Claims
- 1. A watercraft, comprising:a hull having port and starboard sides; a propulsion system that generates a stream of pressurized water through a nozzle; at least one rudder positioned on either of the port or starboard sides, the at least one rudder being spaced a predetermined distance away from the respective port or starboard side; a helm operatively connected to the nozzle such that turning the helm turns the nozzle; and an actuator operatively connected to the at least one rudder.
- 2. The watercraft of claim 1, wherein the actuator is operatively connected to the helm such that the at least one rudder is operable from the helm.
- 3. The watercraft of claim 2, wherein the at least one rudder selectively moves between an operative and an inoperative position.
- 4. The watercraft of claim 3, wherein the at least one rudder has a forward edge and a rearward edge and pivots into the operative position about a point rearward of the forward edge.
- 5. The watercraft of claim 2, wherein the at least one rudder has an inner surface and an outer surface such that, when the at least one rudder is positioned in the water, water will flow on both the inner and outer surfaces.
- 6. The watercraft of claim 2, wherein the helm includes a steerable handle bar and the actuator is operatively connected to the handle bar so that turning the handle bar operates the at least one rudder.
- 7. The watercraft of claim 2, wherein said at least one rudder is positioned at a stern of said hull.
- 8. The watercraft of claim 2, further comprising a sponson protruding from each side of the hull, wherein the at least one rudder is located behind the sponson.
- 9. The watercraft of claim 2, wherein the hull forms a recess and the at least one rudder is located in the recess.
- 10. The watercraft of claim 2, wherein the at least one rudder has a forward edge and a rearward edge and is connected at a pivot point to the hull, wherein the pivot point is spaced rearwardly from the forward edge.
- 11. The watercraft of claim 10, wherein the at least one rudder selectively pivots inwardly and outwardly about the pivot point.
- 12. The watercraft of claim 11, wherein the at least one rudder is movable in a substantially vertical direction.
- 13. The watercraft of claim 12, wherein the actuator further comprises a piston connected between the at least one rudder and the hull for moving the at least one rudder in the substantially vertical direction.
- 14. The watercraft of claim 13, wherein said piston is mounted within a cylinder carried on a bracket, said bracket being mounted to said hull.
- 15. The watercraft of claim 14, wherein said cylinder is formed integrally with said bracket as one-piece.
- 16. The watercraft of claim 13, wherein regulation of fluid pressure within the piston by the actuator causes the at least one rudder to move in the substantially vertical direction.
- 17. The watercraft of claim 16, wherein the actuator further comprises a water line connected between the propulsion system and the piston to communicate water pressure from the propulsion system to the piston, wherein the propulsion system comprises a venturi, wherein the water pressure in the venturi causes pressurized water to flow in the water line and causes the at least one rudder to move in the substantially vertical direction.
- 18. The watercraft of claim 17, further comprising:a spring operatively connected to the at least one rudder to bias the rudder in a downward position, wherein the pressurized water acting on the piston compresses the spring to move the rudder upwardly.
- 19. The watercraft of claim 17, wherein said at least one rudder includes a port rudder on the port side of said hull and a starboard rudder on the starboard side of said hull;the aforesaid piston being a port piston connected between the port rudder and the hull and said actuator further comprising a starboard piston connected between the starboard rudder and the hull for moving the starboard rudder in the substantially vertical direction; said actuator further comprising a T-connector connected to said venturi, the aforesaid water line being a port water line connected between said port piston and said T-connector and said actuator further comprising a starboard water line connected between said starboard piston and said T-connector.
- 20. The watercraft of claim 19, further comprising a check valve movable between open and closed position responsive to water pressure in said venturi to control the flow of water to said pistons through said water lines.
- 21. The watercraft of claim 20, wherein said pistons are configured such that water flowing from said venturi to said pistons via said water lines raises said rudders to raised positions, said check valve being movable from said closed position thereof to said open position thereof responsive to water pressure in the venturi exceeding a predetermined threshold.
