US2851686A - Electromagnetic horn antennas - Google Patents

Electromagnetic horn antennas Download PDF

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Publication number
US2851686A
US2851686A US594446A US59444656A US2851686A US 2851686 A US2851686 A US 2851686A US 594446 A US594446 A US 594446A US 59444656 A US59444656 A US 59444656A US 2851686 A US2851686 A US 2851686A
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United States
Prior art keywords
horn
aperture
walls
wave guide
electromagnetic
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Expired - Lifetime
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US594446A
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English (en)
Inventor
Boynton G Hagaman
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DEV ENGINEERING CORP
DEVELOPMENT ENGINEERING Corp
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DEV ENGINEERING CORP
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Priority to US594446A priority Critical patent/US2851686A/en
Priority to DED24754A priority patent/DE1027260B/de
Priority to GB2969/57A priority patent/GB835540A/en
Priority to FR1179261D priority patent/FR1179261A/fr
Priority to CH350333D priority patent/CH350333A/de
Application granted granted Critical
Publication of US2851686A publication Critical patent/US2851686A/en
Anticipated expiration legal-status Critical
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q13/00Waveguide horns or mouths; Slot antennas; Leaky-waveguide antennas; Equivalent structures causing radiation along the transmission path of a guided wave
    • H01Q13/02Waveguide horns

