WO1986005327A1 - Hybrid mode horn antennas - Google Patents
Hybrid mode horn antennas Download PDFInfo
- Publication number
- WO1986005327A1 WO1986005327A1 PCT/NO1986/000022 NO8600022W WO8605327A1 WO 1986005327 A1 WO1986005327 A1 WO 1986005327A1 NO 8600022 W NO8600022 W NO 8600022W WO 8605327 A1 WO8605327 A1 WO 8605327A1
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- WO
- WIPO (PCT)
- Prior art keywords
- horn
- wall
- waveguide
- dielectric
- antenna
- Prior art date
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Classifications
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q13/00—Waveguide horns or mouths; Slot antennas; Leaky-waveguide antennas; Equivalent structures causing radiation along the transmission path of a guided wave
- H01Q13/02—Waveguide horns
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q13/00—Waveguide horns or mouths; Slot antennas; Leaky-waveguide antennas; Equivalent structures causing radiation along the transmission path of a guided wave
- H01Q13/20—Non-resonant leaky-waveguide or transmission-line antennas; Equivalent structures causing radiation along the transmission path of a guided wave
- H01Q13/24—Non-resonant leaky-waveguide or transmission-line antennas; Equivalent structures causing radiation along the transmission path of a guided wave constituted by a dielectric or ferromagnetic rod or pipe
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q19/00—Combinations of primary active antenna elements and units with secondary devices, e.g. with quasi-optical devices, for giving the antenna a desired directional characteristic
- H01Q19/06—Combinations of primary active antenna elements and units with secondary devices, e.g. with quasi-optical devices, for giving the antenna a desired directional characteristic using refracting or diffracting devices, e.g. lens
- H01Q19/08—Combinations of primary active antenna elements and units with secondary devices, e.g. with quasi-optical devices, for giving the antenna a desired directional characteristic using refracting or diffracting devices, e.g. lens for modifying the radiation pattern of a radiating horn in which it is located
Definitions
- the invention concerns a horn antenna of the type presented in the introduction to Claim 1, for radiating or receiving polarized electromagnetic waves.
- These horn antennas are especially used when there is a need for low cross-polarization and possible low side lobes across a large frequency area, for example, as a feeding element in reflector antennas or as individual antenna elemen.t in the micro or millimeter-wave areas.
- Corrugated horn antennas which are commonly used for the above purposes, are referred to in the following works: R.E. Lawrie et al. "Modifications of Horn Antennas for Low Sidelobe Levels," IEEE Trans.Antennas Propagat., vol.AP-14, September 1966, pp. 605-610; H.C. Minnett et al. "A Method of Synthesizing Radiation Patterns with Axial Symmetry", IEEE Trans.Antennas Propagat., vol. AP-14, September 1966, pp. 645-646.
- These horn antennas are, however, difficult to produce commercially, especially in the millimeter-wave area.
- the main object is, therefore, to create a horn antenna that has good electrical properties and is easy to manufacture . According to the invention, this can be achieved by developing the antenna in accordance with the characterizing part of Claim 1.
- dielectric horn antennas are wellknown from, for example, P.J.B.Clarricoats and C.E.R.C. Salema, "Antennas Employing Conical Dielectric Horns," Proc.Inst.Elec.En ⁇ .. vol.120, July 1973, pp. 741-756; and US patent applications 3 414 903, 3 430 244 and 3 611 391. These consist of a plastic conical waveguide ' with a low refractive index, excited at the apex from a little horn antenna. Even if such hybrid mode antennas have low cross-polarization, a problem is created when the junction between the excitation horn and the plastic cone emits unwanted radiation. Moreover, the radiation poperties are quickly reduced if rain or pollution falls on the plastic wall. This means that these antennas must be covered with a radome, which adds to the costs of the construction.
- bimode horn Another familiar horn antenna with low cross polarization is the bimode horn, described by P.D. Potter, "A New Horn Antenna with Improved Sidelobes and Equal Beams," Microwave J., vol. 11, June 1963, pp. 71-78. This has, true enough, a simple design, but with a narrow band width compared with the antennas described above.
