Claims
- 1. An integral marine vessel reversing and trim deflector apparatus, comprising:
a first deflector, having a degree of freedom allowing said first deflector to be moved into a water jet stream to deflect a first portion of a water jet stream so as to provide a thrust, a component of said thrust being directed in a backing direction; and a second deflector, coupled to said first deflector and moving in unison with said first deflector, such that the second deflector can be moved into said water jet stream so as to deflect a second portion of said water jet stream thereby providing a force, a component of said force being directed in a trim direction, wherein said force has substantially no component in said backing direction.
- 2. The deflector apparatus of claim 1, wherein the first deflector is a reversing bucket.
- 3. The deflector apparatus of claim 1, wherein the second deflector is a trim deflector.
- 4. The deflector apparatus of claim 1, wherein the second deflector comprises a substantially planar surface that deflects the second portion of the water jet stream.
- 5. The deflector apparatus of claim 1, further comprising a pivot that provides the degree of freedom for movement of the apparatus.
- 6. The deflector apparatus of claim 1, wherein said first and second deflectors form a unitary integral part.
- 7. The deflector apparatus of claim 1, wherein said second deflector has a substantially U-shaped profile.
- 8. The deflector apparatus of claim 1, wherein the second deflector is coupled to the first deflector by an articulated coupling that allows for motion of the second deflector with respect to the first deflector in at least one degree of freedom.
- 9. The deflector apparatus of claim 1, wherein said degree of freedom comprises angular positions about an axis and said degree of freedom allows for a first angular position about said axis and a second angular position about said axis.
- 10. The deflector apparatus of claim 9, wherein said deflector apparatus is configured so that it cannot be in both said first angular position and said second angular position simultaneously.
- 11. The deflector apparatus of claim 1, wherein the first and second deflectors are arranged with respect to one another so that they cannot both be placed in said water jet stream simultaneously.
- 12. A device for controlling thrust in a marine vessel, comprising:
a deflector apparatus having at least two deflector surfaces:
a first deflector surface that deflects a first portion of a water jet stream to provide a backing thrust when the deflector apparatus is in a first position; and a second deflector surface that deflects a second portion of a water jet stream to provide a trim force when the deflector apparatus is in a second position; wherein said deflector apparatus is configured so that it cannot be in both said first and said second positions simultaneously.
- 13. The device of claim 12, wherein the deflector apparatus comprises an integral unit that includes the first and second deflector surfaces.
- 14. The device of claim 12, wherein the deflector apparatus comprises at least two components, a first component that includes the first deflector surface and a second component that includes the second deflector surface, said first and second components being coupled to one another.
- 15. The deflector apparatus of claim 12, further comprising a pivot that provides at least one degree of freedom for movement of the deflector apparatus.
- 16. The device of claim 15, wherein the pivot of the deflector apparatus provides a degree of freedom about an axis substantially perpendicular to a direction of the water jet stream.
- 17. The device of claim 12, wherein the first position is a first angular position of the deflector apparatus about a pivot, and the second position is a second angular position of the deflector apparatus about the pivot.
- 18. The device of claim 15, wherein the backing thrust and the trim force are substantially perpendicular.
- 19. A method for generating a backing thrust and a trim force for use in a marine vessel control apparatus, comprising:
providing a first deflector that in a first position deflects a first portion of a water jet stream in a first direction to provide said backing thrust; and providing a second deflector, coupled to said first deflector and moving in unison with said first deflector, that in a second position deflects a second portion of said water jet stream in a second direction to provide said trim force; wherein providing said first deflector and said second deflector comprise providing the deflectors so that said backing thrust and said trim force are provided substantially perpendicular to one another.
- 20. The method of claim 19, further comprising rotating said first and second deflectors about a common axis to place the first and the second deflectors in the first and the second positions.
- 21. The method of claim 19, further comprising providing a water jet stream and wherein the acts of rotating said first and second deflectors comprises rotating said first and second deflectors into the water jet stream.
- 22. The method of claim 21, further comprising adjusting a magnitude of the trim force by adjusting an amount by which said second deflector deflects said water jet stream.
- 23. The method of claim 19, wherein providing said first deflector and said second deflector comprise providing said second deflector as a U-shaped deflector affixed to said first deflector.
