas.

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Radar, Positioning & Navigation (AREA)
  • Remote Sensing (AREA)
  • Variable-Direction Aerials And Aerial Arrays (AREA)
  • Radar Systems Or Details Thereof (AREA)

Description

Sept. 13, 1966 w, FISHBEIN 3,273,144
NARROW BEAM ANTENNA SYSTEM Filed April 1963 2 Sheets-Sheet 1 HORN RADIATORS 22 F G ANTENNA I2 CORPORATE FEED CIRCUIT RECEIVER TRANSMITTER FIG. 2
TRANSMITTING ANTENNA PATTERN RECEIVING ANTENNA PATTERN C 20 o 0 n 20 ROUND TRIP PATTERN INVENTOR,
WILLIAM FISHBEI N ATTORNEY.
p 13, 1966 w. FISHBEIN 3,273,144
NARROW BEAM ANTENNA SYSTEM Filed April 2, 1963 2 Sheets-Sheet 2 HORN RADIATQRS\Y\Y FIG. 3 ANTENNA 32,, CORPORATE FEED CIRCUIT HORN RADIATORS I ANTENNAw, CORPORATE FEED CIRCUIT TRANSMITTER 28 RECEIVER VO LTS VO LTS ROUND TRIP RADIATOR PATTERN o go 40 so so o OVERALL ANTENNA PATTERN ANTENNA 32 FIG. 5
IKIa,I---- I l l l l l l l "l F27 INVENTOR,
i l i WILLIAM FISHBEIN ANTENNA 30 J ATTORNEY.
United States Patent Oflflce 3,273,144 Patented Sept. 13, 1966 3,273,144 NARROW BEAM ANTENNA SYSTEM William Fishbeiu, New Shrewsbury, N.J., assignor to the United States of America as represented by the Secretary of the Army Filed Apr. 2, 1963, Ser. No. 270,123 3 Claims. (Cl. 343-) The invention described herein may be manufactured and used by or for the Government for governmental purposes without the payment of any royalty thereon.
This invention relates to a radar antenna system and more particularly to multiple-beam antenna systems having improved resolution without increasing the number of radiating elements of the antenna structure.
Radar resolution applies to the ability of a radar apparatus to distinguish between two closely situated targets. 'Heretofore, the solution for the problem of increasing resolution most commonly adopted by the art was to increase the number of radiating elements of the antenna structure. The increased number of radiators, of course, made such antennas diflicult to construct, too difficult to scan, and have proved to be too cumbersome to be properly handled. In battlefield application, in particularly, the antenna sizes are limited by tactical consideration. One approach to overcome this problem resides in the use of relatively short wavelengths. However, it is well known that as the frequency of a radar increases, the available transmitter power and receiver sensitivity rapidly decrease. The result of this decrease in transmitter power and receiver sensitivity is poo-r range performance.
The radiation or field strength pattern usually associated with radar apparatus are characterized by a single major radiation lobe whose ability to resolve between distant targets is a function of the size and the number of radiators of the antenna. Antenna configurations exhibiting narrow beam width in proportion to their size and number of radiators as compared with the more widely used radar antenna types are equally unsatisfactory because their field strength patterns are composed of a plurality of narrow lobes. The difiiculty with such a plurality of narrow lobes resides in the fact that, while capable of ample resolution, their usefulness for radar purposes is destroyed because there is no way to distinguish between the directivity of the different lobes when targets are detected.
It is an object of the present invention to provide a new and improved antenna system which avoids one or more of the limitations and disadvantages of prior antenna systems.
It is another object of the invention to provide a narrow beam antenna, which is relatively light in Weight, can be easily scanned and is relatively easy to construct.
In accordance with one embodiment of the invention there is provided a radar antenna system providing improved resolution which includes discrete transmitter and receiver antennas. The transmitter antenna, which radiates RF signal energy, has a directivity characten istic including a plurality of angularly spaced main lobes. The receiver antenna intercepts reflections of the radiated R-F signal energy and has a directivity characteristic including a single major lobe which is in the same direction as a selected one of the plurality of the spaced main transmitter antenna lobes. The beam width of the single lobe is such that it can detect signals derived from only one of the lobes of the transmitter antenna.
In accordance with another embodiment of the invention, the discrete transmitter and receiver antennas are both of the multiple-beam type, and each having approximately the same directivity characteristic. The
angular lobe spacing in one antenna with respect to the other is such that, over a prescribed angular sector, if one pair of transmitting and receiving lobes are made to coincide, the others will not coincide.
For a better understanding of the invention, together with other and further objects thereof, reference is had to the following description taken in connection with the accompanying drawings in which:
FIG. 1 illustrates one embodiment of a radar antenna system in accordance with my invention;
FIG. 2 illustrates curves useful in explaining the operation of the FIG. 1 embodiment;
FIG. 3 represents a second embodiment of the radar antenna system; and
FIGS. 4 and 5 illustrate curves useful in explaining the operation of the FIG. 3 embodiment.
Referring now to FIG. 1 of the drawing, at 10 there is shown an improved antenna system for a radar. The radar antenna system comprises a multiple-beam type transmitting antenna 12 and a receiving antenna 14. Multiple-beam antenna 12 comprises a linear array of a prescribed number of spaced waveguide 'horn radiators, and radiates the R-F energy in a pattern comprised of a plurality of angularly spaced main lobes. The number of lobes will, of course, depend upon the number of radiators provided, and the spacing between lobes and the beam width of the lobes will depend upon the spacing between radiators and the aperture width. The receiving antenna 14 includes a receiving element 16 and a reflecting surface 18. The shape of reflecting surface 18 and receiving element 16 may be constructed in any one of several conventional shapes, the parabolic cylinder and line source, respectively, being represented in FIG. 1. The beam width of the receiving lobe pattern is chosen such that it can pick out any reflected signal derived from a selected one of the lobes of the multi-beam transmitter antenna pattern, while the remaining transmitter antenna lobes fall outside the main lobe of the receiver antenna beam and, consequently, are reduced by the side lobe level of the receiver antenna beam. In one embodiment of my invention, for operation at a wavelength of 1.86 centimeters, for example, transmitting antenna 12 comprised ten linearly aligned horn radiators 22, each with a 20 db gain and spaced 30 wavelengths apart. These radiators are fed in phase by means of a conventional corporate feed structure represented by the block 24 so that there is produced a uni-form phase front over a 500 megacycle frequency band. -It is to be understood, of course, that any other suitable feeding circuit may be used to provide the uniform phase front. The blocks 26 and 28 comprise the transmitter and receiver of the radar and are conventional. With the arrangement hereinabove described, the resulting transmitted antenna pattern will be approximately as shown in FIG. 2A. Every two degrees there is a main lobe 0:16 degree wide. As shown in FIG. 2B the receiving antenna 14 has a beam width of about 1.5 degrees so that it can pick out any selected one of the 0.16 degree main lobes of the transmitter antenna pattern. The round trip antenna pattern is shown in FIG. 2C. It can be seen in FIG. 2C that the remaining transmitting lobes fall outside the main lobe of the receiver antenna beam and are reduced by the side lobe level thereof. Scanning the multiple-beam transmitting antenna 12 may be accomplished by rotating the pedestal it is mounted on or by employing phase shifters in the lines that feed the horn radiators. Mechanical or ferrite phase shifters may be used. The scan angle, of course, is limited to the beam width of the individual horns. With such an arrangement, the system may be programmed by rotating only the receiver antenna 14 in synchronism with the amount of phase shift.
FIG. 3 illustrates another embodiment of my invention. In FIG. 3, the transmitting and receiving antennas 30 and 32 are both of the multiple-beam type and each comprise a linear array of Waveguide horns fed by appropriate respective corporate feed structures. Both antennas are arranged to provide multiple lobe patterns. However, the wavelength spacing between the radiators in multiple-beam transmitting antenna 30 is made different than the wavelength spacing between the radiators in multiple-beam receiving antenna 32. The lobe spacing in both antennas is chosen such that if one pair of transmitter and receiver antenna lobes are made to coincide, the others will not coincide over the angular sector of interest. For example, should the radiator element spacing of transmitter multi-beam antenna 30 be 18 wavelengths, the lobes Will be spaced by 3.15 degrees. A radiator element spacing of 16 wavelengths for the receiver multi-beam antenna 32 will result in a lobe spacing of 3.50 degrees. Thus, when the orientation of the respective antennas is such that the broadside lobes coincide, there will not be an overlap until approximately 32 degrees have passed. If the individual radiators have a 20 degree beamwidth, the second overlap will be in the side lobes of the transmitted radiator pattern. The round trip pattern will thus have only one lobe. Assuming that the individual radiator elements are considered as being isotropic radiators, and are uniformly illuminated, FIGS. 4A and 4B show the calculated patterns for the multiplebeam receiving and transmitting antennas 32 and 30, respectivley. FIG. 4C shows the round trip pattern of an individual radiator. FIGURE 4D is the pattern resulting from the multiplication, in space, of the patterns shown in FIGS. 4A, 4B and 4C, and illustrated a coincidence at The only lobes plotted are those greater than 40 db below the main lobe. It should be noted that there is one main lobe, with secondary lobes at least 14 db down. The 14 db secondary lobe level is a result of the assumption of uniform illumination of the individual horn antennas. A tapered illumination would result in a secondary lobe level of db to db.