- the invention offers an advantageous alternative to wellknown hybrid and bimode horn antennas, and will, in many instances, be preferable.
- Fig. 1 illustrates an axial cross section through a horn antenna developed in accordance with the invention.
- Fig. 2-4 illustrate corresponding axial cross sections through alternative embodiments of the invention.
- Fig. 5 illustrates examples of grid structures.
- Fig. 6 illustrates how the horn wall can be made up of several layers.
- the antenna in fig. 1 encompasses the dielectric cone 10 that, at the narrow end, has a cylindrical section 10A, and at the end of this has a conical-shaped tapering section 10B.
- the end of the cylindrical continuation of the dielectric cone 10 is surrounded by a tubular waveguide 11 that serves to excite the antenna.
- the open section of the dielectric cone 10 is covered with a metal grid 12 on its surface. It has an evenly curved aperture 13.
- Fig. 2 illustrates an alternative embodiment, where the dielectric element 10' is conical, and where a waveguide- 14 has a horn-formed, projection end 14A.
- the waveguide or feeding horn 14 can have smooth or corrugated horn walls.
- Fig. 3 illustrates a conical-shaped dielectric element 10" that is surrounded at its narrow end by a waveguide 16 with a conically-widened end 16A.
- This waveguide or horn 16 has a smooth inner surface and is covered with a dielectric 15 in its conical section.
- Fig. 4 illustrates an alternative embodiment that departs from the examples above in that it is without a central dielectric element. Instead, a dielectric horn wall 17 exists which is prepared with a metal grid 19 on its inner surface and with a continuous metal coating 20 and 20A on its outer surface. This conical horn wall 17 also has a cylindrical, tubular section 17A at the norrow end, this section being surrounded by a tubular waveguide 18 on its outer section.
- Fig.5 a-e shows examples of grid structures illustrated in the form of widened sectors of the horn wall. The grid structures can vary along the horn's surface (r-direction) .
- Fig. 5a shows metal rings 21 at even distances round the wall.
- Fig. 5b and c shows metal rings 22 and 23, respectively, with their respective thicknesses and curvatures to increase inductiveness.
- Fig. 5d shows rows of metal spots 25 that in the example are elliptical, but they can be of arbitrary shape.
- Fig. 5e shows a metal coil 25 with equal spacing over the entire length.
- fig.6 shows a cross-section through the horn wall with several (N) dielectric layers 26, where, in one or more of the interfaces between colliding layers, a metal girder 27 is located.
- the outer dielectric layer can be prepared with a continuous metal coating 28.
- the antenna is, in accordance with the invention, of simple construction. Experiments have shown that it also gives low cross-polarization and low side lobes across a large frequency band. Thus, it has favourable characteristics in regards to manufacture and use.
- the metal grids 12 and 19 are designed to give anisotrope and reactive wall impedance that comply with the balanced hybrid conditions, and provide that the horn can transmit the hybrid mode HE , for circular cross-sections and correspondingly desired modes for non-circular cross sections with the lowest possible cross-polarization across the largest possible frequency band.
- the horn designs in fig. 1-3 can be completed with a lens surface that can be shaped to allow a desired radiation graph within the limits that are determined by the opening's size.
- the lens surfaces should have an adjustment layer, for example, a quarter-wave transformer layer with a refractive index between the refractive index of air and the refractive index of the dielectric. The reason for this is to hinder the field from being reflected on the lens surface and to contribute to cross-polarization and increased permanent wave conditions. Other ways to achieve this are to remove sections of the dielectric material, for example, by boring holes or turning grooves on the surface and/or preparing it with one or more uniform or uneven layers of dielectric or artifical dielectric (not shown).
- All the horn antennas that are illustrated in fig. 1-3 can be made very light by choosing a dielectric material with a low refractive index.
- the antenna in fig. 4 can have a wall thickness of between 1/4 and 1/2 a wavelength in the dielectric material, which allows an especially light construction. These antennas will thus be especially useful on satelites.
