Claims
- 1. A temperature compensating control system for adjusting the volume of a chamber in an ammunition round which communicates with a projectile and contains a propellant having temperature dependent performance characteristics, said control system comprising:
- (a) a control tube housing;
- (b) a piston assembly slidably mounted relative to said housing for movement through a drive stroke and being drivingly coupled to a trailing end of the projectile; and
- (c) means responsive to the temperature of the ammunition round for adjusting the length of the drive stroke of said piston assembly in proportion to the temperature and thereby adjusting the position of the projectile and said volume of the chamber in proportion to the temperature of the ammunition round; and
- (d) means for stopping the piston in response to the temperature of the ammunition round at an adjusted position prior to firing the round.
- 2. A temperature compensating control system for adjusting the volume of a chamber in an ammunition round which communicates with a projectile and contains a propellant having temperature dependent performance characteristics, said control system comprising:
- (a) a control tube housing;
- (b) a piston assembly slidably mounted relative to said housing for movement through a drive stroke and being drivingly coupled to a trailing end of the projectile having a plurality of different stroke length defining stops formed on said piston assembly;
- (c) means responsive to the temperature of the ammunition round for adjusting the length of the drive stroke of said piston assembly in proportion to the temperature and thereby adjusting the position of the projectile and said volume of the chamber in proportion to the temperature of the ammunition round; and,
- (d) an armature movably mounted in said housing and having at least one abutment being alignable with one of said different stops for adjusting the stroke length of said piston assembly.
- 3. The control system of claim 2 wherein said piston stroke length adjusting means also includes an element responsive to temperature variation by changing its geometrical configuration to cause movement of said armature into alignment with a given one of said piston assembly stops for adjusting the stroke length of said piston assembly.
- 4. The control system of claim 3 wherein said temperature variation responsive element is a bimetallic strip.
- 5. The control system of claim 4 wherein said bimetallic strip has a spiral configuration, and is attached at one end to said housing and connected at an opposite end to said armature.
- 6. The control system of claim 4 wherein said bimetallic strip has a configuration for expansion or contraction in proportion to increase or decrease in the temperature of the ammunition round and thereby cause movement of said armature into alignment with different ones of said piston stops for increasing or decreasing the stroke length of said piston assembly and thereby compensating for increase or decrease in temperature.
- 7. The control system of claim 2 wherein:
- said piston assembly includes a piston being slidably mounted to the exterior of said housing;
- said stops are formed on the interior of said piston; and
- said armature is rotatably mounted to said housing with said abutment of said armature extending radially outward through a slot in said housing and beyond the exterior thereof into alignment with one of said stops.
- 8. The control system of claim 2 wherein:
- said piston assembly includes a piston being slidably mounted to the interior of said housing;
- said stops are formed on the exterior of said piston; and
- said armature is rotatably mounted to said housing with said abutment of said armature extending radially inward into the interior of said housing and into alignment with one of said stops.
- 9. A temperature compensating control system for adjusting the volume of a chamber in an ammunition round which communicates with a projectile and contains a propellant having temperature dependent performance characteristics, said control system comprising:
- (a) a control tube housing;
- (b) a piston assembly having a piston slidably mounted relative to said housing for movement through a drive stroke and being drivingly coupled to a trailing end of the projecting;
- (c) energy absorbing means connected to the projectile and mounted to said piston to move therewith for transmitting the driving energy of said piston to the projectile to move the same and for absorbing energy to stop movement of the projectile at the end of said drive stroke of said piston wherein the energy absorbing means includes:
- a hollow extension sleeve connected at a leading end of said piston and projecting forwardly therefrom; and
- a connector rod releasably connected at a leading end to the projectile and slidably mounted at a trailing end in said sleeve and in abutting relation with said piston to move therewith through its stroke; and
- (d) means responsive to the temperature of the ammunition round for adjusting the length of the drive stroke of said piston assembly in proportion to the temperature and thereby adjusting the position of the projectile and said volume of the chamber in proportion to the temperature of the ammunition round.
- 10. The control system of claim 9 wherein:
- said leading end of said piston has a gas-venting orifice defined therethrough in communication with the interior of said control tube housing; and
- said sleeve communicates with said piston orifice and has a plurality of gas-venting orifices defined therein adjacent said leading end of said piston.
