Claims
- 1. A weapon system comprising:
- a projectile having a fuze,
- said fuze including
- data link means including an electromagnetic wave signal receiving and detecting means and an output means for providing any one of a plurality of different output mode signals;
- timing means having output means for providing an output timing signal at the end of a first predetermined period of time of flight of said projectile, and coupled to said data link means to normally disable said data link means, and upon provision of said output timing signal, to enable, for a second predetermined period of time, said data link means to receive and detect electromagnetic wave signals.
- 2. A weapon system comprising:
- a projectile having a fuze,
- said fuze including
- timing means having output means for providing an output timing signal at the end of a predetermined period of time of flight of said projectile;
- data link means having output means for providing any one of a plurality of different output mode signals;
- detonator function means for providing any one of a plurality of different detonator mode functions;
- said detonator function means being coupled to said timing means for receiving said timing signal, and to said data link means for receiving said mode signals, and providing a selected one of said detonator mode functions in response to said timing signal and the particular mode signal in conjunction;
- transmitter means for communicating with said data link means of said fuze during the course of flight of said projectile to cause said data link output means to provide any one of said mode signals; and
- mode select means coupled to said transmitter means for causing said transmitter means to cause said data link output means to provide a particular mode signal.
- 3. A weapon system according to claim 2, wherein
- said timing means is coupled to said data link means to normally disable said data link means, and after a predetermined period of flight, to enable, for a predetermined period, said data link means to receive communication from said transmitter means.
- 4. A weapon system according to claim 3, wherein:
- said timing means includes
- a local oscillator, and
- a counter,
- said oscillator coupled to and providing pulses to said counter,
- said counter providing said output timing signal upon accumulating a predetermined count.
- 5. A weapon system according to claim 4, wherein:
- said fuze further includes
- a power source, coupled to said timing means, said data link means, and said detonator function means, which is enabled upon set-back of said projectile, and which upon enablement establishes zero time for said timing means.
- 6. a weapon system according to claim 3, wherein:
- said data link means includes
- a radio receiver for receiving signals from said transmitter means,
- a signal storage means having an input means coupled to said receiver for receiving and storing signals from said receiver and having an output means for providing output signals in response to said stored signals.
- 7. A weapon system according to claim 3, wherein:
- said timing means includes
- a local oscillator, and
- a counter,
- said oscillator coupled to and providing pulses to said counter,
- said counter providing said output timing signal upon accumulating a predetermined count,
- said data link means includes
- a radio receiver for receiving signals from said transmitter means,
- a signal storage means having an input means coupled to said receiver for receiving and storing signals from said receiver and having an output means for providing output signals in response to said stored signals,
- said receiver also coupled to said counter for providing signals which are accumulated as counts by said counter.
- 8. A weapon system according to claim 7, wherein:
- said transmitted means provides repeated code groups of wide and narrow pulses.
- 9. A weapon system according to claim 8, wherein:
- said data link storage means includes
- a shift register,
- a control means coupled to said input means and said output means of said shift register for detecting the condition wherein said shift register has stored a code group of pulses from said receiver, and, in response thereto, halting the receipt of additional pulses by said shift register.
- 10. For use in an activatable system for controlling the mode of detonation, of a projectile fuze, which system, when operational, comprises a transmitter subsystem, and a therewith cooperating receiver subsystem which is carried aboard the projectile fuze:
- such a said transmitter subsystem providing serial pulse modulation on a modulation-carrier; and
- such a said receiver subsystem, which comprises, when operational, the following activatable organizational blocks:
- receiver and detector means for receiving and demodulating the serial pulse modulation imposed in the transmitter subsystem on said modulation-carrier, the pulse modulation containing in coded form, one of plural available detonation modes, to provide a demodulated signal in the form of a serial pulse signal train;
- storage means which stores in parallel form signals which correspond respectively to certain ones of the demodulated serial pulses; and
- switching means which, responsive to the presence of certain coded combinations of the stored signals, enables detonation of the projectile in that one of the plural detonation modes, which is contained in the coding of the modulation.