- the excitation of the desired field configuration in the horn occurs when the junction between the horn entrance (cylindrical waveguides in the examples) and the horn is shaped in a responsible way. Examples of* these designs are found in the literature, and the figures illustrate some relevant designs.
- the incoming TH mode could be transformed to a hybrid mode inside the cylindrical waveguide or near the junction between this and the horn by providing acute changes in the dimensions of the cross-sections in relation to the wavelength along the waveguide, or by placing inhomogenities in the waveguide, for example, by completing the dielectric core in a point of the horn throat (fig.1-3), or by changing sharply the dimensions of the metallic waveguide (fig. 1,3 and 4) compared with the wave length of the waveguide (fig. 1, 3 and 4).
- the whole horn antenna including the cylindrical waveguide section, hybrid mode connections and the horn section, will preferably have complete axial symmetry. Yet it is also possible to let the waveguide section and the other parts have another shape, for example, polygonal or elliptical.
- the metal grid 12 can either be placed in both the cylindrical section and horn section (Fig.l and 4), or only in the horn section (Fig.2 and 3) and along the whole or part of it.
- the metal grid can have a varying structure along the horn wall, which can also have a varying, yet uniform extension.
- the dielectric parts can be of varying degrees of thickness.
- the horn antenna in accordance with the invention, can be manufactured by a simple process.
- the dielectric funnels and the inner core. can be turned or cast.
- the continuous metal surfaces together with the metallized surfaces in the metal grids can be treated by a metallizing process.
- the nonmetallic surfaces in the grid can be made either by hindering the metal from attaching on these areas, or by removing the metal that is applied.
- photolithography or etching can be used . In this way the mechanical lathe operations can be avoided, and, yet, narrower tolerances in the millimeter-wave area can be acheived where the antenna dimensions are small.
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- Waveguide Switches, Polarizers, And Phase Shifters (AREA)
- Diaphragms For Electromechanical Transducers (AREA)
Abstract
A horn antenna with a cylindrical and an expanded (horn-shaped) waveguide for radiating or receiving polarized electromagnetic waves. The waveguide wall is partially or wholly covered with one or more grids (12) of electrical conducting material with dielectric layers between them. One possible design consists of a tapering (e.g. conical) core (10) of compact dielectric, which allows for the possibility of shaping the terminal surface (13) to a lens which curves the course of radiation in the aperture to the desired radiation graph. Another possible design where the horn wall consists of dielectric covered with metal grids has an especially light construction. The wall surfaces are developed with anisotrope and reactive impedance so that it mainly functions in the same way as a corrugated horn and thus gives low cross-polarizations across a large frequency area. This could be constructed with little weight and could easily be mass-produced. This will be easier to produce than corrugated horn, especially in the millimeter-wave area.
Description
Hybrid Mode Horn Antennas
- The invention concerns a horn antenna of the type presented in the introduction to Claim 1, for radiating or receiving polarized electromagnetic waves.
These horn antennas are especially used when there is a need for low cross-polarization and possible low side lobes across a large frequency area, for example, as a feeding element in reflector antennas or as individual antenna elemen.t in the micro or millimeter-wave areas.
Corrugated horn antennas, which are commonly used for the above purposes, are referred to in the following works: R.E. Lawrie et al. "Modifications of Horn Antennas for Low Sidelobe Levels," IEEE Trans.Antennas Propagat., vol.AP-14, September 1966, pp. 605-610; H.C. Minnett et al. "A Method of Synthesizing Radiation Patterns with Axial Symmetry", IEEE Trans.Antennas Propagat., vol. AP-14, September 1966, pp. 645-646. These horn antennas are, however, difficult to produce commercially, especially in the millimeter-wave area.
