POLARIZING REFLECTOR FOR MULTIPLE BEAM ANTENNAS
20200028273 · 2020-01-23
Inventors
- Hervé LEGAY (PLAISANCE DU TOUCH, FR)
- George Goussetis (Edinburgh, GB)
- Wenxing Tang (Edinburgh, GB)
- Daniele BRESCIANI (TOULOUSE CEDEX 1, FR)
- Renaud CHINIARD (TOULOUSE CEDEX 1, FR)
- Nelson Fonseca (Noordwijk, NL)
Cpc classification
H01Q15/244
ELECTRICITY
International classification
H01Q21/06
ELECTRICITY
Abstract
A polarizing reflector for broadband antennas includes a flat dielectric substrate, a patch array layer formed by a bi-dimensionally periodic lattice of thin metallic patches along first and second perpendicular directions x, y, and a ground layer. All the patches have a same shape elongated along the second direction y and form electric dipoles when electrically excited along the second direction y. For each row the patches of the said row are interconnected by an elongated metallic strip oriented along the first direction x and having a width c. The geometry of the patch array, the thickness h and the dielectric permittivity .sub.r of the substrate, and the width c of the elongated metallic strips are tuned so that the patch array including the elongated metallic strips induces a fundamental aperture mode and a complementary fundamental dipolar mode along two orthogonal TE and TM polarizations within a single operating frequency band or two separate operating frequency bands, and the differential phase between the two fundamental modes over the single or the first and second frequency bands being equal to 90 or to an odd integer multiple of 90. The polarizing reflector can comprise also a curved substrate and a patch array layer formed by a bi-dimensionally lattice of metallic patches along first curvilinear rows and second curvilinear columns.
Claims
1. A polarizing reflector for broadband antennas and for converting a same linear polarization into a given circular polarization handedness over one frequency band when operating in a single wideband at normal incidence illuminated by a plane wave, or into a first given circular polarization handedness over a first frequency band and into a second handedness over a second frequency band, the first and the second circular polarization handedness being substantially equal or orthogonal when operating in dual-band at normal incidence illuminated by a plane wave, the polarizing reflector comprising a flat dielectric substrate delimited between a first surface and a second surface, having a thickness h and a dielectric permittivity .sub.r, a patch array layer formed by a bi-dimensionally periodic lattice of thin metallic patches on the first surface of the substrate, the periodic lattice having a first set of patch rows oriented along a first direction x with a periodicity d.sub.x and a second set of patch columns oriented along a second direction y with a second periodicity d.sub.y, a ground layer formed by a plain metallic layer on the second surface, located below the patch array layer; the substrate separating the patch array layer and the ground layer, and all the patches having a same shape elongated along the second direction y and forming electric dipoles when electrically excited along the second direction y, the polarizing reflector being wherein for each row, the patches of the said row have and are all crossed by an elongated metallic strip oriented along the first direction x and having a width c, the elongated metallic strip forming one and a same integral piece, or the patches of the said row are mutually separated and all lined along the first direction x by two elongated metallic strips, each metallic strip having a width c and forming one and a same integral piece, and the geometry of the patch array, the thickness h and the dielectric permittivity .sub.r of the substrate, and the geometry of the elongated metallic strips are tuned so that the patch array including the elongated metallic strips induces a fundamental aperture mode and a complementary fundamental dipolar mode along two orthogonal TE and TM polarizations within the single frequency band when operating at normal incidence in a single wide band or induces a fundamental aperture mode and a first complementary fundamental dipole mode along two orthogonal TE and TM polarizations within the first frequency band and the fundamental aperture mode and a second complementary higher order dipole mode along the two orthogonal TE and TM polarizations within the second frequency band when operating in dual wide band, the differential reflection phase between the two fundamental aperture and dipole modes over the single band, or the differential reflection phase between the two fundamental aperture and dipole modes over the first frequency band and the differential reflection phase between the fundamental aperture and a higher dipole mode over the second frequency band being equal to 90 or to an odd integer multiple of 90.
2. The polarizing reflector for broadband antennas and for converting a same linear polarization into a given circular polarization handedness over one frequency band when operating in a single wideband at normal incidence illuminated by a plane wave, or into a first given circular polarization handedness over a first frequency band and into a second handedness over a second frequency band, the first and the second circular polarization handedness being substantially equal or orthogonal when operating in dual-band at normal incidence illuminate by a plane wave, the polarizing reflector comprising a flat dielectric substrate delimited between a first surface and a second surface, having a thickness h and a dielectric permittivity .sub.r, and a patch array layer formed by a first bi-dimensionally periodic lattice of thin metallic patches and a second bi-dimensionally periodic lattice of thin metallic patches, both laid on the first surface of the substrate, and each of the first and second periodic lattices having a first set of patch rows oriented along a same first direction x with a same periodicity d.sub.x and a second set of patch columns oriented along a same second direction y with a same second periodicity d.sub.y, and a ground layer formed by a plain metallic layer on the second surface, located below the patch array layer; the substrate separating the patch array layer and the ground layer, all the patches having a same shape elongated along the second direction y and forming electric dipoles when excited along the second direction y, the polarizing reflector being wherein for each row of the first lattice and the second lattice, the patches of the said row have and are all crossed by an elongated metallic strip oriented along the first direction x and having a width c, the elongated metallic strip forming one and a same integral piece, and the first and the second lattices of the patches including the elongated metallic strips are geometrically interleaved while being spatially separate, and the geometry of the patch array, the thickness h and the dielectric permittivity .sub.r of the substrate, and the geometry of the elongated metallic strips are tuned so that the patch array induces a fundamental aperture mode and a complementary fundamental dipolar mode along two orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or induces a fundamental aperture mode and a first complementary fundamental dipole mode along two orthogonal TE and TM polarizations within the first frequency and the fundamental aperture mode and a second complementary higher order dipole mode along two orthogonal TE and TM polarizations within the second frequency band when operating in dual wide band, the differential reflection phase between the two fundamental aperture and dipole modes over the single band, or the differential reflection phase between the two fundamental aperture and dipole modes over the first frequency and the reflection differential phase between the fundamental aperture and a higher dipole mode over the second frequency band being equal to 90 or to an odd integer multiple of 90.