- 11. The control system of claim 10 wherein said connector rod at its trailing end is releasably connected to said leading end of said piston so as to close said gas-venting orifices in said piston leading end and said sleeve, said connector at its leading end being detachably coupled to the trailing end of the projectile such that inertia of the projectile as caused by piston movement, in turn, causes said connector to release from said piston leading end and open said orifices to allow venting of secondary propellantgenerated gases from within said control tube housing to the propellant in the chamber for igniting the same.
- 12. The control system of claim 9 wherein:
- said piston is in the form of a hollow cylinder mounted within the interior of said control tube for slidable movement therealong; and
- said energy absorbing means is a connector rod releasably connected at a leading end to the projectile and slidably mounted at a trailing end in said piston and in abutting relation therewith to move with said piston through its stroke.
- 13. In an ammunition round having a chamber, a projectile which communicates with said chamber and a propellant contained in said chamber having temperature dependent performance characteristics, a temperature compensating control system for adjusting the volume of said chamber, comprising:
- (a) a control tube housing disposed in said chamber;
- (b) a piston assembly including a piston slidably mounted to the housing for movement relative thereto through a drive stroke, said piston assembly being drivingly coupled to a trailing end of said projectile, said piston having a plurality of pairs of different stroke length defining elements formed thereon; and
- (c) means responsive to the temperature of said ammunition round for adjusting the length of the drive stroke of said piston assembly in proportion to the temperature and thereby adjusting the position of said projectile and said volume of said chamber in proportion to the temperature of said ammunition round.
- 14. The control system of claim 13 wherein said piston stroke length adjusting means includes an armature pivotally mounted to said housing and having a pair of abutments being alignable with one of said pairs of different stroke length defining elements for adjusting the stroke length of said piston assembly.
- 15. The control system of claim 14 wherein said piston stroke length adjusting means also includes an element responsive to temperature variation by changing its geometrical configuration to cause pivotal movement of said armature to dispose its abutments in alignment with a given one of said paris of different stroke length defining elements for adjusting the stroke length of said piston assembly.
- 16. The control system of claim 15 wherein said temperature variation responsive element is a bimetallic strip.
- 17. The control system of claim 16 wherein said bimetallic strip has a spiral configuration, and is attached at one end to said housing and connected at an opposite end to said armature.
- 18. The control system of claim 16 wherein said bimetallic strip has a configuration for expansion or contraction in proportion to increase or decrease in the temperature of the ammunition round and thereby cause movement of said armature to dispose its pair of abutments into alignment with different ones of said pairs of stroke length defining elements for increasing or decreasing the stroke length of said piston assembly and thereby compensating for increase or decrease in temperature.
- 19. The control system of claim 14 wherein:
- said piston of said piston assembly is slidably mounted to the exterior of said housing;
- said pairs of different stroke length defining elements are pairs of stops in the form of recessed shoulders formed on the interior of said piston; and
- said armature is rotatably mounted to said housing with said abutments of said armature extending radially outward through a slot in said housing and beyond the exterior thereof into alignment with one of said pairs of stops.
- 20. The control system of claim 14 wherein:
- said piston of said piston assembly is slidably mounted to the interior of said housing;
- said pairs of different stroke length defining elements are pairs of stops in the form of recessed shoulders formed on the exterior of said piston; and
- said armature is rotatably mounted to said housing with said abutments of said armature extending radially inward into the interior of said housing and into alignment with one of said pairs of stops.
- 21. The control system of claim 13 wherein said piston assembly further includes means connected to the projectile and mounted to said piston to move therewith for transmitting the driving energy of said piston to the projectile to move the same and for absorbing energy to stop movement of the projectile at the end of said drive stroke of said piston.
- 22. The control system of claim 21 wherein said energy absorbing means includes:
- a hollow extension sleeve connected at a leading end of said piston and projecting forwardly therefrom; and
- a connector rod releasably connected at a leading end to the projectile and slidably mounted at a trailing end in said sleeve and in abutting relation with said piston to move therewith through its stroke.
- 23. The control system of claim 21 wherein:
- said piston is in the form of a hollow cylinder mounted within the interior of said control tube for slidable movement therealong; and
- said energy absorbing means is a connector rod releasably connected at a leading end to the projectile and slidably mounted at a trailing end in said piston and in abutting relation therewith to move with said piston through its stroke.
CROSS REFERENCE TO RELATED APPLICATION
Reference is hereby made to the following copending U.S. patent application dealing with related subject matter and assigned to the same assignee of the present invention:
"Temperature Compensating Variable Stroke Projectile Positioning System" by Calvin T. Candland, assigned U.S. Ser. No. 264,921 and filed Oct. 31, 1989.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
204539 |
Dec 1986 |
EPX |