Other corrugated horn antennas are described in the following works. P.J.B. Clarricoats et al, "Theoretical Analysis of Cylindrical Hybrid Modes in a Corrugated Horn", Electron. Lett., vol. 5, May 1, 1969, pp.187-189; and P.J.B. Clarricoats, "Analysis of Spherical Hybrid Modes in a Corrugated Conical Horn," Electron. Lett. , vol 5, May 1, 1969, pp 189-190. In these corrugated horn antennas the horn wall is made anisotrope and reactive, and it complies with the balanced hybrid condition of the hybrid HE.,.,
mode within the desired frequency band. Thus, the diagram of radiation in the E and H plans will become almost alike and give low cross-polarization.
Even though this type of antenna has in principle, satisfactory characteristics, it is burdened with disadvantages in regards to production.
The main object is, therefore, to create a horn antenna that has good electrical properties and is easy to manufacture . According to the invention, this can be achieved by developing the antenna in accordance with the characterizing part of Claim 1.
Additional characteristics of the invention are given in the sub-claims.
It shall be pointed out that dielectric horn antennas are wellknown from, for example, P.J.B.Clarricoats and C.E.R.C. Salema, "Antennas Employing Conical Dielectric Horns," Proc.Inst.Elec.Enσ.. vol.120, July 1973, pp. 741-756; and US patent applications 3 414 903, 3 430 244 and 3 611 391. These consist of a plastic conical waveguide' with a low refractive index, excited at the apex from a little horn antenna. Even if such hybrid mode antennas have low cross-polarization, a problem is created when the junction between the excitation horn and the plastic cone emits unwanted radiation. Moreover, the radiation poperties are quickly reduced if rain or pollution falls on the plastic wall. This means that these antennas must be covered with a radome, which adds to the costs of the construction.
Another familiar horn antenna with low cross polarization is the bimode horn, described by P.D. Potter, "A New Horn Antenna with Improved Sidelobes and Equal Beams," Microwave J., vol. 11, June 1963, pp. 71-78. This has, true enough, a simple design, but with a narrow band width compared with the antennas described above. The invention offers an advantageous alternative to wellknown hybrid and bimode horn antennas, and will, in many instances, be preferable.
The invention will be described in more detail below:
Fig. 1 illustrates an axial cross section through a horn antenna developed in accordance with the invention.
Fig. 2-4 illustrate corresponding axial cross sections through alternative embodiments of the invention. Fig. 5 illustrates examples of grid structures.
Fig. 6 illustrates how the horn wall can be made up of several layers.
The antenna in fig. 1 encompasses the dielectric cone 10 that, at the narrow end, has a cylindrical section 10A, and at the end of this has a conical-shaped tapering section 10B. The end of the cylindrical continuation of the dielectric cone 10 is surrounded by a tubular waveguide 11 that serves to excite the antenna.
The open section of the dielectric cone 10 is covered with a metal grid 12 on its surface. It has an evenly curved aperture 13.
Fig. 2.illustrates an alternative embodiment, where the dielectric element 10' is conical, and where a waveguide- 14 has a horn-formed, projection end 14A. The waveguide or feeding horn 14 can have smooth or corrugated horn walls.
Fig. 3 illustrates a conical-shaped dielectric element 10" that is surrounded at its narrow end by a waveguide 16 with a conically-widened end 16A. This waveguide or horn 16 has a smooth inner surface and is covered with a dielectric 15 in its conical section.
Fig. 4 illustrates an alternative embodiment that departs from the examples above in that it is without a central dielectric element. Instead, a dielectric horn wall 17 exists which is prepared with a metal grid 19 on its inner surface and with a continuous metal coating 20 and 20A on its outer surface. This conical horn wall 17 also has a cylindrical, tubular section 17A at the norrow end, this section being surrounded by a tubular waveguide 18 on its outer section.
The elements in fig. 1-4 have a circular cross-section, but this can vary in different ways, for example, with elliptical cross-sections for special purposes.
Fig.5 a-e shows examples of grid structures illustrated in the form of widened sectors of the horn wall. The grid structures can vary along the horn's surface (r-direction) . Fig. 5a shows metal rings 21 at even distances round the wall.