3. The polarizing reflector according to claim 1, wherein for each row of the patch array the patches of the said row are interconnected and crossed by a continuous elongated metallic strip oriented along the first direction x and having the width c.
4. The polarizing reflector according to claim 1, wherein the shape of the patches is either a rectangular shape or a connected T-shape or a connected E-shape or a connected spiral E-shape.
5. The polarizing reflector according to claim 1, wherein all the patches have the same shape and the same geometrical dimensions.
6. The polarizing reflector according to claim 1, wherein the size of each patch is lower than .sub.g/2, preferably comprised between .sub.g/4 and .sub.g/5 and .sub.g designates the guided wavelength corresponding to the highest operating frequency.
7. The polarizing reflector according to claim 1, wherein the geometry of the patch array, the thickness and the dielectric permittivity of the substrate, and the geometry of the elongated metallic strips are tuned so that a first resonance frequency of the dipole mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipolar mode, surround the single frequency wideband of the single operating wideband or the first frequency band of the dual operating band.
8. The polarizing reflector according to claim 1, wherein the geometry of the patch array, the thickness and the dielectric permittivity of the substrate, and the geometry of the elongated metallic strips are tuned so that a first resonance frequency of the dipole mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipole mode, surround the single frequency wideband of the single operating wideband or the first frequency band of the dual operating band, and the first resonance frequency of the aperture mode is located before the second frequency band of the dual operating band.
9. The polarizing reflector according to the claim 1, configured for operating in dual band and wherein, the geometry of the patch array, the thickness h and the dielectric permittivity .sub.r of the substrate, and the geometry of the elongated metallic strips are tuned so that the differential phase between the two fundamental modes over the single or the first and second frequency bands are equal respectively to 90 and 90 or +270 or 270.
10. A flat polarizing reflector for a broadband antenna locally illuminated at normal or oblique incidence by an electromagnetic source having a predetermined radiation pattern to the flat polarizing reflector and for converting locally a linear polarization into a given local circular polarization handedness over one frequency band when operating in a single wideband at a local normal or oblique incidence illuminated by a local plane wave originated from a predetermined source radiation pattern, or into a first local circular polarization handedness over a first frequency band and into a second local polarization handedness over a second frequency, the first and the second local circular polarization handedness being substantially equal or orthogonal when operating in dual-band at normal or oblique incidence illuminated by a local plane wave the polarizing reflector comprising a flat profile dielectric substrate, delimited between a first flat surface with a first flat profile and a second flat surface with a second flat profile, and having a thickness h and a dielectric permittivity .sub.r, a patch array layer formed by a bi-dimensionally flat lattice of thin metallic patches on the first surface of the substrate, the flat lattice having a first set of linear patch rows and a second set of linear patch columns, a ground layer formed by a plain metallic layer on the second surface, located below the patch array layer; the substrate separating the patch array layer and the ground layer, and all the patches having a same elongated shape and forming electric dipoles when excited along their own direction of elongation; the polarizing reflector being wherein for each patch row, the patches of the said patch row are crossed by an elongated metallic strip having a reference width c, or the patches of the said patch row are lined by two elongated metallic strips having a reference width c, and the geometry of the patch array, the thickness h and the dielectric permittivity of the substrate, and the geometry of the elongated metallic strips being tuned so that each phasing cell, made of an elongated electric dipole and a portion of the elongated metallic strip crossing the said elongated electric dipole or made of an elongated electric dipole and a portion of the two elongated metallic strip lining the said elongated electric dipole, laid on the grounded flat substrate having a permittivity .sub.r and a thickness h, induces locally a fundamental aperture mode and a complementary fundamental dipolar mode along two local orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band, and the differential phase between the two fundamental modes over the single or the first and second frequency bands being equal to 90 or to an odd integer multiple of 90.
11. A curved polarizing reflector for a broadband antenna locally illuminated at normal or oblique incidence by an electromagnetic source having a predetermined radiation pattern to the curved polarizing reflector and for converting locally a linear polarization into a given local circular polarization handedness over one frequency band when operating in a single wideband at a local normal or oblique incidence illuminated by a local plane wave originated from a predetermined source radiation pattern, or into a first local circular polarization handedness over a first frequency band and into a second local polarization handedness over a second frequency band, the first and the second local circular polarization handedness being substantially equal or orthogonal when operating in dual-band at normal or oblique incidence illuminated by a local plane wave, the polarizing reflector comprising a curved profile dielectric substrate, delimited between a first curved surface with a first curved profile and a second curved surface with a second curved profile, and having a thickness h and a dielectric permittivity .sub.r, a curved patch array layer formed by a bi-dimensionally curved lattice of thin metallic patches on the first surface of the substrate, the curved lattice having a first set of curvilinear patch rows and a second set of curvilinear patch columns, a ground layer formed by a plain metallic layer on the second surface, located below the patch array layer; the substrate separating the patch array layer and the ground layer, and all the patches having a same substantially elongated shape and forming electric dipoles when excited along their own direction of elongation; the polarizing reflector being wherein for each curvilinear patch row, the patches of the said curvilinear patch row are crossed by an elongated metallic strip having a reference width c, or the patches of the said curvilinear patch row are lined by two elongated metallic strips having a reference width c, and the geometry of the patch array, the thickness h and the dielectric permittivity of the substrate, and the geometry of the elongated metallic strips being tuned so that each phasing cell, made of an elongated electric dipole and a portion of the elongated metallic strip crossing the said elongated electric dipole or made of an elongated electric dipole and a portion of the two elongated metallic strips lining the said elongated electric dipole, laid on the grounded curved substrate having a permittivity .sub.r and a thickness h, induces locally a fundamental aperture mode and a complementary fundamental dipolar mode along two local orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band, and the differential phase between the two fundamental modes over the single or the first and second frequency bands i equal to 90 or to an odd integer multiple of 90.
