Claims
- 1. An energy system, comprising:
- an antenna layer arranged to face a source of radio frequency energy, said energy coupled thereto, said antenna layer having a first surface facing the source, and a second surface opposite said first surface and facing away from the source;
- an RF shielding layer, located facing said second surface of said antenna layer, such that said antenna layer is between said source and said RF shielding layer, said RF shielding layer including an element therein which allows radio frequency energy to pass therethrough to a second side thereof, said element formed and positioned to receive said radio frequency energy and to minimize any reradiating from said second side of said RF shielding layer back toward the source;
- energy rectifying circuitry, including circuitry for rectifying said radio frequency energy into dc energy, at least a part of said energy rectifying circuitry which rectifies said energy being on said second side of said energy shielding layer and separated from said source by said RF shielding layer;
- said energy rectifying circuitry including a first element which receives a first part of the radio frequency energy in conjunction with said antenna layer, and a second element which receives a second part of the radio frequency energy in conjunction with said antenna layer, said energy rectifying circuitry comprises at least two circuits disposed in two different areas in a different layer from said first and second elements, said first and second elements spaced from one another, and coupling received RF energy to different ones of said two circuits in the energy rectifying circuitry, wherein each said two circuits include at least one diode, each said diode located on said second side.
- 2. A system as in claim 1 wherein said element is a rectangular slot.
- 3. A system as in claim 2 wherein said element includes first and second apertures, each being a rectangular slot having a length along an axial direction, said axial direction of said first aperture facing in a different direction than said axial direction of said second aperture, each said aperture receiving a different portion of energy in conjunction with said patch layer.
- 4. A system as in claim 1 wherein said first and second elements separate different polarization components of the radio frequency energy to said different circuits.
- 5. A system as in claim 4 further comprising a surface wave reducing layer, coupled between said antenna layer and said RF shielding layer.
- 6. A system as in claim 5 wherein said RF shielding layer is a conductor-clad ground plane on a first side of a board, wherein said energy rectifying circuitry is on both sides of the same board.
- 7. The system of claim 6 wherein said energy rectifying circuitry contains diodes directly connected to said conductor-clad ground plane.
- 8. A system as in claim 5 wherein said surface wave reducing layer is formed of a low-dielectric lightweight material.
- 9. The system of claim 1 wherein each of said diodes are connected to said ground plane through via holes.
- 10. The system of claim 1 wherein said diodes are directly connected to said ground plane through via holes.
- 11. A method of receiving and transducing beamed energy, comprising:
- separating a first part of the beamed energy having a first characteristic, from a second part of the beam energy having a second characteristic, according to the said characteristic of the beamed energy;
- coupling the first part of the energy to a first circuit portion in a first physical location;
- coupling the second part of the energy to a second circuit portion of the energy receiving board in a second physical location, spaced from said first physical location; and
- dissipating heat from said first part of said energy in said first circuit to a first location on a ground plane, and dissipating heat from said second part of said energy in said second circuit to a second location on the ground plane.
- 12. A method as in claim 11 wherein said first circuit is on a first half of an energy receiving circuit board portion, and said second circuit is on a second half of the energy receiving board portion, wherein said first half and said second half do not overlap.
- 13. A method as in claim 11 wherein said first part of the beamed energy is a first polarization component, and said second part of the beamed energy is a second polarization component different than the first polarization component.
- 14. A method as in claim 11 wherein said coupling is effected without any dc connection.
- 15. The system as in claim 1 wherein said RF shielding layer also comprises a capacitive cover layer.
- 16. A method of claim 11 wherein said steps of dissipating heat include dissipating heat from said circuits to said ground plane through diodes.
- 17. A circuit for coupling and receiving RF energy and converting the received RF energy to rectified dc, comprising:
- a first receiving element including a flat conductive surface of a specified outer shape;
- a ground plane including first and second ground plane apertures therein, said first aperture arranged and shaped to transmit energy having a first characteristic and said second aperture arranged and shaped in size to pass energy having a second characteristic different than said first characteristic; and
- a rectifying circuit including a first circuit receiving energy having said first characteristic and having a second circuit receiving energy having said second characteristic the first and second circuits being disposed in different physical locations, each of said first and second circuits including a diode connected to said around plane.
- 18. A circuit as in claim 17 wherein said characteristic is polarization.
- 19. A circuit as in claim 18 wherein said first polarization is vertical polarization and said second polarization is vertical polarization and horizontal polarization.
- 20. A circuit as in claim 18 wherein said first and second polarizations are components of circular polarizations.
- 21. A circuit as in claim 18 wherein said apertures form slot antennas which cooperate with said first receiving element, and wherein a portion of each said slot antenna is not directly underneath any part of said first receiving element.
- 22. A circuit as in claim 17 wherein said first receiving element is located between said ground plane and the source of the RF energy, and said rectifying circuit is located on an opposite side of said ground plane relative to said source of RF energy.
- 23. A circuit as in claim 22 further comprising a lightweight layer of low-dielectric foam, located between said first receiving element and said ground plane.
- 24. A method of receiving beamed energy, comprising:
- receiving beamed RF energy in a slot antenna for aperture coupling which is associated with a patch element, said patch element being located on a first side of said slot antenna;
- providing a ground plane around said slot antenna which shields against RF penetration therethrough other than that effected by said slot antenna; and
- rectifying the RF energy into dc energy using multiple circuits on multiple layers, said rectifying occurring on a second side of said slot antenna and said ground plane using diodes connected to the ground plane, so that any harmonic or other radiation caused by rectifying is shielded from a direction of the beamed RF energy.
- 25. A method as in claim 24 further comprising providing two slot antennas, each of which receives energy having a different characteristic, and coupling energy from each slot antenna to a different one of said circuits, each of said circuits associated with said one patch element.
- 26. A method as in claim 25 wherein said characteristic is polarization.
- 27. The method as in claim 24 wherein said diodes are directly connected to said ground plane through via holes.
- 28. A method of operating an aperture-coupled patch system comprising:
- coupling energy containing information, said energy including first and second different kinds of polarization components, to an aperture-coupled patch in said aperture-coupled patch system;
- receiving one of said polarization components in a first antenna associated with said aperture-coupled patch and receiving the other of the polarization components in a second antenna associated with the said aperture-coupled patch; and
- coupling said information from said first antenna to a first circuit in the patch, and coupling information in the second antenna to a second circuit in the patch, said first and second circuits being spaced from one another in different locations to spread heat between said first and second circuits to said different locations.
- 29. An aperture-coupled patch antenna system, comprising:
- a patch element, having a surface, and outer dimensions defining a predetermined shape;
- a ground plane;
- a slot antenna, partially underlying said patch element, and partially not underlying said patch element, so that a portion of said slot antenna extends beyond an edge of said patch element;
- rectifying circuitry positioned to rectify information from said patch element, said circuitry having no dc connection to either the slot antenna or the patch element, and receiving beamed energy therefrom, the rectifying circuitry including two separate circuits in two different locations, each of said two circuits including a diode connected to said ground plane.
Parent Case Info
This is a continuation of application Ser. No. 08/498,481 filed Jul. 5, 1995, now abandoned.
ORIGIN OF INVENTION
The invention described herein was made in the performance of work under a NASA contract, and is subject to the provisions of Public Law 96-517 (35 USC .sctn.202), in which the contractor has elected to retain title.
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Continuations (1)
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Number |
Date |
Country |
Parent |
498481 |
Jul 1995 |
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