The two horn antennas and 32 of FIG. 3 could be easily scanned in synchronism by using phase shifters in the feed lines to the individual radiators. A 20 degree sector could be mechanically scanned without moving either antenna more than 3.5 degrees from its initial position. The scanning sequence is as follows: Both antennas face broadside, which causes the broadside lobes to coincide. The two antennas scan in synchronism for 3.15 degrees. The antennas are returned to the broadside position. The antenna with the lobe spacing of 3.50 degrees is then indexed 0.35 degree with respect to the second antenna. This indexing causes the lobes which are 3.15 degrees from broadside to coincide. Both antennas now scan in synchronism for 3.15 degrees, thus covering the second 3.15 degree sector. The antennas are again returned to the broadside position. The transmitting antenna is indexed an additional 0.35 degree With respect to the receiving antenna. Now the lobes which are 6.3 degrees from broadside coincide. The process is repeated until the entire 20 degree sector has been scanned.
The optimum spacing of the receiver and transmitter radiator elements can be determined by the following analysis and reference to FIG. 5.
n =radiator wavelength spacing of receiver antenna 32, n =radiat0r wavelength spacing of transmitter antenna where n n 'y=bearnwidth of each antenna array in radians, fl=beamwidth of individual radiators in the array in radians.
The values of n and 11 must be chosen to satisfy two conditions. First, if the two lobes of a pair are made to coincide, the second coincidence must occur in the side lobe region of the pattern of an individual radiator. That is to say, if the first coincidence is made to occur at the 3 db point of the radiator pattern, the second coincidence should not occur until angle 1.53 has passed. Second, the minimum spacing between pairs of lobes should be twice the array beam width. If both these conditions are satisfied, there will be only one main lobe in the round trip pattern. FIG. 5 shows the relative positions of the lobes of the two antennas shown in FIG. 3 when both conditions are satisfied. It is to be understood, of course, that the antennas 30 and 32 could readily be interchanged, that is, antenna 30 .could. be the receiving antenna and antenna 32 could be the transmitting antenna, and the systems would operate in the same manner.
Now, as shown in FIG. 5, the spacing between lobes of antenna 32 is given by 1 TL} and the spacing between lobes of antenna 30 is given by l 0 2 Hz Assuming K lobes of antenna 32 before second coincidence, then Hence, there will be K +1 lobes of antenna 30 before the second coincidence and thus In order to satisfy the second condition hereinabove described,
The following relationship between 12 and n may be obtained from Equations 3 and 4 Since, in general, 1.5fin 1, Equation 10 can be simplified to 3'yfin =1 (12) and from Equation 8 While there has been described what is at present considered to be the preferred embodiment of this invention, it will be obvious to those skilled in the art that various changes and modifications may be made therein without departing from the invention, and it is therefore aimed in the appended claims to cover all such changes and modifications as fall Within the true spirit :and scope of the invention.
What is claimed is:
1. A radar antenna system providing improved reso- 5 such that over a prescribed angular sector if one pair 15 of transmitting and receiving lobes are made to coincide, the others will not coincide.
2. The radar antenna system in accordance with claim 1 wherein the beam width of the individual lobes in said first and second antennas are identical.
3. The system in accordance with claim 2 wherein the lobe spacing of said first and second multiple-beam antennas are related such that where n is the wavelength spacing between radiators in said first antenna,
n is the wavelength spacing between radiators in said second antenna, and B is the beam width of the individual radiators in said first and second antennas.
References Cited by the Examiner UNITED STATES PATENTS 2,426,183 8/1947 Deloraine et a1. 34316 2,527,547 10/ 1950 Hardy.
2,990,544 6/1961 La Rosa 343100.12 3,016,531 1/1962 Tomiyasn et a1. 343-11 X CHESTER L. IUSTUS, Primary Examiner.
20 LEWIS H. MYERS, Examiner.
R. D. BENNETT, Assistant Examiner.