Fig. 5b and c shows metal rings 22 and 23, respectively, with their respective thicknesses and curvatures to increase inductiveness. Fig. 5d shows rows of metal spots 25 that in the example are elliptical, but they can be of arbitrary shape.
Fig. 5e shows a metal coil 25 with equal spacing over the entire length.
Finally, fig.6 shows a cross-section through the horn wall with several (N) dielectric layers 26, where, in one or more of the interfaces between colliding layers, a metal girder 27 is located. The outer dielectric layer can be prepared with a continuous metal coating 28.
• As the examples illustrate, the antenna is, in accordance with the invention, of simple construction. Experiments have shown that it also gives low cross-polarization and low side lobes across a large frequency band. Thus, it has favourable characteristics in regards to manufacture and use. The metal grids 12 and 19 are designed to give anisotrope and reactive wall impedance that comply with the balanced hybrid conditions, and provide that the horn can transmit the hybrid mode HE , for circular cross-sections and correspondingly desired modes for non-circular cross sections with the lowest possible cross-polarization across the largest possible frequency band.
The horn designs in fig. 1-3 can be completed with a lens surface that can be shaped to allow a desired radiation graph within the limits that are determined by the opening's size. The lens surfaces should have an adjustment layer, for example, a quarter-wave transformer layer with a refractive index between the refractive index of air and the refractive index of the dielectric. The
reason for this is to hinder the field from being reflected on the lens surface and to contribute to cross-polarization and increased permanent wave conditions. Other ways to achieve this are to remove sections of the dielectric material, for example, by boring holes or turning grooves on the surface and/or preparing it with one or more uniform or uneven layers of dielectric or artifical dielectric (not shown).
All the horn antennas that are illustrated in fig. 1-3 can be made very light by choosing a dielectric material with a low refractive index. The antenna in fig. 4 can have a wall thickness of between 1/4 and 1/2 a wavelength in the dielectric material, which allows an especially light construction. These antennas will thus be especially useful on satelites.
The excitation of the desired field configuration in the horn occurs when the junction between the horn entrance (cylindrical waveguides in the examples) and the horn is shaped in a responsible way. Examples of* these designs are found in the literature, and the figures illustrate some relevant designs. The incoming TH mode could be transformed to a hybrid mode inside the cylindrical waveguide or near the junction between this and the horn by providing acute changes in the dimensions of the cross-sections in relation to the wavelength along the waveguide, or by placing inhomogenities in the waveguide, for example, by completing the dielectric core in a point of the horn throat (fig.1-3), or by changing sharply the dimensions of the metallic waveguide (fig. 1,3 and 4) compared with the wave length of the waveguide (fig. 1, 3 and 4).
As mentioned above, the whole horn antenna, including the cylindrical waveguide section, hybrid mode connections and the horn section, will preferably have complete axial symmetry. Yet it is also possible to let the waveguide section and the other parts have another shape, for example, polygonal or elliptical.
The metal grid 12 can either be placed in both the
cylindrical section and horn section (Fig.l and 4), or only in the horn section (Fig.2 and 3) and along the whole or part of it. The metal grid can have a varying structure along the horn wall, which can also have a varying, yet uniform extension. The dielectric parts can be of varying degrees of thickness.
The horn antenna, in accordance with the invention, can be manufactured by a simple process. The dielectric funnels and the inner core.can be turned or cast. The continuous metal surfaces together with the metallized surfaces in the metal grids can be treated by a metallizing process. The nonmetallic surfaces in the grid can be made either by hindering the metal from attaching on these areas, or by removing the metal that is applied. For this purpose photolithography or etching can be used . In this way the mechanical lathe operations can be avoided, and, yet, narrower tolerances in the millimeter-wave area can be acheived where the antenna dimensions are small.
