Claims
- 1. Apparatus for converting EM pulses to higher power amplitude and shorter duration, comprising:
- first and second four-port coupler means, each having first and second input ports and first and second output ports, for communicating EM power between said input ports and said output ports as follows:
- if the input ports have respective power inputs of equal amplitude and phase, the combined power exits the first output port only,
- if the input ports have respective power inputs of equal amplitude and opposite phase, the combined power exits the second output port only, and
- any power exiting either of the output ports has the same phase as the power at the first input port;
- said second four-port coupler means having its second output port coupled to said second input port of said first four-port cooupler means;
- a first delay means, coupled between said first output port of said first four-port coupler means and an output terminal, for delaying power exiting said first output port of said first four-port coupler means by one time unit;
- a second delay means, coupled between said first output port of said second four-port coupler means and said first input port of said first four-port coupler means, for delaying power exiting said first output port of said second four-port coupler means by two time units; and
- means for supplying respective first and second simultaneous EM pulses to said first and second input ports of said second four-port coupler means, with each of said EM pulses having an amplitude of one-quarter power unit and a duration of four time units;
- said means for supplying including associated means for impressing respective phase codings on said first and second EM pulses before supplying said EM pulses to said second four-port coupler means so that
- said first EM pulses has a first phase coding during a first one-unit interval, a second phase coding during a second one-unit interval, said first phase coding during a third one-unit interval, and a third phase coding opposite to said second phase coding during a fourth one-unit interval, and
- said second EM pulse has said first phase coding during said first one-unit interval, said second phase coding during said second one-unit interval, a fourth phase coding opposite to said first phase coding during said third one-unit interval, and said second phase coding during said fourth one-unit interval;
- whereupon the EM power exiting said first delay means has an amplitude of one power unit, a duration of one time unit, and said first phase coding, while the EM power exiting said second output port of said first four-port coupler means has an amplitude to one power unit, a duration of one time unit, and said second phase coding.
- 2. The apparatus of claim 1 wherein said second phase coding is the same as said first phase coding.
- 3. The apparatus of claim 1 wherein the phase coding during each one-unit interval is constant.
- 4. The apparatus of claim 1, and further comprising:
- means, associated with said means for supplying, for amplifying said first and second EM pulses.
- 5. Apparatus for converting EM pulses to higher power amplitude and shorter duration, comprising:
- a plurality of N pulse compression stages, each having a unique associated ordinal number in the range of 1 to N inclusive;
- for each value of i satisfying N.gtoreq.i.gtoreq.1, the i.sup.th stage comprises a delay element of 2.sup.i-1 units and a four-port coupler having first and second input ports and first and second output ports;
- each of the four-port couplers operating on power inputs at its input ports as follows
- if the input ports have respective power inputs of equal amplitude and phase, the combined power exits the first output port only,
- if the input ports have respective power inputs of equal amplitude and opposite phase, the combined power exits the second output port only, and
- any power exiting either of the output ports has the same phase as the power at the first input port;
- said stages being serially coupled in order of descending ordinal numbers as follows
- for each value of i satisfying N.gtoreq.i.gtoreq.1, the i.sup.th stage delay element is coupled between the first output port of the i.sup.th stage four-port coupler and the first input port of the (i-1).sup.th stage four-port coupler,
- the first stage delay element is coupled between the first output port of the first stage four-port coupler and a first output terminal,
- for each value of i satisfying N.gtoreq.i.gtoreq.1, the second output port of the i.sup.th stage four-port coupler is coupled to the second input port of the (i-1).sup.th stage four-port coupler, and
- the output port of the first stage four-port coupler is coupled to a second output terminal;
- means for supplying first and second substantially simultaneous input pulses to the first and second input ports, respectively, of the four-port coupler of the N.sup.th pulse compression stage, each of said first and second input pulses having a duration of 2.sup.N units and a power amplitude of 1/2.sup.N power unit; and
- means for impressing respective phase codings on said first and second input pulses before supplying said input pulses to the input ports of the four-port coupler of the Nth pulse compression stage such that each stage receives first and second pulses at the input ports of the four-port coupler for that stage;
- for each value of i satisfying N.gtoreq.i.gtoreq.1, the pulses that are received at the i.sup.th stage are 2.sup.i units in duration,
- for each value of i satisfying N.gtoreq.i.gtoreq.1, during the first half of the pulses that are received at the i.sup.th stage, the phase coding of the pulse that is input to the first input port is the same as the coding of the pulse that is input to the second input port, and during the second half of the pulses, the phase coding is opposite, and
- for each value of i satisfying N.gtoreq.i.gtoreq.1, during the first half of the pulses that are input to the i.sup.th stage, the phase coding of the pulse that is input to the first input port for the i.sup.th stage is the same as the phase coding of the pulse that is input to the first input port for the (i-1).sup.th stage, and during the second half of the pulses that are input to the i.sup.th stage, the phase coding of the pulse that is input to the first input port of the i.sup.th stage is the same as the phase coding of the pulse that is input to the second input port of the (i-1).sup.th stage.
- 6. A method of converting an EM pulse to higher power amplitude and shorter duration, comprising the steps of:
- splitting the pulse into two channels to provide two pulses that are substantially coextensive in time;
- impressing respective phase codings on the two pulses;
- thereafter subjecting the pulses in the two channels to N pulse compression steps, each pulse compression step comprising the substeps of
- combining the pulses in both channels and directing the combined power to the first channel during the first half of the pulse duration and to the second channel during the second half of the pulse duration, based on the phase codings impressed prior to said pulse compression steps, and
- delaying the pulse in the first channel by an amount equal to half the pulse duration so as to render the resultant pulses in both channels substantially coincident;
- whereupon each pulse compression step causes the power to be doubled and the pulse length to be halved, so that the result of said N binary multiplication steps is a power increase of 2.sup.N and a time compression of 2.sup.N.
- 7. The method of claim 6, and further comprising the step, carried out immediately before said subjecting steps, of amplifying the pulses in the two channels.
Government Interests
The invention described herein may be manufactured and used by or for the U.S. Government for governmental purposes on a royalty-free basis.
US Referenced Citations (4)
Non-Patent Literature Citations (2)
Entry |
Farkas, "A New Pulse Compression Method to Increase SLAC Energy", SLAC/AP-17 (Apr. 1984). |
Farkas, "System for Savings 6 MW of Slac RF System Line Power", Single Pass Collider Memo CN-238 (Jul. 1983). |