Claims (1)

1. A RADAR ANTENNA SYSTEM PROVIDING IMPROVED RESOLUTION COMPRISING, A FIRST MULTIPLE-BEAM ANTENNA FOR RADIATING R-F SIGNAL ENERGY, SAID FIRST ANTENNA HAVING A DIRECTIVITY CHARACTERISTIC OF A PLURALITY OF ANGULARLY SPACED LOBES, A SECOND MULTIPLE-BEAM ANTENNA FOR INTERCEPTING REFLECTIONS OF THE RADIATED R-F SIGNAL ENERGY, SAID SECOND ANTENNA HAVING A DIRECTIVITY CHARACTERISTIC OF A PLURALITY OF ANGULARLY SPACED LOBES IN SUBSTANTIALLY THE SAME DIRECTION AS THE LOBES OF SAID FIRST ANTENNA, THE LOBE
US270123A 1963-04-02 1963-04-02 Narrow beam antenna system Expired - Lifetime US3273144A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US270123A US3273144A (en) 1963-04-02 1963-04-02 Narrow beam antenna system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US270123A US3273144A (en) 1963-04-02 1963-04-02 Narrow beam antenna system

Publications (1)

Publication Number Publication Date
US3273144A true US3273144A (en) 1966-09-13

Family

ID=23029999

Family Applications (1)

Application Number Title Priority Date Filing Date
US270123A Expired - Lifetime US3273144A (en) 1963-04-02 1963-04-02 Narrow beam antenna system

Country Status (1)

Country Link
US (1) US3273144A (en)

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3500414A (en) * 1968-10-25 1970-03-10 Us Navy Thinned antenna array with reduced grating lobe ambiguities
DE2306407A1 (en) * 1972-02-14 1973-08-30 Hughes Aircraft Co HIGH ANGLE RESOLUTION RADAR WITH SEPARATE TRANSMITTER AND RECEIVER ANTENNAS
US3825928A (en) * 1972-02-14 1974-07-23 Hughes Aircraft Co High resolution bistatic radar system
US3842417A (en) * 1972-02-14 1974-10-15 Hughes Aircraft Co Bistatic radar system
US5583956A (en) * 1993-01-12 1996-12-10 The Board Of Trustees Of The Leland Stanford Junior University Estimation of skew angle in text image
US5745084A (en) * 1994-06-17 1998-04-28 Lusignan; Bruce B. Very small aperture terminal & antenna for use therein
US5797082A (en) * 1994-06-17 1998-08-18 Terrastar, Inc. Communication receiver for receiving satellite broadcasts
EP0923155A1 (en) * 1997-06-02 1999-06-16 Ntt Mobile Communications Network Inc. Adaptive array antenna
US6512934B2 (en) 1997-06-02 2003-01-28 Ntt Mobile Communications Network, Inc. Adaptive array antenna
WO2010000742A1 (en) * 2008-07-03 2010-01-07 Claude Goutelard Methods and systems for encoded broadcasting and antenna reception, particularly for radar

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2426183A (en) * 1940-04-04 1947-08-26 Int Standard Electric Corp Reflected wave direction finder
US2527547A (en) * 1941-02-10 1950-10-31 Int Standard Electric Corp Self-contained radio guiding apparatus for mobile craft
US2990544A (en) * 1957-04-30 1961-06-27 Hazeltine Research Inc Radar antenna system providing improved resolution
US3016531A (en) * 1955-03-14 1962-01-09 Sperry Rand Corp Antenna distribution system

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2426183A (en) * 1940-04-04 1947-08-26 Int Standard Electric Corp Reflected wave direction finder
US2527547A (en) * 1941-02-10 1950-10-31 Int Standard Electric Corp Self-contained radio guiding apparatus for mobile craft
US3016531A (en) * 1955-03-14 1962-01-09 Sperry Rand Corp Antenna distribution system
US2990544A (en) * 1957-04-30 1961-06-27 Hazeltine Research Inc Radar antenna system providing improved resolution