12. The polarizing reflector according to claim 10, wherein for each phasing cell, while keeping unchanged the local longitudinal direction of the portion of the single crossing elongated metallic strip or the two lining elongated metallic strips, the elongated electric dipole is turned about the local normal to the first surface at the location of the phasing cell by a tuning polarization oriented angle A so that the corresponding axial ratio of the phasing cell is a minimum.
13. The polarizing reflector according to claim 12, wherein the tuning polarization oriented angle A is expressed by the equation:
A=k.Math.A0 A0 designating a reference tuning polarization oriented angle to turn only the electric dipole about the local normal so that the polarization angle separating the local elongation direction of the turned electric dipole included in the local tangent plane to the first surface at the location of the phasing cell and the tangential component of the local incident electrical field in the local tangent plane is substantially equal to a same value equal to +45 or 45, and k designating a positive real number equal or higher than 1 that depends on the level of the patch row the phasing cell belongs to and that minimizes the axial ratio of the phasing cell.
14. The curved polarizing reflector according to claim 11, wherein the curved patch array corresponds to a virtual flat profile reference patch array formed by a bi-dimensionally reference periodic lattice of thin virtual reference metallic patches, the reference periodic lattice having a first reference set of patch rows oriented along a first reference direction x with a periodicity d.sub.x and a second reference set of patch columns oriented along a second reference direction y with a second periodicity d.sub.y and for each virtual reference patch row, the reference patches of the said patch row are crossed by a virtual reference elongated metallic strip generally oriented along the first reference direction x and having a reference width c, or the reference patches of the said reference patch row are lined by two virtual reference elongated metallic strips generally oriented along the first reference direction x and having a reference width c; and to each phasing cell of the curved polarizing reflectors corresponds a virtual flat reference phasing cell made of a virtual elongated electric dipole and a portion of the virtual elongated metallic strip crossing the said virtual elongated electric dipole or made of a virtual elongated electric dipole and a portion of the two virtual elongated metallic strips lining the said virtual elongated electric dipole, laid on a virtual grounded flat substrate having a permittivity .sub.r and a thickness h, the elongation direction of the virtual elongated electric dipole being rotated from a predetermined angle to the second reference direction y so that the said dephasing cell of the curved polarizing reflector induces locally a fundamental aperture mode and a complementary fundamental dipolar mode along two local orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band, the differential phase between the two fundamental modes over the single or the first and second frequency bands being equal to 90 or to an odd integer multiple of 90.
15. The curved polarizing reflector according to claim 14, wherein the curved patch array is a projection of the virtual flat profile reference patch array generally located closest to the first surface of the substrate.
16. The curved polarizing reflector according 14, wherein the first curved surface is a portion of a circular cylinder or a parabolic cylinder or an elliptic cylinder or a hyperbolic cylinder, and the virtual flat profile reference path array is the curved patch array developed on a flat surface.
17. The curved profile polarizing reflector according to claim 11, wherein the virtual flat reference patch rows are sets of rectangular patches regularly spaced, the width and the length of the patches being modulated according to the direction of the rows, and/or the shape of the patches is either a rectangular shape or a connected T-shape or a connected E-shape or a connected spiral E-shape.
18. The polarizing reflector according to claim 1 and suited to broadband satellite application, having a thin flat or thin curved profile.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0064] The invention will be better understood on the basis of the following description which is given in correspondence with the annexed figures and as an illustrative example, without restricting the object of the invention. In the annexed figures:
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DETAILED DESCRIPTION
[0089] The underlying concept is to include one or several elongated metallic strips having a width c either connecting each row of the elongated patches of a conventionally designed polarizing reflector, or lining each row of the elongated patches of a conventionally designed polarizing reflector. By tuning the width c of the added metallic strips and the relevant geometrical parameters of the patch array, the RF performance of the polarizing reflector, in particular the stability of axial ratio over a wide angular range, are significantly improved.
[0090] According to the
[0091] The polarizing reflector 2 comprises a flat dielectric substrate 4, a patch array layer 6 and a ground layer 8.
[0092] The flat dielectric substrate 4 is delimited between a first surface 12 and a second surface 14, having a thickness h and a dielectric permittivity .sub.r.
[0093] The patch array layer 6 is formed by a bi-dimensionally periodic lattice 16 of thin metallic patches 18 laid on the first surface 12 of the substrate 4, the periodic lattice 16 having a first set 22 of patch rows 24 oriented along a first direction x with a periodicity d.sub.x and a second set 26 of patch columns 28 oriented along a second direction y with a second periodicity d.sub.y.
[0094] The ground layer 8 is formed by a plain metallic layer on the second surface 14, located below the patch array layer 6, and the dielectric substrate 4 separates the patch array layer 6 and the ground layer 8.
[0095] All the patches 18 have a same shape elongated along the second direction y and form electric dipoles when electrically excited along the second direction y.
[0096] Here, the metallic patches 18 are rectangular and have each a same length b, a same width a and a same thickness t.
[0097] The polarizing reflector is characterized by the following features.
[0098] For each row 24 the patches of the said row are interconnected by an elongated metallic strip 32 oriented along the first direction x and having a width c, the elongated metallic strip 32 forming one and a same integral piece.
[0099] As a variant of the first embodiment of the invention, for each row the patches of the said row are disconnected, i.e. mutually separated by an isolating gap, and the patches of the said row are lined along the first direction x by two elongated metallic strips, each metallic strip having a width c and forming one and a same integral piece.
[0100] The geometry of the patch array layer 6, the thickness h and the dielectric permittivity .sub.r of the substrate 4, and the width c of the elongated metallic strips 32 are tuned so that the patch array 6 induces a fundamental aperture mode and a complementary fundamental dipolar mode along two orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band.
[0101] The differential reflection phase between the two fundamental modes over the single or the first and second frequency bands is equal to 90 or to an odd integer multiple of 90.