Definitions

  • the present invention relates to electromagnetic horn antennas.
  • Flared electromagnetic horns of various cross-sectional shapes have been used for radiating directional beams of very short waves.
  • the horns may be rectangular in cross-section and flared in one direction, in which case they are called sectoral horns, or they may be flared in both directions, in which case they are referred to as pyramidal horns.
  • the horn antenna is generally fed by a Wave guide connected to the small end thereof, and the large end of the horn is open and forms the radiating aperture.
  • the plane at right angles to the electric vector will hereinafter be designated the H-plane and the plane parallel to the electric vector will be designated the E-plane.
  • Horn antennas have generally desirable characteristics, but they also have some defects.
  • horn antennas have been practical only for very short waves. For longer waves, the size and construction problems involved have hitherto prohibited horn antennas from being utilized.
  • Another object of my invention is to provide horn antennas which are practical over an extended frequency range.
  • a still further object of my invention is to reduce the length of a horn antenna.
  • a still further object of my invention is to increase the gain-to-aperture ratio of a horn antenna.
  • a still further object of my invention is to provide a horn antenna which is practicable in the high frequency range.
  • the above and other objects and advantages are obtained by mechanically shaping the radiating aperture to obtain the distribution necessary for the desired radiation pattern characteristics.
  • the necessary aperture distribution for low side lobe level requires that the illumination taper gradually to a low value at the sides of the aperture.
  • Fig. 1 shows one embodiment of my invention wherein the width of the horn in the direction of the electric vector varies in discrete steps;
  • FIG. 2 to 6 show additional embodiments of my invention
  • Figs. 7 to 12 show radiation patterns of one embodi- :ment of my invention
  • an antenna comprising an electromagnetic horn 11 connected at its small end to a rectangular wave guide 10.
  • the wave guide is operated in a primary mode such as the TE mode and, thus supplies electromagnetic waves to the horn 11 which are polarized in the direction indicated by arrow E.
  • the electromagnetic waves may be supplied to horn 11 in other ways and that the wave guide 10 may be provided with a small radiator, or may extend to any suitable source of waves.
  • the horn 11 has a stepped construction so that at the aperture 13, the height is not constant but decreases from a maximum value at 1920 in discrete steps 16, 15, 14 to a minimum value at the end 17-17.
  • the step construction of the wave guide may extend from aperture 13 all the way to the wave guide it or may extend only part of the distance back to the wave guide 10.
  • the horn described above and shown in Fig. 1 will produce a greater intensity of radiation from the center portion, 1920, and lesser intensity of radiation from the portion, 16-16, -15 and 141d.
  • the widths, depths and number of steps may be varied to obtain the effective aperture illumination desired and to thereby control the radiation pattern in the E-planc.
  • steps 14, 15 and 16 have beenshown for the sake of convenience, that generally a greater number of steps may be provided, depending on the size of the aperture, the Wavelengths and other parameters. It has been found that by suitably varying the shape of the aperture, the directivity of the horn can be increased, along with the virtual elimination of side lobes.
  • Fig. '2 shows rectangular wave guide 10 connected to the small end 24 of the horn 25.
  • the horn has essentially four plane walls 26, 27, 28 and 29. At least the walls 26, 28 and 29 are flared outwardly from the end 24 to the aperture 30.
  • the wave guide may be energized so that the waves are polarized in the direction E.
  • the height of the aperture perpendicular to the E direction is tapered from a maximum value at the wall 26 to a minimum value at the corners 3334.
  • the radiation from the horn will vary from a maximum at the center portion to a minimum at the ends of the aperture 3334.
  • an optimum radiation pattern may be obtained having minimum side lobes.
  • Fig. 3 shows still another embodiment of my invention wherein a rectangular wave guide 10 is connected to the small end 41 of a horn antenna 40.
  • the horn has an aperture 42 which is essentially triangular in shape.
  • wave guide 10 is supplied with waves polarized only in the E direction.
  • the horn comprises two parallel walls 43 and 44 and two inclined walls 45 and 46.
  • Wall 43 may have the same width throughout as does the narrow side 47 of wave guide ltl.
  • the height of aperture 42 normal to the E vector varies from a maximum value near the wall 43 to a minimum value at the edges 48, 49 and the antenna is capable of giving a radiation pattern of high directivity with virtually no side lobes.
  • Fig. 4 shows still another embodiment of the invention in which the rectangular Wave guide 10 is connected to a flared electromagnetic horn 50 inthe shape of a triangular pyramid formed by walls 51, 52 and 53.
  • 3 4" again it is assumed that the radiator is energized so that the electric vector extends in the E direction. It will be seen that the height of aperture 54 decreases from a maximum value at point 55 substantially to zero at. the ends 56, '7 of the aperture.
  • the radiation patterns of Ian antenna of the type shown in Fig. 4 will be described ater.
  • a horn of the shape illustrated in Fig. 5 will be evolved.
  • the horn 66 is in the form of a rectangular pyramid.
  • the horn comprises four essentially plane walls, 63, 64, 65 and 66.
  • the aperture 62 has a maximum height at the axis of the horn, that is, between the edges 69 and 70 and tapers to zero at the two sides 67 and 68 of the aperture.
  • the radiation is greatest at the middle portion of the aperture between the edges 69 and 70 and decreases towards the end 68 and 67.