Claims
1. A horn antenna consisting of a sylindrical and an expanded (horn-shaped), for example conical waveguide, for radiating or receiving polarized electromagnetic waves, for use as a feeding element in reflector antennas, or as an individual antenna element, where it makes use of means to create anisotrope and reactive wall impedance to achieve desired field distribution and low cross-polarization, c h a r a c t e r i z e d in that the waveguide wall wholly or partially is prepared with one or more grids
(12;27) of electrically conductive material with dielectric layers (-;26) between them so a balanced hybrid mode HE , can be transmitted or correspondingly desired modes for noncircular cross-sections.
2. A horn antenna in accordance with claim 1, c h a r a c te r i z e d in that the horn-shaped section is filled with air and the wall in the horn-shaped section, and optionally the cylindrical waveguide, consists of one or more grids (19) of electrically conductive material with dielectric layers between them, and where the wall can have varying degrees of thickness and structure along the horn antenna, and where the outer surfaces of the horn and the horn wall's terminal surface in the aperture_wholly or partially can be prepared with a continuous layer (20,20A) of electrically conductive material.
3. A horn antenna mentioned in claim 1, c h a r a c t e r i z e d in that the horn comprises a massive dielectric (10), where the horn wall is prepared with one or more grids (12) of electrically conductive material with dielectric layers between them, and where the horn wall can have varying degrees of thickness and structure, and where the outer wall wholly or partially can be prepared with a continuous layer of electrically conductive material.
4. The horn antenna, in accordance with claim 3, c h a r a c t e r i z e d in that the dielectric core's terminal surface is shaped in such a way (13) that it curves the radiations course, especially to achieve a plan phase front over the aperture.
5. The horn antenna, in accordance with claim 4, c h a r a c t e r i z e d in that the waveguide's terminal surface is supplied with recesses in the dielectric material, for example, with holes or grooves on the surface, in order that the effective refractive index in the layer is laying between the refractive index of the waveguide material and that of air, and/or the waveguides terminal surface can be prepared with one or more uniform or varied dielectric layers in such a way that, totally, a sufficiently low reflection from the terminal surface across the relevant frequency band is achieved.
6. The horn antenna, in accordance with claims 1-3, c h a r a c t e r i z e d in that the excitation of the desired mode occurs in the cylindrical waveguide or in the horn or in the junction between these sections, by see to it that it is a rapid change in relation to the wavelength of the cross section dimensions along the waveguide or by placing inhomogenities in the waveguide, for example by terminating the dielectric core to a point within the horn throat (fig. 1-3) or by sharply changing the dimensions of the metallic waveguide (fig. 1,3 and 4).
7. The horn antenna, in accordance with claims 1-3, c h a r a c t e r i z e d in that the grids are developed in such a way that the desired wall impedance is achieved, for example, in the form of rings placed evenly (21) or placed in varying widths (22) round the horn wall, a coil (25) with the axis merging with the horn's axis, or seperated surfaces.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
SE8604389A SE8604389D0 (en) | 1985-02-28 | 1986-10-16 | horn antenna |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
NO850808A NO157480C (en) | 1985-02-28 | 1985-02-28 | HYBRID MODE HORNANTENNE. |
NO850808 | 1985-02-28 |
Publications (1)
Publication Number | Publication Date |
---|---|
WO1986005327A1 true WO1986005327A1 (en) | 1986-09-12 |
Family
ID=19888149
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/NO1986/000022 WO1986005327A1 (en) | 1985-02-28 | 1986-02-28 | Hybrid mode horn antennas |
Country Status (6)
Country | Link |
---|---|
US (1) | US4783665A (en) |
EP (1) | EP0217820A1 (en) |
JP (1) | JPS63500136A (en) |
NO (1) | NO157480C (en) |
SE (1) | SE8604389D0 (en) |
WO (1) | WO1986005327A1 (en) |
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Also Published As
Publication number | Publication date |
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JPS63500136A (en) | 1988-01-14 |
NO850808L (en) | 1986-08-29 |
NO157480B (en) | 1987-12-14 |
EP0217820A1 (en) | 1987-04-15 |
NO157480C (en) | 1988-03-30 |
US4783665A (en) | 1988-11-08 |
SE8604389D0 (en) | 1986-10-16 |
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