[0102] The properties of the polarizing surface formed by the patch array 6, including the crossing elongated metallic strips 32, are characterized by its response to two orthogonal linearly polarized incident plane waves. The two plane waves, commonly referred to as TE and TM waves are characterized in that they have their electric and magnetic fields transverse to the xz-plane, respectively. In the planar structure of the first embodiment, the TE and TM waves are defined in a similar way with reference to the plane containing the direction of wave propagation and the z-axis. Unless otherwise stated, TE and TM waves are defined with respect to the xz-plane. Consequently at normal incidence, the TE wave has its electric field linearly polarized along the y-axis and the TM wave along the x-axis. The structure being periodic, its response can be expanded as an infinite superposition of space harmonics, also known as Floquet modes, the TE and TM waves mentioned above being the two orthogonal fundamental modes When higher order Floquet modes are below cut-off frequency (i.e. no grating lobes appear in the visible domain), the TE and TM incident wave are reflected in the specular direction.
[0103] Using patches 18 with a high aspect ratio, as in the first embodiment, results in an anisotropic impedance surface (AIS) response introducing a differential reflection phase in the reflected TE and TM waves. Thus exciting the surface with an impinging combination of TE and TM waves in phase, corresponding at normal incidence to a linearly polarized electric field +45 or 45 with respect to the x-axis, would produce a circularly polarized reflected field, provided the differential reflection phase between the two fundamental modes is 90 or an odd integer multiple of 90.
[0104] Thus, the polarizing reflector 2 operates between two different resonant fundamental modes along the TE and TM polarizations. One first mode corresponds to the conventional resonance of a periodic dipolar array while a second mode corresponds to the resonance of a periodic aperture array surrounded by metallic grids, the metallic grids being formed by the elongated metallic strips 32 and their respective crossed and interconnected elongated patches 18.
[0105] The periodic dipole array operates as a series LC equivalent circuit 42 illustrated in
[0106] For the small dimensions of the aperture elements forming the aperture array and for the small dimensions of the dipole elements forming the dipole array, the equivalent circuit is mostly dominated by the inductance for the aperture element, and the capacitance for the dipole element.
[0107] When these aperture and dipole elements are located above the ground plane layer the resulting equivalent circuit 52 of the engineered surface or polarizing reflector, i.e. the grounded substrate and the aperture and dipole array, can be illustrated by a transmission line as shown in
[0108] In the lossless case, the magnitude of the reflection coefficient from the combined structure is unity. Therefore on a Smith chart the equivalent impedance of the combined surface lies on the ||=1 circle as shown in the
[0109] When the separation between the dipole and aperture array and the ground plane layer is a quarter of wavelength, the admittance of the polarizing reflector is the admittance of the dipole and aperture array. Accordingly for small dimensions of the resonant elements, the polarizing reflector 2 exhibits inductive impedance 54 and capacitive impedance 56 for the respective aperture array and dipole array, as shown respectively in the
[0110] It is therefore relatively straightforward to synthesize along the TE and TM polarisations two complementary admittances, i.e. one inductive and one capacitive, which generate reflection coefficients with a 90 or a 270 phase difference and that evolve relatively slowly with frequency in one given single operating wide band.
[0111] With such an approach, a polarising reflecting surface or thin polarizing reflector 2 can be synthesized by tuning the geometry of the dipole patch array 16 and the width c of the elongated metallic strips 32 so that a first resonance frequency of the dipolar mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipolar mode, are respectively and closely located before and after the given single operating frequency wideband.
[0112] More generally the geometry of the patch array 6, the thickness t and the dielectric permittivity of the substrate, and the width c of the elongated metallic strips 32 can be tuned so that a first resonance frequency of the dipolar mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipolar mode, surround the single frequency wideband of the single operating wideband or the first frequency band of the dual operating wide band and the size of the resonant element is small.
[0113] Accordingly the structure as described here above for the thin polarizing reflector 2 according to the first embodiment, increases the stability and decreases the sensitivity of the axial ratio with the angle of incidence of an impinging electromagnetic wave.
[0114] As shown in the
[0115] According to
[0116] The elementary cell 102 is a piece of the dielectric substrate 104, having a parallelepiped shape, covered on a central area 106 of a first face 108 of the parallelepiped oriented along the z axis by one rectangular metal patch 110 elongated along the y axis, and covered plainly on a second face 112 of the parallelepiped, opposite to the first face 108, by a metallic ground layer 114. The elementary cell 102 also includes on its first face 108 an elementary crossing strip 116, being part of a metallic strip 32 elongated along the y axis, crossing the middle of the elongated patch 110 and extending fully along the x axis.
[0117] As a variant the elementary crossing strip of the elementary cell may cross the elongated patch at a position along the y axis located within a predetermined range around the middle of the said elongated patch.
[0118] The dimensions of the parallelepiped are respectively d.sub.x, d.sub.y, h along the x, y, z axis while the planar dimensions of the elongated patch are respectively a, b along the x, y axis and the thickness of the elongated patch, the elementary crossing strip 116 and the ground layer 114 is equal to the thickness t.
[0119] As an example of tuning and as shown in
[0120] According to the
[0121] The
[0122] The dispersion of the phase difference around 270 over the operating wide single band 138 is small since the dispersion of the phase of the reflected TM over the same band 138, shown by the first set curves 134 as well as the dispersion of the phase of the reflected TE over the same band 138, shown by the second set of curves 136, are small. This small dispersion of the phase difference translates into a stability and a low sensitivity to incidence angular variation of the axial ratio as shown in the
[0123] As shown by the
[0124] In a standard spherical coordinate system (, ), the response of the anisotropic impedance surface formed by the polarizing reflector is here simulated for different angles in the xz-plane (=0) and the yz-plane (=90). The corresponding axial ratio versus frequency is illustrated in the
[0125] From these curves 139.sub.1, 140.sub.1, 141.sub.1, 139.sub.2, 140.sub.2, 141.sub.2 the single band reflecting polarizer exhibits a stable axial ratio within the single band 138 and is particularly not affected by grating lobes in both planes.