  • Fig. 6 shows still another embodiment of the invention in which rectangular wave guide is connected to a horn having five sides 81-85.
  • the electric field vector is generally parallel to the narrow sides of wave guide 10.
  • the maximum width of aperture 87 in the direction normal to the E vector is the distance between point 87 and wall 83.
  • the width of the aperture tapers from the middle of the horn to the outer edges 90 and 91.
  • the horn of Fig. 6 may be thought of as a triangular horn in which the two outer corners have been cut off by walls 82 and 84.
  • the antenna may be formed of No. 6 wires spaced about A wave length. By varying the wire diameter and spacing a solid conductor may be simulated.
  • FIG. 82 Another advantage of using a second pair of oblique walls such as Walls 82 and 84 is that vertically polarized radiation is reduced.
  • the electric field between walls 81 and 85 is slightly curved, as indicated by lines 89, and hence there is a vertically polarized electric field component.
  • the field extending between walls 82 and 84 is curved, as indicated by lines 88, oppositely to the field 89.
  • the vertically polarized components of the lines 88 and 89 therefore tend to cancel.
  • the illumination of aperture 87 is such that it produces a radiation pattern free of side lobes.
  • Figs. 7 to 12 The improved radiation pattern characteristics and wide band frequency characteristics of antennas of the type above described are illustrated in Figs. 7 to 12.
  • the radiation patterns shown in these figures were obtained from a horn having the shape shown in Fig. 4 and operated over a ground or reflecting plane parallel to the side 53 of horn 50.
  • Fig. 7 shows the radiation pattern in the H-plane obtained at a frequency of 2300 megacycles.
  • a noteworthy feature of the radiation pattern shown in this figure is the virtual absence of any side lobes.
  • Fig. 8 shows a radiation pattern in the E-plane taken with the same antenna at 2300 megacycles. It can be seen from this pattern that in the E-plane also, there are no significant lobes.
  • Fig. 9 shows a radiation pattern of the same antenna in the H-plane at 4160 megacycles, which is nearly twice the frequency at which the radiation patterns of Figs. 7, 8 were taken. It can be seen that even at this widely 4 different frequency, the antenna maintains a highly desirable radiation characteristic.
  • Fig. 10 shows a radiation pattern of the same antenna at 4160 megacycles taken in the E-plane. It can be seen that this radiation pattern is virtually fr e of side lobes.
  • Figs. 11 and 12 show the radiation patterns of the horn of Fig. 4 in the E and H planes at the still higher frequency of 4800 megacycles. These patterns indicate that the freedom from side lobes in both the E and H planes persists.
  • a flared electromagnetic radiating horn having at least three walls and means connected to the small end of said horn for supplying electromagnetic waves to the horn, at least two of said walls being inclined toward each other so that at the aperture of the horn, the distance between said inclined Walls in a direction parallel to the electric vector of said waves decreases to a minimum value at one edge of the aperture.
  • Apparatus according to claim 1, wherein the means for supplying electromagnetic waves to the horn is a rectangular Wave guide.
  • one of the walls forming the parallel sides of the trapezoid has a constant width equal to the width of a narrow side of the wave guide.
  • An electromagnetic horn radiator having means at one end for supplying electromagnetic waves thereto, said horn having a plurality of walls flaring outwardly from said one end and providing a radiating aperture at the other end of the horn, said walls being arranged so that the Width of the aperture in the direction perpendicular to the electric vector decreases from the center of the aperture to one edge thereof.
  • Apparatus according to claim 9 wherein the width 5 of the aperture decreases in discrete steps from the middle of the aperture to the opposite ends of the aperture.
  • the means for supplying electromagnetic waves to the horn is a rectangular wave guide having its narrow dimension in the direction of the width of the aperture.
  • An antenna comprising a flared electromagnetic radiating horn, means connected to said horn at the small end of the horn for supplying substantially linearly polarized electromagnetic waves to the horn, the large end of the horn being open to provide a radiating aperture, the horn being shaped so that the aperture is asymmetrical to any line parallel to the electric vector and the width of the aperture perpendicular to the direction of the electric vector is a maximum at the middle of the aperture and tapers toward the ends thereof at such a rate that substantially only a single lobe of rediation is produced.
  • An electromagnetic horn having a radiating aperture and a plurality of walls forming the boundaries of 6 the horn, said walls having such shapes that the width of the aperture perpendicular to the direction of the electric vector decreases at different rates from the middle of the aperture to both ends thereof.
  • a horn according to claim 16 wherein said width decreases uniformly at one rate throughout a middle portion of the aperture and at a greater rate near the ends of the aperture.
  • a horn according to claim 16 wherein the walls are shaped so as to form a pentagonal aperture.
  • An antenna comprising a flared electromagnetic radiating horn having a plurality of sides means connected to said horn at the small end of the horn for supplying plane polarized electromagnetic waves to the horn,
  • the large end'of the horn being open to provide a radiating aperture, the horn being shaped so that the Width of the aperture in the direction of the electric vector is a maximum at the middle of the aperture and tapers toward the ends thereof, and means for canceling the radiation of transversely polarized electric field components of said Waves due to curvature of the electric field in the horn.