- 24. The method of claim 19, wherein coupling said second deflector to said first deflector comprises coupling with an articulated coupling that provides for movement of said second deflector with respect to said first deflector.
- 25. The method of claim 19, wherein providing said first deflector and said second deflector comprise coupling said second deflector to said first deflector so that the first and second deflectors can not be moved into said water jet stream simultaneously.
- 26. A method for providing a reversing and trimming deflector apparatus, comprising:
providing a reversing deflector arranged to rotate about a common axis; coupling a trim deflector to the reversing deflector such that the trim deflector and the reversing deflector rotate in unison about said common axis so that each of said reversing deflector and trim deflector deflects a water jet stream substantially exclusively of the other, thereby providing a respective backing thrust and trimming force.
- 27. The method of claim 26, wherein rotating said reversing and trim deflectors comprises rotating said reversing and trim deflectors in unison about the common axis along an arc, a first end of the arc positioning the reversing deflector in said water jet stream and a second end of the arc positioning the trim deflector in said water jet stream.
- 28. The method of claim 27, wherein rotating the trim deflector and reversing deflector further comprises rotating said reversing and trim deflectors in unison about the common axis along the arc to an intermediate position between said first and second ends that provides for said water jet stream to pass between said reversing deflector and said trim deflector substantially unimpeded.
- 29. The method of claim 26, further comprising adjusting a magnitude of said trimming force by adjusting an amount by which said trim deflector deflects said water jet stream.
- 30. The method of claim 26, wherein coupling said trim deflector to said reversing deflector comprises providing said trim deflector as a U-shaped deflector affixed to said reversing deflector.
- 31. The method of claim 26, wherein coupling said trim deflector to said reversing deflector comprises coupling the trim deflector to the reversing deflector with an articulated coupling that provides for movement of said trim deflector with respect to said reversing deflector.
- 32. A trim deflector apparatus, comprising:
a first deflector surface that has a first degree of freedom such as to provide a first trimming force that includes substantially no backing component; and a second deflector surface that has a second degree of freedom such as to provide a second trimming force that includes substantially no backing component; wherein said first and second deflectors can be moved independently of one another; and wherein said first and second deflectors can also be moved into respective cooperating positions such that they cooperatively provide a thrust having a backing component.
- 33. The apparatus of claim 32, wherein said first and second deflector surfaces are disposed within an articulated water jet steering nozzle.
- 34. The apparatus of claim 32, wherein said first and second deflector surfaces are coupled to a mounting device disposed outside a water jet steering nozzle.
- 35. An electro-mechanical control apparatus for controlling a parameter of a marine vessel propulsion system, comprising:
a control lever handle having a first degree of freedom corresponding to a value of said parameter; a connecting device, having at least two degrees of freedom, coupled to said control lever handle, and that moves in response to movement of said control lever handle, wherein said connecting device is articulated to provide conversion of motion from the first degree of freedom to motion in the second degree of freedom; and an electro-mechanical transducer, coupled to said connecting device, that provides an electrical output signal corresponding to a position of said connecting device; wherein said electrical output signal corresponds to the value of said parameter.
- 36. The apparatus of claim 35, wherein the connecting device is a linear linkage having a pivoting connector on at least one end.
- 37. The apparatus of claim 35, wherein the electro-mechanical transducer comprises a rotary motion transducer that rotates about a transducer rotation axis.
- 38. The apparatus of claim 37, wherein the rotary motion transducer detects motion of the connecting device over a range of motion being less than or equal to 180 degrees.
- 39. The apparatus of claim 35, wherein the electro-mechanical transducer comprises a linear motion transducer.
- 40. The apparatus of claim 35, further comprising a second articulated linkage that transmits movement from said connecting device to said transducer.
- 41. The apparatus of claim 35, further comprising a resistance element that resists motion of said control lever handle.
- 42. The apparatus of claim 35, further comprising a resistance element that resists motion of said connecting device.
- 43. The apparatus of claim 35, further comprising a first clevis coupling the connecting device and the control lever handle at a first end of the connecting device and a second clevis coupling the connecting device and the transducer at a second end of said connecting device.