[0126] The dispersion of the phase difference around 270 is smaller than the dispersion of the phase difference observed for a conventional similar polarizing reflector as shown in the
[0127] Accordingly the polarizing reflector 2 according to the first embodiment of the invention has a greater stability and a lower sensitivity to the angular variation of the axial ratio over the single operating band than the conventional polarizing reflector of
[0128] As shown in
[0129] According to the
[0130] The
[0131] The dispersion of the phase difference around 270 over the operating wide single band 148 is significant since the dispersion of the phase of the reflected TM over the same band 148, shown by the first set curves 144 is great and significant while the dispersion of the phase of the reflected TE over the same band 148 is small. This significant dispersion of the phase difference translates into a stability of the axial ratio lower, or a sensitivity of the axial ratio to incidence angular variation greater than the stability and the sensitivity of the polarizing reflector of the
[0132] Generally, the shape of the patches is either a rectangular shape or a connected T-shape or a connected E-shape or a connected spiral E-shape.
[0133] Particularly, when the profile of the polarizing reflector is flat, all the patches have the same shape and the same geometrical dimensions.
[0134] The size of each patch is lower than .sub.g/2, preferably comprised between .sub.g/4 and .sub.g/5, .sub.g being the guided wavelength of the upper operating frequency.
[0135] According to
[0136] As shown in the
[0137] By using such elementary cells 162, the dual-band polarising reflecting surface or dual-band polarizing reflector 152 can be synthesized for operating in dual-band. Such a synthesis is carried out by tuning the geometry of the dipole array formed by the patches 170 and the width c of the elongated metallic strips so that a first resonance frequency of the dipolar mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipolar mode, surround the first given frequency band of the dual operating band, and the first resonance frequency of the aperture mode is located before the second frequency band of the dual operating band.
[0138] More generally, the geometry of the dipole patch array, the thickness t and the dielectric permittivity of the substrate, and the width c of the elongated metallic strips are tuned so that a first resonance frequency of the dipolar mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipolar mode, surround the first frequency band of the dual operating band, and the first resonance frequency of the aperture mode is located before the second frequency band of the dual operating band.
[0139] More specifically, a circular polarization with low axial ratio and a first handedness can be achieved over the first frequency band that corresponds to the end of the resonance of the dipole mode and to the beginning of the resonance of the aperture mode. Over this first frequency band, the phase difference between the reflection coefficients for the TE and TM waves are equal to +270.
[0140] A circular polarization with opposite handedness and low axial ratio can be achieved over the second frequency band that corresponds to the end of the aperture mode and to the beginning of the resonance of the higher order dipole mode. Over this second frequency band, the phase difference between the reflection coefficients for the TE and TM waves are equal to 270.
[0141] As an example of tuning and as shown in
[0142] It should be noted that as variants other tunings can be implemented and generally the geometry of the patch array, the thickness h and the dielectric permittivity .sub.r of the substrate, and the width c of the elongated metallic strips are tuned so that the differential reflection phase between the two fundamental modes over the single or the first and second frequency bands are equal respectively to 900 and 900 or +270 or 270.
[0143] As shown by the
[0144] As shown by the
[0145] In a standard spherical coordinate system (, ), the response of the anisotropic impedance surface formed by the polarizing reflector is here simulated for different angles in the xz-plane (=0) and the yz-plane (=90). The corresponding axial ratio versus frequency is illustrated in the
[0146] From these curves 180,181, 182, 184, 185, 186 the dual-band reflecting polarizer 152 exhibits a stable axial ratio within the first and second bands 176, 178 and is particularly not affected by grating lobes in both planes. This dual-band reflecting polarizer 152 also has smaller resonant elementary cell by using a folded shape patch like here a connected E-shape patch.
[0147] It should be noted that generally a dual-band reflecting polarizer according to the invention may also use rectangular, connected T-shape, connected spiral E-shape.
[0148] Regardless of the shape of the patches used by the dual-band reflecting polarizer according to the invention, a great stability and a low sensitivity of the axial ratio to the incidence angle within the first and second bands is achieved.
[0149] Conversely and as shown in the
[0150] In the
[0151] According to
[0152] According to
[0153] The aperture array and the dipole array formed by the arrangement of the elementary cells 207 are tuned so that the phases of the reflected TM resonant mode and the TE resonant mode evolve with frequency according to a first curve 2111 and a second curve 211.sub.2.
[0154] With such a tuning a circular polarization with low axial ratio and a first handedness can be achieved over a first frequency band 212.sub.1 that corresponds to the end of the resonance of the dipole mode and to the beginning of the resonance of the aperture mode. Over this first frequency band, the phase difference between the reflection coefficients for the TE and TM waves are equal to +270.
[0155] A circular polarization with opposite handedness and low axial ratio can be achieved over a second frequency band 212.sub.2 that corresponds to the end of the aperture mode and to the beginning of the resonance of the higher order dipole mode. Over the second frequency band 212.sub.2, the phase difference between the reflection coefficients for the TE and TM waves is equal 270. This tuning corresponds to an operation in dual-band depending on the selected second operating frequency band.
[0156] According to
[0157] The polarizing reflector 213 comprises a flat dielectric substrate 214, a patch array layer 216 and a ground layer 218.
[0158] The flat dielectric substrate 214 is delimited between a first surface 222 and a second surface 224, having a thickness h and a dielectric permittivity .sub.r.
[0159] The patch array layer 216 is formed by a first bi-dimensionally periodic lattice 226 of thin metallic patches 228 and a second bi-dimensionally periodic lattice 230 of thin metallic patches 228, both laid on the first surface 222 of the substrate 214.
[0160] The first and second periodic lattices 226, 230 having each a first set 232, 234 of patch rows 236, 238 oriented along a same first direction x with a same periodicity d.sub.x and a second set 242, 244 of patch columns 246, 248 oriented along a same second direction y with a same second periodicity d.sub.y.
[0161] The ground layer 218 formed by a plain metallic layer on the second surface 224, located below the patch array layer 216, and the dielectric substrate 214 separates the patch array layer 216 and the ground layer 218.
[0162] All the patches 228 have a same shape elongated along the second direction y and form electric dipoles when excited along the second direction y.
[0163] Here, the metallic patches 228 are rectangular and have each a same length b, a same width a and a same thickness t.
[0164] The thin polarizing reflector is characterized by the following features.
[0165] For each row 236, 238 of the first lattice 226 and the second lattice 230 the patches 228 of the said rows 236, 238 are interconnected by an elongated metallic strip 252, 254 oriented along the first direction x and having a width c.