- 11. A receiver subsystem as claimed in claim 10, in which, when it is active, the demodulated serial pulse train comprises, a repetitive pulse succession consisting of: a leading marker pulse having a first predeterminable pulse width with significance of binary one, followed by one or more follower pulses each having a second predeterminable pulse width with significance of binary zero, the number of follower pulses constituting the mode-coding, and wherein the storage means stores those signals, in parallel and binary form which are contained in at least one such succession.
- 12. A receiver subsystem as claimed in claim 11, in which, when it is active, the storage means has a capacity which is greater than the total number of pulses contained in the succession, whereby the storage means may store plural binary ones.
- 13. A receiver subsystem as claimed in claim 12, in which, when it is active, the storage means is essentially of the through-passing type, such that the binary signals intended to be stored, are apt to pass serially through and out of the storage means, and including means responsive to the entry of a binary one into a higher order stage of the storage means, for locking in, in the respective storage means stages, the contents of the storage means, and for preventing further entry into, and emergence from, the storage means, of further binary signals, whereby to fix in the storage means, in coded binary and parallel form, the desired one of plural modes, and to fix the time base for that one mode.
- 14. A receiver subsystem as claimed in claim 13, in which, when it is active, the switching means comprises individual decoding means for the several detonation modes, each which decoding means comprises logic circuitry, which responsive to the locked-in presence of its respective mode-code-combination in the storage means, enables fuze detonation in the corresponding mode.
- 15. A receiver subsystem as claimed in claim 14, in which, when it is active, each individual decoding means responds solely to its respective binary 1s, and not binary 0s, which are locked-in in the storage means.
- 16. A receiver subsystem as claimed in claim 14, including in the activated receiver subsystem a local timing signal generator, and a counter, in which in at least one mode, termed Airburst Mode, the counter is stepped by both signals from the local timing generator, and by demodulated serial pulses, the Airburst Mode decoding logic circuitry, emitting a "detonation-now" signal when the counter attains a predetermined count and lock-in has occurred.
- 17. A receiver subsystem as claimed in claim 10 in which the storage means is a shift register.
- 18. A transmitter subsystem as claimed in claim 11 which comprises, when operational, the following activatable organizational blocks:
- a transmitter-timing-signal-generator adapted to generate a train of substantially evenly spaced pulses, each having the second predeterminable pulse width of binary zero significance,
- a divider, which is settable to any one of plural, detonation-mode-signifying divisor-numbers, adapted to divide by such selected divisor or ratio number the train of evenly spaced pulses, and producing a divided-down-in frequency train of substantially evenly spaced pulses, each divided down pulse: (a) having the first predeterminable pulse width of binary 1 significance, (b) and being essentially in time-coincidence with a respective one of the binary-zero-significant substantially evenly spaced pulses, and
- mixing means for combining the binary-one and binary-zero significant pulse trains, such that a binary-one pulse overrides, and substitutes for, a therewith time-coincident binary-zero significant pulse, thereby providing a composite modulation pulse train and a transmitter-modulator for modulating the transmitter-modulation-carrier with the pulse train produced by the mixing means.
- 19. A transmitter subsystem as claimed in claim 18, in which, when it is active, the timing signal generator's pulses are of relatively narrower width, the divider's output pulses are of relatively wider width, and the mixing means is an OR-gate, whereby the leading marker pulse of binary 1 significance, is of relatively wider width.
- 20. A transmitter subsystem as claimed in claim 18, in which, when it is active, the timing signal generator comprises a basic, higher clock-frequency generating source, and coupled thereto, a plurality of ratio-number-switches settable to select any one of plural available submultiples, or multiples of such submultiples, of pulses from the higher clock-frequency generating source, thereby to produce the train of substantially evenly spaced pulses of binary zero significance, the setting or re-setting of the ratio-number-switches being effective to control the time-base of the projectile fuze.
BACKGROUND OF THE INVENTION
This invention relates generally to fuze actuating systems, and especially to systems having an inflight variable range adjustment. This invention was made during the course of a contract with the U.S. Army.
US Referenced Citations (8)