Claims
- 1. A transceiver assembly comprising:
an antenna input/output transition; a transmit module; a receive module; and a diplexer having opposed planar surfaces, wherein the transmit module, receive module, and antenna input/output transition are located on the same planar surface of the diplexer.
- 2. The assembly as defined in claim 1, wherein tuning adjustments to the diplexer are performed on the opposite surface of the diplexer from the transmit module, receive module, and antenna input/output transition.
- 3. The assembly as defined in claim 1, wherein the diplexer can be removed from the transceiver assembly while leaving the transmit module and the receive module in the transceiver assembly.
- 4. The assembly as defined in claim 1, wherein the diplexer can be replaced in the transceiver assembly with another diplexer tuned to a different frequency while the PCB, the transmit module, receive module, and antenna input/output transition are maintained in the transceiver assembly.
- 5. The assembly as defined in claim 1, further including a thermal conductive path from a heat generating component inside the transceiver assembly to the exterior of the transceiver assembly.
- 6. A diplexer comprising a wave-guide section with four sides and two end sections, and three ports communication ports, including a first port located toward the center of the wave-guide section, and a second port and a third port each located toward opposite ends of the wave-guide section, with all three ports on a same one of the four sides of the wave-guide section so that a radio frequency signal that travels through the diplexer is redirected 180 degrees from the direction in which it entered the diplexer.
- 7. The diplexer as defined in claim 6, further comprising tuning adjustments located on the side of the diplexer opposite the side with the ports.
- 8. The diplexer as defined in claim 6, further comprising an antenna input/output flange coupled to the port located toward the center of the wave-guide section.
- 9. A diplexer comprising:
a wave-guide section having four sides and two ends, and three communication ports, including a first port located toward the center of the wave-guide section, and a second port and a third port each located toward opposite ends of the wave-guide section, such that all three ports are located on a same one of the four sides of the wave-guide section; and a first and a second backstop, each of which is located at a first and a second end, respectively, of the wave-guide section.
- 10. The diplexer as defined in claim 9, further comprising tuning adjustments located on the side of the diplexer opposite the side having the three ports.
- 11. The diplexer as defined in claim 9, further comprising an antenna input/output flange coupled to the port located toward the center of the wave-guide section.
- 12. The diplexer as defined in claim 9, wherein the first and second backstop can be removed and replaced.
- 13. The diplexer as defined in claim 9 wherein the first and second backstop are removed during a plating process.
- 14. The diplexer as defined in claim 9, wherein the first and second backstops are position at a desired distance from the respective communication ports located toward the ends of the wave-guide section.
- 15. A diplexer comprising:
a first, a second, and a third port all located on a same planar surface of the diplexer; a combiner having first, second, and third combiner ports; a transmit filter configured to receive signals from a transmit module, coupled to the first port of the diplexer, at a first frequency and to pass the transmit signals to the first combiner port and to reject signals at other frequencies; and a receive filter configured to receive signals from the second combiner port and to pass signals at a second frequency to a receive module coupled to the second port of the diplexer, and reject signals at other frequencies; wherein the third combiner port is coupled to the third port of the diplexer and is configured to pass signals to, and accept signals from, an antenna.
- 16. The diplexer as defined in claim 15, wherein the first and second diplexer ports are located toward the ends of the diplexer and the third port is located toward the center of the diplexer.
- 17. A diplexer comprising:
a first, a second, and a third port all located on the same planar surface of the diplexer; a transmit filter configured to receive signals from a transmit module, coupled to the first port of the diplexer, at a first frequency and to pass the transmit signals to a first port of a combiner and to reject signals at other frequencies; a receive filter configured to receive signals from a second port of the combiner and to pass signals at a second frequency to a receive module coupled to the second port of the diplexer, and reject signals at other frequencies; a third port on the combiner, coupled to the third port of the diplexer, configured to pass signals to, and accept signals from, an antenna; and an oscillator configured to produce a reference signal used by both the transmit filter and the receive filter.
- 18. The diplexer as defined in claim 17, wherein the first and second diplexer ports are located toward the ends of the diplexer and the third port is located toward the center of the diplexer.
- 19. A transceiver assembly comprising:
a single printed circuit board; an antenna input/output transition; a transmit module; a receive module; and a diplexer having opposed planar surfaces, wherein the transmit module, receive module, and antenna input/output transition are located on the same planar surface of the diplexer.
- 20. An assembly as defined in claim 19, wherein electronic components are attached to the printed circuit board surface established by a plane of the antenna input/output transition.
- 21. An assembly as defined in claim 19, wherein relief in the printed circuit board allows the antenna input/output transition to extend through the printed circuit board.
- 22. An assemble as defined in claim 19, wherein all transceiver electronic components are mounted onto the single printed circuit board.
- 23. An assembly as defined in claim 19, wherein the circuit board includes personality parts used to configure the transceiver assembly.
- 24. An assembly as defined in claim 23, wherein a first base material is used in the fabrication of the printed circuit board and a second base material is used in the fabrication of the personality parts.
- 25. A method of constructing a radio system, the method comprising:
attaching electronic components to a printed circuit board surface established by a plane of an antenna input/output transition; providing relief in the printed circuit board such that the antenna input/output transition extends through the printed circuit board; and coupling a first port of a diplexer having three ports located on the same planar surface to the antenna input/output transition.
- 26. The method as defined in claim 25, wherein the second and third ports on the diplexer are coupled to a transmit module and a receive module, respectively.
- 27. The method as defined in claim 25, wherein the printed circuit board is a single printed circuit board.
- 28. The method as defined in claim 25, wherein attaching electronic components to the printed circuit board includes attaching personality parts to the circuit board.
- 29. The method as defined in claim 28, wherein the personality parts change the operating frequency of the radio system.
- 30. The method as defined in claim 28, wherein the printed circuit board is fabricated with a first base material and the personality parts are fabricated with a second base material.
REFERENCE TO PRIORITY DOCUMENT
[0001] This application claims priority of co-pending U.S. Provisional Patent Application Serial No. 60/318,150 entitled “Transceiver Assembly” by Patric McDonald and Daniel Bryson, filed Sep. 7, 2001. Priority of the filing date of Sep. 7, 2001 is hereby claimed, and the disclosure of the Provisional Patent Application is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60318150 |
Sep 2001 |
US |