- 22. The watercraft of claim 19, wherein the predetermined distance is about 1.5 inches.
- 23. The watercraft of claim 12, further comprising:a spring operatively connected to the at least one rudder to bias the rudder in a downward position.
- 24. The watercraft of claim 12, further comprising:a spring operatively connected to the at least one rudder to bias the rudder in an upward position.
- 25. The watercraft of claim 12, wherein the at least one rudder has a lower leading edge that curves upwardly.
- 26. The watercraft of claim 12, wherein a lower trailing edge of the at least one rudder curves upwardly so that the flow of water over the at least one rudder is accelerated to create a low-pressure region that assists in moving the at least one rudder downwardly.
- 27. The watercraft of claim 12, further comprising a mini flap connected to the at least one rudder, wherein the mini flap is selectively rotatable to a predetermined angle with respect to an inner and outer surfaces of the at least one rudder to bias the at least one rudder downwardly when water flows thereacross.
- 28. The watercraft of claim 2, wherein the actuator is a linking element that operatively connects the at least one rudder to the nozzle.
- 29. The watercraft of claim 28, wherein the linking element is non-telescopic.
- 30. The watercraft of claim 29, further comprising a flexible member between the linking element and the nozzle.
- 31. The watercraft of claim 28, wherein the linking element extends inside the hull.
- 32. The watercraft of claim 31, further comprising a tube located inside the hull, wherein the tube surrounds the linking element to prevent water from entering the hull.
- 33. The watercraft of claim 28, wherein the linking element is positioned rearwardly of the hull.
- 34. The watercraft of claim 2, wherein the at least one rudder comprises first and second rudders.
- 35. The watercraft of claim 34, wherein the first and second rudders are angled inwardly toward the hull such that drag is increased when said rudders are in the water.
- 36. The watercraft of claim 2, wherein the actuator includes a first linking element that operatively connects the first rudder to the nozzle and a second linking element that operatively connects the second rudder to the nozzle.
- 37. The watercraft of claim 36, further comprising a U-shaped member connected to the nozzle, wherein the U-shaped member has a first arm and a second arm, and wherein the first linking element is connected to the first arm and the second linking element is connected to the second arm.
- 38. The watercraft of claim 37, further comprising a first flexible member and a second flexible member, wherein the first flexible member is connected between the first linking element and the first arm, and the second flexible member is connected between the second linking element and the second arm.
- 39. The watercraft of claim 36, wherein the actuator causes the first and second rudders have different turning angles.
- 40. The watercraft of claim 2, wherein the predetermined distance that the at least one rudder is spaced from the hull is between about 0.5 and 2 inches.
- 41. The watercraft of claim 2, wherein the at least one rudder has at least one fin.
- 42. The watercraft of claim 41, wherein the at least one rudder defines a plurality of openings that permit water to flow through the at least one rudder, the openings being separated from one another by the at least one fin.
- 43. The watercraft of claim 41, wherein the at least one fin is angled to bias the at least one rudder downwardly when water flows thereacross.
- 44. The watercraft of claim 43, wherein the at least one fin is angled between 5 and 25 degrees from horizontal.
- 45. The watercraft of claim 44, wherein the at least one fin is angled at 15 degrees from horizontal.
- 46. The watercraft of claim 41, wherein the at least one rudder has a forward edge with a raised nose, wherein the raised nose redirects water flowing over the rudder to prevent water from engaging the at least one fin when the at least one rudder is in an inoperative position.
- 47. The watercraft of claim 2, wherein the at least one rudder has an airfoil shaped horizontal cross-section.
- 48. The watercraft of claim 2, wherein the at least one rudder has a forward edge and a rearward edge and is bent into at least two segments between the forward and rearward edges.
- 49. The watercraft of claim 2, further comprising a motor coupled to the propulsion system and a clutch mounted to the propulsion system, wherein a portion of the clutch is in contact with water flowing through the propulsion system.
- 50. The watercraft of claim 49, wherein the clutch is operated by a predetermined water pressure in the propulsion system.
