Claims
- 1. A system for remotely-controlling a device, said system comprising:
a pressurized fluid reservoir; a main control valve operatively connected to said reservoir; a hydraulic pilot operatively connected to a source of pressurized fluid and to said main control valve, wherein said hydraulic pilot comprises a first fluid path and a second fluid path, wherein a first squib-actuated valve is located in said first fluid path and a second squib-actuated valve is located in said second fluid path, wherein said first fluid path connects to said main control valve and can receive pressurized fluid from said source of pressurized fluid, wherein said second fluid path connects to said main control valve and can direct liquid into a fluid sump, wherein when said first and second squib-actuated valves are open, pressurized fluid from said first fluid path can apply pressure in a first direction to a movable portion of said control valve while fluid can be displaced from said control valve and flow into said second fluid path; an electrically-powered controller, wherein said controller is operatively connected to a receiver capable of receiving a signal transmitted to said receiver from a remote location, wherein said controller is electrically-connected to a first squib that forms a part of said first squib-actuated valve and to a second squib that forms a part of the second squib-actuated valve; and a device operatively connected to said main control valve, wherein said device is actuated by a flow of fluid, wherein when said receiver receives a predetermined signal, the controller will cause the detonation of said first and second squibs and thereby open said first and second squib-actuated valves, thereby causing the movable portion of said main control valve to move in a first direction to thereby enable fluid to flow from said reservoir to said device and cause a movable portion of said device to move.
- 2. The system of claim 1 wherein said first fluid path also includes a piston accumulator located between the first squib-actuated valve and the control valve, wherein when said first squib-actuated valve is initially opened by said controller, fluid will then flow into said piston accumulator and push a piston of said accumulator a predetermined distance, whereby once said piston has moved said distance, the piston will then stop and no further fluid will be able to flow into said first fluid path.
- 3. The system of claim 1 wherein said hydraulic pilot also includes a third fluid path and a fourth fluid path, wherein a third squib-actuated valve is located in said third fluid path and a fourth squib-actuated valve is located in said fourth fluid path, wherein said third fluid path connects to said main control valve and can receive pressurized fluid from said source of pressurized fluid, wherein said fourth fluid path connects to said main control valve and can direct liquid into a fluid sump, wherein when said third and fourth squib-actuated valves are open, pressurized fluid from said third fluid path can apply pressure to a movable portion of said control valve in a second direction opposite to said first direction while fluid can be displaced from said control valve and flow into said fourth fluid path; and
wherein said controller is electrically-connected to a third squib that forms a part of said third squib-actuated valve and to a fourth squib that forms a part of the fourth squib-actuated valve.
- 4. The system of claim 3 wherein said hydraulic pilot also comprises a fifth fluid path identical to said first fluid path, a sixth fluid path identical to said second fluid path, a seventh fluid path identical to said third fluid path, and an eighth fluid path identical to said fourth fluid path, wherein a fifth squib-actuated valve is located in said fifth fluid path, wherein a sixth squib-actuated valve is located in said sixth fluid path, wherein a seventh squib-actuated valve is located in said seventh fluid path, and wherein an eighth squib-actuated valve is located in said eighth fluid path; and
wherein said controller is electrically-connected to squibs that form a part of squib-actuated valves in each of said fifth through eighth fluid paths, and wherein an operator can cause four separate movements of said movable portion of said device by causing the controller to fire certain of the squibs in the hydraulic pilot.
- 5. The system of claim 1 wherein said device operatively connected to said main control valve is a hydraulic actuator.
- 6. The system of claim 5 further comprising a sensor and a transmitter, wherein said sensor and transmitter are both electrically-connected to said controller, wherein said sensor is operatively connected to said actuator and is capable of relaying information to said controller that indicates the position of a portion of the actuator, and wherein said controller can relay said information to a remote location via said transmitter.
- 7. The system of claim 1 wherein the fluid reservoir is the source of pressurized fluid to which the hydraulic pilot is operatively-connected.
- 8. The system of claim 1 wherein said first flow path also includes a one-way valve that only allows fluid flow in a direction leading to the main control valve.
- 9. The system of claim 3 wherein each of the first and third flow paths also includes a one-way valve that only allows fluid flow in a direction leading to the main control valve.
- 10. The system of claim 4 wherein the fifth flow path joins the first flow path at a location between the first flow path's one-way valve and the main control valve.
- 11. A system for remotely-controlling a device, said system comprising:
a pressurized fluid reservoir; a main control valve operatively connected to said reservoir; a hydraulic pilot operatively connected to a source of pressurized fluid and to said main control valve, wherein said hydraulic pilot comprises a first fluid path and a second fluid path, wherein each of said fluid paths includes a one-shot unit that comprises a squib-actuated valve and a piston accumulator, wherein said first fluid path connects to said main control valve and can receive pressurized fluid from said source of pressurized fluid, wherein said second fluid path connects to said main control valve and can direct liquid into a fluid sump, wherein when said squib-actuated valves are open, fluid will flow into the piston accumulator in the first fluid path and push a piston of said accumulator a predetermined distance, whereby once said piston has moved said distance, the piston will then stop and no further fluid will be able to flow into said first fluid path, and wherein movement of said piston will cause fluid from said first fluid path to flow through a one-way valve in said path and then apply pressure in a first direction to a movable portion of said control valve while fluid can be displaced from said control valve and flow into said second fluid path; an electrically-powered controller, wherein said controller is operatively connected to a receiver capable of receiving a signal transmitted to said receiver from a remote location, wherein said controller is electrically-connected to a squib in each of said squib-actuated valves; and a device operatively connected to said main control valve, wherein said device is actuated by a flow of fluid, wherein when said receiver receives a predetermined signal, the controller will cause the detonation of said squibs and thereby open said squib-actuated valves, thereby causing the movable portion of said main control valve to move in a first direction to thereby enable fluid to flow from said reservoir to said device and cause a movable portion of said device to move.
Parent Case Info
[0001] This is a Continuation of application Ser. No. 09/505,036 filed Feb. 16, 2000.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09505036 |
Feb 2000 |
US |
Child |
09939912 |
Aug 2001 |
US |