Dual-band (S and C) sub-reflectors for frequency-reuse types of satellite communication systems for commercial and defense applications
11196173 · 2021-12-07
Assignee
Inventors
- Hatem Malek Rmili (Jeddah, SA)
- Majed Nour (Jeddah, SA)
- Raj Mittra (Jeddah, SA)
- Asim Ghalib (Jeddah, SA)
Cpc classification
H01Q5/45
ELECTRICITY
H01Q19/17
ELECTRICITY
H01Q19/19
ELECTRICITY
H01Q5/307
ELECTRICITY
H01Q15/0013
ELECTRICITY
International classification
H01Q15/00
ELECTRICITY
H01Q19/17
ELECTRICITY
H01Q21/26
ELECTRICITY
H01Q5/307
ELECTRICITY
Abstract
Subreflectors for frequency-reuse types of satellite communication system which cover the S and C bands take the form of a three-dimensional waveguide with cross dipoles on each end, where each branch of each dipole is electrically connected by conductor that passes through the center of a substrate that fills the volume of the waveguide. The frequency selective surface sub-reflector is configured to permit the S-band antenna to transmit therethrough with an insertion loss of less than 0.5 decibels, and to reflect transmissions of the C-band antenna with transmissions through the frequency selective surface sub-reflector being less than 15 decibels.
Claims
1. A dual band reflector antenna, comprising: a main reflector; an S-band antenna configured to transmit at a frequency of 1.76 to 2.4 GHz directed towards said main reflector; a C-band antenna configured to transmit at a frequency of 3.4 to 4.3 GHz directed away from said main reflector and towards said S-band antenna; and a frequency selective surface sub-reflector positioned between said S-band antenna and said C-band antenna, wherein said frequency selective surface sub-reflector is configured to permit the S-band antenna to transmit through said frequency selective surface sub-reflector with an insertion loss of less than 0.5 decibels, and to reflect transmissions of the C-band antenna with transmissions through the frequency selective surface sub-reflector being less than 15 decibels, wherein said frequency selective surface sub-reflector comprises a wave guide having a length which extends from a first end to a second end, two crossed dipoles, wherein a first crossed dipole of said two crossed dipoles is positioned at the first end of the waveguide and a second crossed dipole of said two cross dipoles is positioned at the second end of the waveguide, and two parallel wire transmission lines connecting the two crossed dipoles.
2. The dual band reflector antenna of claim 1 wherein said frequency selective surface further comprising an insulative substrate as part of said waveguide.
3. The dual band reflector antenna of claim 2 wherein the insulative substrate comprises glass and ceramics.
4. The dual band reflector antenna of claim 2 further comprising a metal sidewalls on a plurality of sides of said insulative substrate.
5. The dual band reflector antenna of claim 1 wherein said waveguide of said frequency selective surface sub-reflector has four sides comprising two pairs of opposing sides where each pair of opposing sides are 9 mm apart, wherein said length of said waveguide is 7 mm, and wherein each of said two crossed dipoles includes a first dipole and a second dipole, and a length of said first dipole and said second dipole are each 7.6 mm.
6. The dual band reflector antenna of claim 5 wherein said frequency selective surface further comprising an insulative substrate forming part of said waveguide.
7. The dual band reflector antenna of claim 6 wherein the insulative substrate comprises glass and ceramics.
8. A frequency selective surface sub-reflector for a dual band reflector antenna having an S-band antenna configured to transmit at a frequency of 1.76 to 2.4 GHz and a C-band antenna configured to transmit at a frequency of 3.4 to 4.3 Ghz, comprising: a wave guide having a length which extends from a first end to a second end; two crossed dipoles, wherein a first crossed dipole of said two crossed dipoles is positioned at the first end of the waveguide and a second crossed dipole of said two cross dipoles is positioned at the second end of the waveguide; two parallel wire transmission lines connecting the two crossed dipoles; and an insulative substrate forming part of said waveguide, wherein said frequency selective surface sub-reflector is configured to permit the S-band antenna to transmit through said frequency selective surface sub-reflector with an insertion loss of less than 0.5 decibels, and to reflect transmissions of the C-band antenna with transmissions through the frequency selective surface sub-reflector being less than 15 decibels.
9. The frequency selective surface sub-reflector of claim 8 wherein said waveguide of said frequency selective surface sub-reflector has four sides comprising two pairs of opposing sides where each pair of opposing sides are 9 mm apart, wherein said length of said waveguide is 7 mm, and wherein each of said two crossed dipoles includes a first dipole and a second dipole, and a length of said first dipole and said second dipole are each 7.6 mm.
10. The frequency selective surface sub-reflector of claim 8 wherein the insulative substrate comprises glass and ceramics.
11. The frequency selective surface sub-reflector of claim 8 further comprising a metal sidewalls on a plurality of sides of said insulative substrate.
Description
DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) The specifications for a dual band, S-band and C-band, system call for the S-band to be transmitting with an insertion loss of less than 0.5 dB, while high reflection is desired in the C band, transmission less than −15 dB, as per the specifications given in Table-2 above. Typically, multilayered frequency selective surfaces (FSSs) are designed to meet the specifications of the subreflectors for frequency reuse systems. Search for prior art reveals that previous multi-band designs cover frequency bands that are widely separated, as for instance S-, X- and Ka-bands. However, the existing designs cannot be adapted to meet the dual-band (S- and C-band) specifications, because there is no gap between the two bands, i.e., they are contiguous. Hence, the transition from the S- to C-band must be very sharp.
(7) A sub reflector for this use is realized with an FSS which transmits the S-band with little loss, while reflecting the C-band as fully as possible. The key to achieving the desired frequency response is to combine two types of FSS elements, the first of which provides the passband at S-band but with a sharp roll-off as there is a transition into the C-band. It employs a three-dimensional element comprising: (i) a finite-length truncated waveguide of square cross-section; (ii) two cross-dipoles; (iii) two parallel-wire transmission lines connecting the dipoles above and below. The parameters of each of these components may be optimized to realize the desired frequency response characteristics.
(8)
(9) A dual band reflector antenna according to the present invention will be the same as shown in
(10)
REFERENCES
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