[0166] The first and the second lattices 226, 230 of the patches 228 including the elongated metallic strips 242 are geometrically interleaved while being spatially separate.
[0167] The geometry of the patch array layer 216, the thickness h and the dielectric permittivity .sub.r of the substrate 214, and the width c of the elongated metallic strips 242 are tuned so that the patch array 216 induces a fundamental aperture mode and a complementary fundamental dipolar mode along two orthogonal TE and TM polarizations within the single frequency band or within the first frequency band and the second frequency band when operating in dual wide band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band.
[0168] The differential reflection phase between the two fundamental modes over the single or the first and second frequency bands is equal to 90 or to an odd integer multiple of 90.
[0169] According to
[0170] The elementary cell 262 is a piece of the dielectric substrate 214, having a parallelepiped shape, covered on a central area 263 of a first face 264 of the parallelepiped oriented along the z axis by one connected T-shape metal patch 265 elongated along the y axis, and covered plainly on a second face 266 of the parallelepiped, opposite to the first face 264, by a metallic ground layer (not shown). The elementary cell 262 also includes on its first face 264 an elementary crossing strip 267, being part of a metallic strip elongated along the y axis, crossing the middle of the elongated patch 265 and extending fully along the x axis. The central connected T-shape metal patch 265 and its elementary crossing strip 267 belong to the first lattice.
[0171] The dielectric substrate 214 of the elementary cell 252 is also covered on each corner of the first face 264 of the elementary cell 262 by four metallic patterns 268, 269, 270, 271, belonging to four T-shape patches of the second lattice and surrounding globally the central connected T-shape metal patch 265 and its elementary crossing strip 267. The metallic patterns 268, 269, 270, 271 correspond respectively to a bottom right, a bottom left, a top left, a top right of a different T-shape patch and its elementary crossing strip and respectively covers the top left corner, the top right corner, the bottom right, the bottom left corner of the elementary cell 262.
[0172] The dimensions of the parallelepiped are respectively d.sub.x, d.sub.y, h along the x, y, z axis while the planar dimensions of the elongated patch 265 are respectively a, b along the x, y axis and the thickness of the elongated patch 265, the elementary crossing strip 267 and the ground layer is equal to the thickness t.
[0173] By using such elementary cells 262, the dual-band polarising reflecting surface or dual-band polarizing reflector 212 can be synthesized for operating in dual-band by tuning the geometry of the dipole array formed by the patches 260 and the width c of the elongated metallic strips so that a first resonance frequency of the dipolar mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipole mode, surround the first given frequency wide band of the dual operating band, and the first resonance frequency of the aperture mode is located before the second frequency wide band of the dual operating band.
[0174] More generally, the geometry of the dipole patch array, the thickness t and the dielectric permittivity of the substrate, and the width c of the elongated metallic strips are tuned so that a first resonance frequency of the dipolar mode and a first resonance frequency of the aperture mode, higher than first resonance frequency of the dipolar mode, surround the first frequency band of the dual operating wide band, and the first resonance frequency of the aperture mode is located before the second frequency band of the dual operating band.
[0175] As an example of tuning and as shown in
[0176] It should be noted that as variants other tunings can be implemented and generally the geometry of the patch array, the thickness h and the dielectric permittivity .sub.r of the substrate, and the width c of the elongated metallic strips are tuned so that the differential reflection phase between the two fundamental modes over the single or the first and second frequency bands are equal respectively to 90 and 90.
[0177] As shown by the
[0178] By using such interleaved lattices of patches, the elementary cell is smaller and the dual-band reflecting polarizer thus obtained is not affected by grating lobes in both incident planes and exhibits a stable axial ratio within the first and second bands 282, 284.
[0179] Generally a dual-band reflecting polarizer according to the second embodiment of the invention may also use patches having a rectangular shape, a connected E-shape and a connected spiral E-shape.
[0180] Regardless of the shape of the patches used by the dual-band reflecting polarizer according the invention, a greater stability and a lower sensitivity of the axial ratio to the incidence angle within the first and second bands is achieved compared to the conventional polarizing reflector.
[0181] According to the
[0182] According to the
[0183] The flat polarizing reflector 352 is configured for converting locally a linear polarization Einc into a given local circular polarization handedness over one frequency band when operating in a single wideband at a local normal or oblique incidence illuminated by a local plane wave originated from a predetermined radiation source pattern, or into a first local circular polarization handedness over a first frequency band and into a second local polarization handedness over a second frequency, the first and the second local circular polarization handedness being substantially equal or orthogonal when operating in dual-band at normal or oblique incidence illuminated by a local plane wave originated from a predetermined radiation source pattern.
[0184] The flat polarizing reflector 352 comprises a flat profile dielectric substrate 364, a patch array layer 366, a ground layer 368.
[0185] The flat profile dielectric substrate 364 is delimited between a first flat surface with a first flat profile and a second flat surface with a second flat profile, and has a thickness h and a dielectric permittivity .sub.r.
[0186] The patch array layer 366 is formed by a bi-dimensionally flat lattice of thin metallic patches 370 on the first surface of the substrate, the flat lattice having a first set 372 of linear patch rows 372.sub.1, 372.sub.2 and a second set 374 of linear patch columns 374.sub.1, 374.sub.2.
[0187] The ground layer 368 is formed by a plain metallic layer on the second surface, located below the patch array layer 366.
[0188] The substrate 364 separates the patch array layer 366 and the ground layer 368, and all the patches having a same elongated shape and form electric dipoles when excited along their own direction of elongation.
[0189] For each patch row 372.sub.1, 372.sub.2 the patches 370 of the said patch row are crossed by an elongated metallic strip 382.sub.1, 382.sub.2 having a reference width c.
[0190] In a variant, the patches of a same patch row are lined by two elongated metallic strips having a reference width c.