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  • Waveguide Aerials (AREA)
US594446A 1956-06-28 1956-06-28 Electromagnetic horn antennas Expired - Lifetime US2851686A (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
US594446A US2851686A (en) 1956-06-28 1956-06-28 Electromagnetic horn antennas
DED24754A DE1027260B (de) 1956-06-28 1957-01-25 Trichterantenne
GB2969/57A GB835540A (en) 1956-06-28 1957-01-28 Electromagnetic horn antennas
FR1179261D FR1179261A (fr) 1956-06-28 1957-01-30 Antenne à cornet électromagnétique
CH350333D CH350333A (de) 1956-06-28 1957-02-07 Trichterantenne

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US594446A US2851686A (en) 1956-06-28 1956-06-28 Electromagnetic horn antennas

Publications (1)

Publication Number Publication Date
US2851686A true US2851686A (en) 1958-09-09

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Family Applications (1)

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US594446A Expired - Lifetime US2851686A (en) 1956-06-28 1956-06-28 Electromagnetic horn antennas

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US (1) US2851686A (de)
CH (1) CH350333A (de)
DE (1) DE1027260B (de)
FR (1) FR1179261A (de)
GB (1) GB835540A (de)

Cited By (139)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2992429A (en) * 1959-02-17 1961-07-11 Antenna Systems Inc Tapered aperture horn antenna for electromagnetic energy below 40 megacycles
US2998603A (en) * 1959-08-24 1961-08-29 Antenna Systems Inc Short electromagnetic horn particularly for long wavelengths
US3045238A (en) * 1960-06-02 1962-07-17 Theodore C Cheston Five aperture direction finding antenna
US3068478A (en) * 1959-08-24 1962-12-11 Antenna Systems Inc Horn antenna having reduced length
US3534377A (en) * 1966-01-31 1970-10-13 Aviat Uk Horn aerials
US4388625A (en) * 1981-01-12 1983-06-14 Harris Corporation Multimode diagonal feed horn
US4613989A (en) * 1984-09-28 1986-09-23 Cincinnati Microwave, Inc. Police radar warning receiver
US4686499A (en) * 1984-09-28 1987-08-11 Cincinnati Microwave, Inc. Police radar warning receiver with cantilevered PC board structure
US4757324A (en) * 1987-04-23 1988-07-12 Rca Corporation Antenna array with hexagonal horns
WO1988010523A2 (en) * 1987-06-08 1988-12-29 Hughes Aircraft Company Deterministic thinned aperture phased antenna array
US5113197A (en) * 1989-12-28 1992-05-12 Space Systems/Loral, Inc. Conformal aperture feed array for a multiple beam antenna
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US9838896B1 (en) 2016-12-09 2017-12-05 At&T Intellectual Property I, L.P. Method and apparatus for assessing network coverage
US10340983B2 (en) 2016-12-09 2019-07-02 At&T Intellectual Property I, L.P. Method and apparatus for surveying remote sites via guided wave communications
US9973940B1 (en) 2017-02-27 2018-05-15 At&T Intellectual Property I, L.P. Apparatus and methods for dynamic impedance matching of a guided wave launcher
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US11901601B2 (en) 2020-12-18 2024-02-13 Aptiv Technologies Limited Waveguide with a zigzag for suppressing grating lobes
US11757165B2 (en) 2020-12-22 2023-09-12 Aptiv Technologies Limited Folded waveguide for antenna
US12058804B2 (en) 2021-02-09 2024-08-06 Aptiv Technologies AG Formed waveguide antennas of a radar assembly
EP4089840A1 (de) * 2021-05-13 2022-11-16 Aptiv Technologies Limited Zweiteiliger gefalteter wellenleiter mit hörnern
US11962085B2 (en) 2021-05-13 2024-04-16 Aptiv Technologies AG Two-part folded waveguide having a sinusoidal shape channel including horn shape radiating slots formed therein which are spaced apart by one-half wavelength
US11949145B2 (en) 2021-08-03 2024-04-02 Aptiv Technologies AG Transition formed of LTCC material and having stubs that match input impedances between a single-ended port and differential ports

Also Published As

Publication number Publication date
GB835540A (en) 1960-05-25
DE1027260B (de) 1958-04-03
CH350333A (de) 1960-11-30
FR1179261A (fr) 1959-05-22

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