- 51. The watercraft of claim 50, wherein the clutch operatively connects the at least one rudder to the nozzle when water pressure is below the predetermined water pressure.
- 52. The watercraft of claim 51, wherein the predetermined water pressure is less than a water pressure that corresponds to a speed of the motor of about 2500 RPM.
- 53. The watercraft of claim 52, wherein the predetermined water pressure is between a water pressure that corresponds to a speed of the motor of about 3500-5500 RPM.
- 54. The watercraft of claim 53, wherein the predetermined water pressure is a water pressure that corresponds to a speed of the motor of about 4500 RPM.
- 55. A watercraft, comprising:a hull having port and starboard sides; a propulsion system that generates a stream of pressurized water through a nozzle; a helm operatively connected to the nozzle such that turning the helm turns the nozzle; and at least one flap connected to either the port or starboard side for pivotal movement about first and second non-parallel pivot axes, said at least one flap being arranged such that (a) pivotal movement of said flap about said first pivot axis pivots said flap outwardly from said hull to control steering of the watercraft and (b) pivotal movement of said flap about said second pivot axis moves said flap upwardly and downwardly to vary a depth at which said flap is positioned in water, wherein said at least one flap is operatively connected to the helm such that the at least one flap can be move about the first and second pivot axis via operation of the helm.
- 56. The watercraft of claim 55, wherein the first pivot axis is substantially horizontal, and the second pivot axis is substantially vertical.
- 57. The watercraft of claim 56, wherein the at least one flap is operatively connected to the nozzle.
- 58. The watercraft of claim 57, further comprising:a telescopic linking member connecting the at least one flap to the nozzle.
- 59. The watercraft of claim 58, such that turning the helm pivots the at least one flap about said first axis in the flow of water to turn the watercraft.
- 60. The watercraft of claim 58, further comprising:a ball joint rod connecting the flap to the hull.
- 61. The watercraft of claim 56, wherein the at least one flap comprises a hinge.
- 62. The watercraft of claim 61, wherein the hinge defines the second pivot axis.
- 63. The watercraft of claim 56, wherein the at least one flap comprises a first and second flap.
- 64. The watercraft of claim 63, wherein turning the helm moves only one of the first and second flaps in an operative position.
- 65. A rudder, comprising:a main body having a forward edge, a rearward edge, a first side, and a second side, said main body further having a pivotal mounting structure constructed to enable said rudder to be pivotally connected to a watercraft; and at least one tin projecting outwardly from at least one of the first and second sides, wherein said main body has a raised nose at the forward edge, the raised nose being configured to direct water flowing over the rudder away from the at least one fin when said main body is oriented in the direction of the water flow.
- 66. A rudder, comprising:a main body having a forward edge, a rearward edge, a first side, and a second side, said main body further having a pivotal mounting structure constructed to enable said rudder to be pivotally connected to a watercraft; and at least one fin projecting outwardly from at least one of the first and second sides, wherein the rudder defines a plurality of openings therethrough, said openings being separated from one another by the at least one fin.
- 67. The rudder of claim 65, wherein the at least one fin is oriented such that, when said pivotal mounting structure is pivotally connected to the watercraft, said at least one fin extends at a downward and forward angle from said main body.
- 68. The rudder of claim 67, wherein said angle is between 5 and 25 degrees from horizontal.
- 69. The rudder of claim 68, wherein said angle is 15 degrees from horizontal.
- 70. The rudder of claim 65, wherein said main body further includes a lower leading edge that curves upwardly.
- 71. The rudder of claim 65, further comprising a lower trailing edge that curves upwardly.
- 72. The rudder of claim 65, wherein said pivotal mounting structure is spaced rearwardly of the forward edge.
- 73. A rudder, comprising:a main body having a forward edge, a rearward edge, a first side, and a second side, said main body further having a pivotal mounting structure constructed to enable said rudder to be pivotally connected to a watercraft; and at least one fin projecting outwardly from at least one of the first and second sides, wherein said main body has an airfoil-shaped horizontal cross-section.