[0191] The geometry of the patch array 366, the thickness h and the dielectric permittivity of the substrate 364, and the geometry of the elongated metallic strips 382.sub.1, 382.sub.2 are tuned so that each phasing cell, made of an elongated electric dipole 370 and a portion of the elongated metallic strip crossing the said elongated electric dipole or made of an elongated electric dipole and a portion of the two elongated metallic strip lining the said elongated electric dipole, and laid on the grounded flat substrate having a permittivity .sub.r and a thickness h, induces locally a fundamental aperture mode and a complementary fundamental dipolar mode along two local orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band, and the differential phase between the two fundamental modes over the single or the first and second frequency bands being equal to 90 or to an odd integer multiple of 90.
[0192] For each phasing cell, while keeping unchanged the local longitudinal direction of the portion of the single crossing elongated metallic strip or the two lining elongated metallic strips, the elongated electric dipole is turned about the local normal to the first surface at the location of the phasing cell by a tuning polarization oriented angle A so that the corresponding axial ratio of the phasing cell is a minimum.
[0193] The tuning polarization oriented angle A is expressed by the equation:
A=k.Math.A0
[0194] A0 designates a reference tuning polarization oriented angle to turn only the electric dipole about the local normal so that the polarization angle separating the local elongation direction of the turned electric dipole included in the local tangent plane to the first surface at the location of the phasing cell and the tangential component of the local incident electrical field in the local tangent plane is substantially equal to a same value equal to +45 or 45.
[0195] k designates a positive real number equal or higher than 1 that depends on the level of the patch row the phasing cell belongs to and that minimizes the axial ratio of the phasing cell.
[0196] As an example and considering a phasing cell 390 located at a point P, the electrical incident field Einc illuminated at the point P has a tangential component Etg included in the local tangent plane xy. The electrical incident field Einc at the point P is defined in a local frame xyz by two incidence angles .sub.i, .sub.i. The radiated field by the source F is defined in a source frame by the radiation angles , . The polarization angle depends on the radiation angles , and the incident electrical field Einc. Here, the illustrated case of the phasing cell 390 corresponds to a specific case wherein the reference tuning polarization is null and the polarization angle is substantially equal to 45.
[0197] According to
[0198] The curved polarizing reflector is configured for converting locally a linear polarization into a given local circular polarization handedness over one frequency band when operating in a single wideband at a local normal or oblique incidence illuminated by a local plane wave originated from a predetermined source radiation pattern, or into a first local circular polarization handedness over a first frequency band and into a second local polarization handedness over a second frequency band, the first and the second local circular polarization handedness being substantially equal or orthogonal when operating in dual-band at normal or oblique incidence illuminated by a local plane wave,
[0199] The curved profile polarizing reflector 402 comprises a curved profile dielectric substrate 406, a patch array layer 408 and a ground layer 410.
[0200] The dielectric substrate 406 is delimited between a first curved surface 412 with a first curved profile and a second curved surface 414 with a second curved profile, and has a thickness h and a dielectric permittivity .sub.r.
[0201] The patch array layer 408 is formed by a bi-dimensionally curved lattice of thin metallic patches 420 on the first curved surface 412 of the substrate, the curved lattice having a first set 422 of curvilinear patch rows 422.sub.1, 422.sub.2 and a second set 424 of curvilinear patch columns 424.sub.1, 424.sub.2, 424.sub.3.
[0202] The ground layer 410 is formed by a plain metallic layer on the second surface 414, located below the patch array layer 408, and the substrate 406 separates the patch array layer 408 and the ground layer 410.
[0203] All the patches 420 have a same substantially elongated shape and form electric dipoles when excited along their own direction of elongation.
[0204] As a variant, the patch array may be etched on a thin dielectric substrate, the ground layer may be made on another thin substrate, these two thin substrates being separated by a spacer honeycomb and stiffening layers. This assembly results in a composite panel polarizing reflector.
[0205] The polarizing reflector is characterized by the following features.
[0206] For each curvilinear patch row 422.sub.1, 422.sub.2, the patches 420 of the said curvilinear patch row 422.sub.1, 422.sub.2 are crossed by an elongated metallic strip 432.sub.1, 432.sub.2 having a reference width c.
[0207] As a variant, for each curvilinear patch row the patches of the said curvilinear patch row are lined by two elongated metallic strips having a reference width c.
[0208] The geometry of the patch array, the thickness h and the dielectric permittivity of the substrate, and the geometry of the elongated metallic strips are tuned so that each phasing cell, made of an elongated electric dipole and a portion of the elongated metallic strip crossing the said elongated electric dipole or made of an elongated electric dipole and a portion of the two elongated metallic strip the said elongated electric dipole, laid on the grounded curved substrate having a permittivity .sub.r and a thickness h, induces locally a fundamental aperture mode and a complementary fundamental dipolar mode along two local orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual band.
[0209] The differential reflection phase between the two fundamental modes over the single or the first and second frequency bands being equal to 90 or to an odd integer multiple of 90.
[0210] For each phasing cell, while keeping unchanged the local longitudinal direction of the portion of the single crossing elongated metallic strip or the two lining elongated metallic strips, the elongated electric dipole is turned about the local normal to the first surface at the location of the phasing cell by a tuning polarization oriented angle A so that the corresponding axial ratio of the phasing cell is a minimum.
[0211] The tuning polarization oriented angle A is expressed by the equation:
A=k.Math.A0
[0212] A0 designates a reference tuning polarization oriented angle to turn only the electric dipole about the local normal so that the polarization angle separating the local elongation direction of the turned electric dipole included in the local tangent plane to the first surface at the location of the phasing cell and the tangential component of the local incident electrical field in the local tangent plane is substantially equal to a same value equal to +45 or 45.
[0213] k designates a positive real number equal or higher than 1 that depends on the level of the patch row the phasing cell belongs to and that minimizes the axial ratio of the phasing cell.
[0214] According the
[0215] A curved patch array 454 of rectangular metallic patches 456 is formed on a first surface 458 that is a portion of a parabolic cylinder, the parabolic cylinder having an apex line 460 and the portion having a width equal to 600 mm.
[0216] The polarizing reflector 452 is illuminated by an offset radiation source 462 located at the focal point of the parabola section and at the middle of the surface portion along the cylinder longitudinal direction x. The offset of the radiation source by a pointing angle departing from the apex pointing direction equal here to 29.77.
