Amplifier for a transceiver and a transceiver comprising such an amplifier
20210075383 ยท 2021-03-11
Inventors
Cpc classification
H03F2203/21157
ELECTRICITY
H03F2203/21142
ELECTRICITY
H03F2203/21106
ELECTRICITY
H03F2200/423
ELECTRICITY
H03F2200/255
ELECTRICITY
H03F1/56
ELECTRICITY
H03F2200/204
ELECTRICITY
H03F2200/192
ELECTRICITY
International classification
Abstract
An amplifier for a transceiver comprising
plurality of power amplifiers arranged on a base, each power amplifier comprising a power amplifier input port and a power amplifier output port;
a planar power splitter arranged on the base, the power splitter comprising a power splitter input port and a plurality of power splitter output ports;
each power amplifier input port being connected to a power splitter output port by a planar transmission line;
each power amplifier output port being connected to a waveguide transition;
a plurality of waveguides each defined by a waveguide wall, each waveguide being arranged within the base, each waveguide transition being connected to waveguide; and,
a waveguide power combiner arranged within the base, each waveguide being connected to the waveguide power combiner.
Claims
1. An amplifier for a transceiver comprising a plurality of power amplifiers arranged on a base, each power amplifier of the plurality of power amplifiers comprising a power amplifier input port and a power amplifier output port; a planar power splitter arranged on the base, the planar power splitter comprising a power splitter input port and a plurality of power splitter output ports; each power amplifier input port being connected to a power splitter output port of the plurality of power splitter output ports by a planar transmission line; each power amplifier output port being connected to a waveguide transition; a plurality of waveguides, wherein each waveguide of the plurality of waveguides is defined by a waveguide wall, each waveguide of the plurality of waveguides being arranged within the base, each waveguide transition being connected to waveguide; and a waveguide power combiner arranged within the base, each waveguide being connected to the waveguide power combiner.
2. The amplifier for the transceiver as claimed in claim 1, wherein at least one power amplifier is a monolithic microwave integrated circuit.
3. The amplifier for the transceiver as claimed in claim 1, wherein at least one planar transmission line is a microstrip.
4. The amplifier for the transceiver as claimed in claim 1, wherein the planar power splitter is a planar rat race splitter.
5. The amplifier for the transceiver as claimed in claim 1, wherein the planar power splitter is a branch line coupler.
6. The amplifier for the transceiver as claimed in claim 1, wherein the waveguide power combiner comprises a magic T.
7. The amplifier for the transceiver as claimed in claim 1, wherein the waveguide power combiner comprises a rat race coupler or short slot hybrid combiner.
8. The amplifier for the transceiver as claimed in claim 1, wherein the base comprises an upper layer and a lower layer, the plurality of waveguides extending through the upper layer; and the lower layer having a cavity therein defined by a cavity wall, the cavity wall defining the waveguide power combiner connected to the waveguides.
9. The amplifier for the transceiver as claimed in claim 8, wherein the lower layer is a metal.
10. The amplifier for the transceiver as claimed in claim 8, wherein the lower layer is a dielectric, the lower layer being coated with a metal film to define the waveguide power combiner.
11. The amplifier for the transceiver as claimed in claim 8, wherein the upper layer is a metal, each waveguide of the plurality of waveguides comprising an aperture extending through the upper layer, a side wall of the aperture defining the waveguide wall.
12. The amplifier for the transceiver as claimed in claim 11, further comprising a dielectric coating layer arranged on the upper layer.
13. The amplifier for the transceiver as claimed in claim 8, wherein the upper layer is a dielectric.
14. The amplifier for the transceiver as claimed in claim 13, wherein at least one waveguide of the plurality of waveguides comprises an aperture extending through the upper layer, a side wall of the aperture being coated with a metal film which defines the waveguide wall.
15. The amplifier for the transceiver as claimed in claim 13 wherein at least one waveguide of the plurality of waveguides comprises a plurality of electrically conductive vias extending through the upper layer, the plurality of electrically conductive vias defining the waveguide wall.
16. A transceiver comprising: a plurality of power amplifiers arranged on a base, each power amplifier comprising a power amplifier input port and a power amplifier output port; a planar power splitter arranged on the base, the power splitter comprising a power splitter input port and a plurality of power splitter output ports; each power amplifier input port being connected to a power splitter output port by a planar transmission line; each power amplifier output port being connected to a waveguide transition; a plurality of waveguides each defined by a waveguide wall, each waveguide being arranged within the base, each waveguide transition being connected to waveguide; and a waveguide power combiner arranged within the base, each waveguide being connected to the waveguide power combiner.
17. The transceiver as claimed in claim 16, further comprising a signal source connected to the power splitter input port.
18. The transceiver as claimed in claim 17, further comprising a driver power amplifier connected between the power splitter input port and the signal source.
19. The transceiver as claimed in claim 16, further comprising an antenna connected to the waveguide power combiner.
20. The transceiver as claimed in claim 19, further comprising at least one of a multiplexer and filter connected between the antenna and the waveguide power combiner.
Description
[0040]
[0041] Also arranged on the base 3 is a planar power splitter 7. In this embodiment the planar power splitter 7 is a planar rat race splitter realised in a planar technology such as microstrip or stripline. The operation of such a power splitter 7 is well known and will not be described in detail. The planar power splitter 7 comprises a power splitter input port 8 and a plurality of power splitter output ports 9. Power provided to the power splitter input port 8 is divided and exits the power splitter output ports 9. Each power amplifier input port 5 is connected to a power splitter output port 9 by a planar transmission line 10. Substrate based planar transmission lines are again known in the art and so will not be described in detail. In this embodiment each planar transmission line 10 is a microstrip.
[0042] Connected to each power amplifier output port 6 is a waveguide transition 11. Each waveguide transition 11 comprises a microstrip 12 which terminates in an antenna 13 which extends over the mouth of a waveguide 14 defined by a waveguide wall 15. The waveguides 14 are described in more detail with reference to
[0043] Shown in
[0044] A portion of the lower face 25 of the upper layer 17 is coated with a further metal film 26 which closes the cavity 21. The waveguide power combiner 24 comprises an output port 27 which exits the lower face 28 of the base 3.
[0045]
[0046] Returning now to
[0047] In the embodiment of the transceiver 1 shown in
[0048]
[0049]
[0050] In the above embodiments the waveguide power combiner 24 is a magic T. In alternative embodiments the transceiver 1 is not so limited and may comprise a functional equivalent such as a rat race coupler or short slot hybrid combiner.
[0051] In an alternative embodiment of the invention the planar power splitter 7 is a branch line coupler.
[0052] In a further alternative embodiment of the invention the planar transmission lines 10 are striplines.
[0053] In a further alternative embodiment of the invention the transceiver 1 comprises a filter connected between the antenna 30 and waveguide power combiner 24 as an alternative or in addition to the multiplexer 31.