Cited By (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3500414A (en) * 1968-10-25 1970-03-10 Us Navy Thinned antenna array with reduced grating lobe ambiguities
DE2306407A1 (en) * 1972-02-14 1973-08-30 Hughes Aircraft Co HIGH ANGLE RESOLUTION RADAR WITH SEPARATE TRANSMITTER AND RECEIVER ANTENNAS
US3825928A (en) * 1972-02-14 1974-07-23 Hughes Aircraft Co High resolution bistatic radar system
US3842417A (en) * 1972-02-14 1974-10-15 Hughes Aircraft Co Bistatic radar system
US5583956A (en) * 1993-01-12 1996-12-10 The Board Of Trustees Of The Leland Stanford Junior University Estimation of skew angle in text image
US5745084A (en) * 1994-06-17 1998-04-28 Lusignan; Bruce B. Very small aperture terminal & antenna for use therein
US5797082A (en) * 1994-06-17 1998-08-18 Terrastar, Inc. Communication receiver for receiving satellite broadcasts
US5913151A (en) * 1994-06-17 1999-06-15 Terrastar, Inc. Small antenna for receiving signals from constellation of satellites in close geosynchronous orbit
US6075969A (en) * 1994-06-17 2000-06-13 Terrastar, Inc. Method for receiving signals from a constellation of satellites in close geosynchronous orbit
US5930680A (en) * 1994-06-17 1999-07-27 Terrastar, Inc. Method and system for transceiving signals using a constellation of satellites in close geosynchronous orbit
EP0923155A4 (en) * 1997-06-02 2000-03-22 Nippon Telegraph & Telephone Adaptive array antenna
EP0923155A1 (en) * 1997-06-02 1999-06-16 Ntt Mobile Communications Network Inc. Adaptive array antenna
US6512934B2 (en) 1997-06-02 2003-01-28 Ntt Mobile Communications Network, Inc. Adaptive array antenna
WO2010000742A1 (en) * 2008-07-03 2010-01-07 Claude Goutelard Methods and systems for encoded broadcasting and antenna reception, particularly for radar
FR2933497A1 (en) * 2008-07-03 2010-01-08 Claude Goutelard METHODS AND SYSTEMS FOR CODED EMISSION AND ANTENNA RECEPTION, IN PARTICULAR FOR RADAR
US20110109498A1 (en) * 2008-07-03 2011-05-12 Antheop Methods and systems for encoded broadcasting and antenna reception, particularly for radar
CN102084267A (en) * 2008-07-03 2011-06-01 安希欧普公司 Methods and systems for encoded broadcasting and antenna reception, particularly for radar
JP2011526680A (en) * 2008-07-03 2011-10-13 アンテオープ Antenna-coded emission / reception method and apparatus including use in radar
CN102084267B (en) * 2008-07-03 2013-07-17 安希欧普公司 Methods and systems for encoded broadcasting and antenna reception, particularly for radar
US9885783B2 (en) 2008-07-03 2018-02-06 Antheop Methods and systems for encoded broadcasting and antenna reception, particularly for radar

Similar Documents

Publication Publication Date Title
US3045238A (en) Five aperture direction finding antenna
US2419205A (en) Directive antenna system
US3568204A (en) Multimode antenna feed system having a plurality of tracking elements mounted symmetrically about the inner walls and at the aperture end of a scalar horn
US3979754A (en) Radio frequency array antenna employing stacked parallel plate lenses
US2825900A (en) Directional receiver
US3045237A (en) Antenna system having beam control members consisting of array of spiral elements
US4918458A (en) Secondary radar transponder
US4353073A (en) Antenna arrangement for a radar surveillance method for target locating with altitude acquisition
US2846678A (en) Dual frequency antenna
US2482162A (en) Directive microwave antenna
US3273144A (en) Narrow beam antenna system
US3325816A (en) Sidelobe suppressing antenna system comprising directional coupler and phase controlmeans for beam shaping
US3419870A (en) Dual-plane frequency-scanned antenna array
US3881178A (en) Antenna system for radiating multiple planar beams
US3135960A (en) Spiral mode selector circuit for a twowire archimedean spiral antenna
US3176301A (en) Plural horns at focus of parabolic reflector with shields to reduce spillover and side lobes
US3550135A (en) Dual beam parabolic antenna
US3553692A (en) Antenna arrays having phase and amplitude control
US3618092A (en) Signal injection apparatus for avoiding monopulse anomalies in a monopulse array
US3430247A (en) Centerfed travelling wave array having a squinted aperture
US2990544A (en) Radar antenna system providing improved resolution
US2169553A (en) Directive radio system
US4574287A (en) Fixed aperture, rotating feed, beam scanning antenna system
GB2034525A (en) Improvements in or relating to microwave transmission systems
US4001837A (en) Dual scan corner reflector antenna