[0217] According to the
[0218] According to
[0219] The curved patch array 454 corresponds to a virtual flat profile reference patch array 472 formed by a bi-dimensionally reference periodic lattice of thin virtual reference metallic patches, the reference periodic lattice having a first reference set of patch rows oriented along a first reference direction x with a periodicity d.sub.x, and a second reference set of patch columns oriented along a second reference direction y with a second periodicity d.sub.y.
[0220] For each virtual reference patch row, the virtual reference patches of the said virtual patch row are crossed by a virtual reference elongated metallic strip generally oriented along the first reference direction x and having a reference width c.
[0221] In a variant, the virtual reference patches of the said virtual reference patch row are lined by two virtual reference elongated metallic strips generally oriented along the first reference direction x and having a reference width c.
[0222] To each phasing cell of the curved polarizing reflector 452 corresponds a virtual flat reference phasing cell of the virtual flat reference patch array 472, made of a virtual elongated electric dipole and a portion of the virtual elongated metallic strip crossing the said virtual elongated electric dipole (or in the variant case) made of a virtual elongated electric dipole and a portion of the two virtual elongated metallic strips lining the said virtual elongated electric dipole, laid on a virtual grounded flat substrate having a permittivity .sub.r and a thickness h, the elongation direction of the virtual elongated electric dipole being rotated from a predetermined angle to the second reference direction y so that the said phasing cell of the curved polarizing reflector 452 induces locally a fundamental aperture mode and a complementary fundamental dipolar mode along two local orthogonal TE and TM polarizations within the single frequency band when operating in a single wide band or within the first frequency band and the second frequency band when operating in dual wide band, and the differential phase between the two fundamental modes over the single or the first and second frequency bands being equal to 90 or to an odd integer multiple of 90.
[0223] Here, the curved patch array 454 is a projection of the virtual flat profile reference patch array 472 generally located closest to the first surface 458 of the substrate.
[0224] As a variant, the virtual flat profile reference path array is the curved patch array developed on a flat surface. This variant is also applicable when the curved surface is a portion of a circular cylinder or an elliptic cylinder or a hyperbolic cylinder (to be confirmed by the inventors).
[0225] As shown in the
[0226] A second configuration of a second patch row 492 not yet tuned of the curved surface 452 plane, exhibits at a point P2 of the surface a second metallic patch 494 that forms a second electric dipole and that has a second polarizing angle 2 equal to +45+A0 with A0 here a non zero reference tuning polarization angle. The tuning of the second metallic patch 494 consists in rotating the said patch 494 by the k.Math.A0 angular value in order to get an angularly tuned patch that minimizes the axial ratio of the phasing cell.
[0227] According to the
[0228] The reference tuning polarization angle A0 at a first point Q1(y=207.76 mm and x=150 mm) and a second point Q2 (y=207.76 mm and x=150 mm) of the first curved surface is respectively equal to 5.30 and +5.30.
[0229] As shown in the
[0230] A second curve 504 is the simulated evolution of the axial ratio versus the tuning angle A experienced by an actual phasing cell located at the point Q1 in an actual configuration. While the orientation of the portion of the crossing metallic strip is kept unchanged, only the polarization orientation of the electrical dipole is rotated by the tuning angle A in the tangent plane so that the axial ratio of the phasing cell is minimized. Here a minimum of the axial ratio equal to 0.3 dB is observed at a value of the tuning polarization angle A equal to 20 degree. When expressing A as A=k.Math.A0, the optimizing k value is equal to 3.77.
[0231] In spite of a good axial ratio performance at the minimum of the first curve 502 the implementation of the corresponding theoretical reference phasing cell is not feasible.
[0232] Conversely, the actual phasing cell corresponding to the second curve 504 can be implemented and exhibits even a lower minimum axial ratio at the optimizing tuning polarization angle A equal to 20.
[0233] As shown in the
[0234] A second curve 514 is the simulated evolution of the axial ratio versus the tuning angle A experienced by an actual phasing cell located at the second point Q2 in an actual configuration. While the orientation of the portion of the crossing metallic strip is kept unchanged, only the polarization orientation of the electrical dipole is rotated by the tuning angle A in the tangent plane so that the axial ratio of the phasing cell is minimized. Here a minimum of the axial ratio equal to 0.3 dB is observed at a value of the tuning polarization angle A equal to +20 degree. When expressing A as A=k.Math.A0, the optimizing k value is equal to 3.77.
[0235] In spite of a good axial ratio performance at the minimum of the first curve 512, in practice the physical implementation of the corresponding theoretical reference phasing cell is not feasible.
[0236] Conversely, the actual phasing cell corresponding to the second curve 514 can be physically implemented and exhibits even a lower minimum axial ratio at the optimizing tuning polarization angle A equal to 20.
[0237] According to the
[0238] The developed pattern shows an equal distribution in the positions of the patches along the row. The width a and the length b of the rectangular patches are respectively modulated about a central width a.sub.c and a central length be by using a first modulating function m1(x) and a second modulating function according to the equations: a(x)=m.sub.1(x).Math.a.sub.c and b(x)=m.sub.2(x).Math.a.sub.c
[0239] Such a pattern may be used for a polarizing reflector having a parabolic cylinder shape or any other surface that can be developed on a flat plane.
[0240] Generally and regardless of the various embodiments of the polarizing reflector described here above the shape of the patches 18, 228, 370, 420 is either a rectangular shape or a connected T-shape or a connected E-shape or a connected spiral E-shape.
[0241] The polarizing reflectors as described here above may be used for ground stations of fixed or mobile terrestrial networks.
[0242] The polarizing reflectors as described here above may be in particular suited to broadband satellite applications and have a thin flat or thin curved profile in order to accommodate layout requirements of a satellite during launching and in orbit.
[0243] It should be noted that the term dielectric permittivity .sub.r of the dielectric substrate as used in the text here above designates in the common knowledge of the antenna designers the relative dielectric permittivity of the dielectric substrate. The relative dielectric permittivity of a material is conventionally expressed as the ratio of its absolute permittivity relative to the permittivity of vacuum.