- 44. A method for converting a marine vessel mechanical control lever assembly into an electro-mechanical control lever assembly, comprising:
providing an electro-mechanical transducer adapted for converting a position of a connecting device to an electrical output signal; coupling a control lever handle and said electro-mechanical transducer via said connecting device, wherein said coupling comprises transferring a first motion in a first degree of freedom into a corresponding second motion in a second degree of freedom; and measuring a movement of said control lever handle with said electro-mechanical transducer and providing a corresponding electrical control signal.
- 45. The method of claim 44, wherein the act of providing the electro-mechanical transducer comprises providing a rotary motion transducer that rotates about a transducer rotation axis.
- 46. The apparatus of claim 44, wherein the act of providing the electro-mechanical transducer comprises providing a linear motion transducer.
- 47. The apparatus of claim 44, further comprising providing a resistance element that resists motion of said control lever handle.
- 48. The apparatus of claim 44, further comprising providing a resistance element that resists motion of said connecting device.
- 49. A load-sensing hydraulic circuit that reduces pressure transients in marine vessel control systems, comprising:
a hydraulic pressure source that provides a hydraulic system pressure and that provides a flow of hydraulic fluid; a first hydraulic load actuator, receiving a first portion of said hydraulic fluid; a control apparatus, coupled to said first hydraulic load actuator, that controls said hydraulic load actuator; a second hydraulic load actuator, receiving a second portion of said hydraulic fluid and affecting a hydraulic load pressure; a multi-port hydraulic valve, having a first port coupled to a high pressure side of said hydraulic pressure source, a second port coupled to said second hydraulic load actuator, and a third port coupled to said control apparatus; and a check valve, disposed between said third port and said control apparatus, that allows flow of said hydraulic fluid from said third port to said control apparatus.
- 50. The circuit of claim 49, wherein said multi-port hydraulic valve comprises a vented relief valve having a pilot valve coupled to said third port.
- 51. The circuit of claim 50, wherein said vented relief valve comprises an externally-drained vented relief valve having a fourth port coupled to a low-pressure point of said circuit.
- 52. The circuit of claim 49, wherein the control apparatus comprises a helm control device.
- 53. The circuit of claim 49, wherein the second actuator comprises a reversing deflector actuator.
- 54. The circuit of claim 49, wherein the second actuator comprises a trim deflector actuator.
- 55. The circuit of claim 49, wherein the third port is coupled to a load-sensing line connecting said control apparatus and said multi-port hydraulic valve.
- 56. The circuit of claim 49, wherein the hydraulic pressure source comprises a constant flow pump.
- 57. The circuit of claim 49, further comprising a load-sensing network, connected between the second hydraulic load actuator and the multi-port hydraulic valve, that senses and transmits a maximum hydraulic pressure of the at least one hydraulic load.
- 58. The circuit of claim 57, wherein the load-sensing network comprises at least one shuttle valve arranged to pass a higher of two input pressures from two regions of the hydraulic circuit.
- 59. The circuit of claim 57, wherein the load-sensing network comprises at least one pair of back-to-back check valves arranged to pass a higher of two input pressures from two regions of the hydraulic circuit.
- 60. A method for reducing pressure transients from a first control device in a load-sensing marine vessel control system, comprising:
providing a supply of pressurized hydraulic fluid to a first hydraulic load actuator and to a hydraulic control circuit; sensing a maximum load pressure from the first hydraulic load actuator with a load-sensing network; controlling the at least one hydraulic load actuator with a control apparatus; and blocking a hydraulic pressure transient from travelling from said control apparatus to the hydraulic circuit.
- 61. The method of claim 60, wherein providing a supply of pressurized hydraulic fluid comprises pumping said hydraulic fluid with a constant-flow hydraulic pump.
- 62. The method of claim 60, wherein controlling the first hydraulic load actuator comprises modulating a multi-port hydraulic valve.
- 63. The method of claim 60, further comprising providing an externally-drained multi-port hydraulic valve to relieve excess hydraulic fluid to a low-pressure portion of the marine vessel control system.
- 64. The method of claim 60, wherein blocking said pressure transient comprises providing a check valve in a load-sensing line coupling the load-sensing network and the control apparatus.
RELATED APPLICATIONS
[0001] The present application claims priority, under 35 U.S.C. §119(e), to U.S. provisional patent application, serial No. 60/310,554, entitled “Integral Reversing and Trim Deflector,” which was filed on Aug. 6, 2001, and which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60310554 |
Aug 2001 |
US |