Claims
- 1. A digital beamforming radar system, which comprises:
a receiver, the receiver including: a plurality of antenna elements, at least one of the plurality of antenna elements being adapted to receive a radar signal and output a received signal; a plurality of low-noise block converters, at least one of the plurality of low-noise block converters including an amplifier, a mixer, and a local oscillator input, and being responsive to the received signal from a corresponding antenna element, the at least one of the plurality of low-noise block converters outputting an intermediate frequency signal, the local oscillator input being adapted to enable a local oscillator signal to be externally inputted to the low-noise block converter and the mixer being responsive to the local oscillator signal; at least one analog-to-digital converter, the at least one analog-to-digital converter being responsive to the intermediate frequency signal of a corresponding low-noise block converter and outputting a digital signal; and a processor responsive to the digital signal of the at least one analog-to-digital converter, the processor performing digital beamforming algorithms on the digital signal.
- 2. A digital beamforming radar system as defined by claim 1, wherein at least one of the plurality of low-noise block converters comprises a commercially available low-noise block converter for use in satellite television systems, which includes an internal local oscillator circuit and is modified to provide the local oscillator input and to disable the internal local oscillator circuit.
- 3. A digital beamforming radar system as defined by claim 1, wherein the local oscillator input includes an external connector.
- 4. A digital beamforming radar system as defined by claim 1, wherein the at least one amplifier is at least one of disabled, shorted, and disconnected.
- 5. A digital beamforming radar system as defined by claim 1, wherein at least one of the plurality of low-noise block converters includes a custom made low-noise block converter, which includes a local oscillator input.
- 6. A digital beamforming radar system as defined by claim 1, wherein the digital beamforming radar includes a dynamic range, the at least one amplifier being adapted to be adjusted for compatiblity with the dynamic range.
- 7. A digital beamforming radar system as defined by claim 1, wherein at least one of the plurality of low-noise block converters includes a damping means, the damping means being adapted for substantially suppressing oscillations within the low-noise block converter.
- 8. A digital beamforming radar system as defined by claim 1, wherein at least one of the plurality of low-noise block converters includes a filter circuit, the filter circuit being electrically connected in series with the at least one amplifier and the mixer.
- 9. A digital beamforming radar system as defined by claim 8, wherein the filter circuit includes a bandwidth, the bandwidth being modified for compatibility with the digital beamforming radar system.
- 10. A digital beamforming radar system as defined by claim 1, further comprising a transmitter.
- 11. A method of making a low-cost, efficient low-noise block converter for use in a digital beamforming radar receiver comprising the steps of:
providing a commercially available low-noise block converter used in satellite television systems; modifying the commercially available low-noise block converter to disable a local oscillator circuit, the local oscillator circuit being internal to the commercially available low-noise block converter; and providing a local oscillator input, the local oscillator input being electrically coupled to a mixer, the mixer being internal to the commercially available low-noise block converter, the local oscillator input enabling a local oscillator signal to be externally inputted to the mixer.
- 12. A method of making a low-cost, efficient low-noise block converter for use in a digital beamforming radar receiver as defined by claim 11, wherein the commercially available low-noise block converter includes at least one amplifier, the at least one amplifier including a gain, the method further comprising the step of disabling the at least one amplifier.
- 13. A method of making a low-cost, efficient low-noise block converter for use in a digital beamforming radar receiver as defined by claim 11, further comprising the step of providing a damping means internal to the low-noise block converter, the damping means substantially suppressing oscillations in the low-noise block converter.
- 14. A method of making a digital beamforming radar system comprising the steps of:
making a receiver comprising the steps of:
coupling a plurality of antenna elements to a plurality of low-noise block converters, at least one of the plurality of antenna elements being adapted to receive a radar signal and output a received signal, at least one of the plurality of low-noise block converters being including an amplifier, a mixer and a local oscillator input and being responsive to the received signal from a corresponding antenna element, the at least one of the plurality of low-noise block converters outputting an intermediate frequency signal, the local oscillator input being adapted to enable a local oscillator signal to be externally inputted to the low-noise block converter and the mixer being responsive to the local oscillator signal; coupling the plurality of low-noise block converters to at least one analog-to-digital converter, the at least one analog-to-digital converter being responsive to the intermediate frequency signal of a corresponding low-noise block converter and outputting a digital signal; and coupling the at least one analog-to-digital converter to a processor responsive to the digital signal of the at least one analog-to-digital converter.
- 15. A method of making a digital beamforming radar system as defined by claim 14, wherein at least one of the plurality of low-noise block converters includes a commercially available low-noise block converter having an internal local oscillator circuit for use in satellite television systems, the method further comprising the step of modifying the commercially available low-noise block converter to include the local oscillator input and to disable the internal local oscillator circuit.
- 16. A method of making a digital beamforming radar system as defined by claim 14, the method further comprising the step of coupling the local oscillator input to an external connector.
- 17. A method of making a digital beamforming radar system as defined by claim 14, the method further comprising the step of disabling the at least one amplifier.
- 18. A method of making a digital beamforming radar system as defined by claim 14, wherein at least one of the plurality of low-noise block converters includes a custom made low-noise block converter including a local oscillator input.
- 19. A method of making a digital beamforming radar system as defined by claim 14, the method further comprising the step of providing a damping means internal to the low-noise block converter, the damping means being adapted for substantially suppressing oscillations within the low-noise block converter.
- 20. A method of making a digital beamforming radar system as defined by claim 14, wherein the low-noise block converter includes a filter circuit having a bandwidth, the method further comprising the step of modifying the bandwidth of the filter circuit to be compatible with the digital beamforming radar system.
- 21. A method of making a digital beamforming radar system as defined by claim 14, further comprising the step of making a transmitter.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Application No. 60/283,457, filed Apr. 12, 2001, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60283457 |
Apr 2001 |
US |