- 74. A rudder, comprising:a main body having a forward edge, a rearward edge, a first side, and a second side, said main body further having a pivotal mounting structure constructed to enable said rudder to be pivotally connected to a watercraft; and at least one fin projecting outwardly from at least one of the first and second sides, wherein said main body is bent into at least two segments between its forward and rearward edges.
- 75. A rudder, comprising:a main body having a forward edge, a rearward edge, a first side, and a second side, said main body further having a pivotal mounting structure constructed to enable said rudder to be pivotally connected to a watercraft; and a mini-flap rotatably mounted to said main body to enable an angle of said mini-flap to be adjusted with respect to said main body.
- 76. The rudder of claim 75, wherein a rotation axis of the mini-flap extends at a non-perpendicular angle with respect to a pivot axis defined by said pivotal mounting structure.
- 77. The rudder of claim 76, wherein the rotation axis is angled between 5 and 25 degrees from perpendicular with respect to said pivot axis.
- 78. The rudder of claim 77, wherein the rotation axis is angled at 15 degrees from perpendicular with respect to said pivot axis.
- 79. The rudder of claim 75, wherein said main body has a lower leading edge that curves upwardly.
- 80. The rudder of claim 75, wherein said main body has a lower trailing edge and the lower trailing edge curves upwardly.
- 81. The rudder of claim 75, wherein said pivotal mounting structure is spaced rearwardly of the forward edge.
- 82. A method of controlling a watercraft, comprising:operating an actuator; in response to operating the actuator, turning at least one rudder positioned a predetermined distance away from a port or starboard side of a hull of the watercraft; and directing a flow of water adjacent to the watercraft with the at least one rudder such that water flows between an inside surface of the respective rudder and the side of the hull and also flows over an outer surface of the rudder to affect steering of said watercraft.
- 83. The method of claim 82, wherein the actuator is operatively connected to a helm of the watercraft such that operating said actuator can be affected via said helm.
- 84. The method of claim 83, wherein a nozzle is operatively connected to the helm wherein actuating the helm turns the nozzle and the nozzle turns the at least one rudder.
- 85. The method of claim 82, wherein the at least one rudder comprises a first rudder on the starboard side of said hull and a second rudder on a port side of said hull.
- 86. The method of claim 85, wherein the first and second rudders are angled inwardly toward the hull such that drag is increased when said rudders are in the water.
- 87. The method of claim 86, wherein said actuator responsively turns the first rudder inwardly, and the second rudder outwardly.
- 88. The method of claim 82, further comprising lowering the rudder in water.
- 89. The method of claim 88, wherein the rudder comprises at least one fin angled such that water flowing over the fin lowers the rudder.
- 90. The method of claim 88, further comprising rotating a mini-flap of the rudder while turning the rudder such that water flowing against the mini-flap lowers the rudder.
- 91. The method of claim 88, further comprising raising the rudder out of water.
- 92. The method of claim 91, wherein water pressure from a propulsion system raises the rudder.
- 93. The method of claim 92, further comprising a spring biasing the rudder downwardly.
- 94. The method of claim 82, further comprising:lowering the rudder from a raised position into a lowered position in the water in response to water pressure in a propulsion system of the watercraft being below a predetermined level; and raising the rudder from said lowered position out of the water to said raised position in response to the water pressure in a propulsion system of the watercraft being above the predetermined level.
- 95. The method of claim 82, wherein said actuator comprises a clutch for operatively connecting said at least one rudder to said helm to enable turning of said helm to turn said rudder and wherein said method further comprises engaging said clutch to operatively connect said at least one rudder with said helm.
- 96. The method of claim 95, wherein the clutch is engaged in response to water pressure in a propulsion system of said watercraft being below a predetermined level.
- 97. The method of claim 96, further comprising disengaging the clutch to disconnect said at least one rudder from said helm in response to the water pressure in the propulsion system being above the predetermined level.
- 98. The method of claim 97, wherein the predetermined level is a water pressure corresponding to a motor speed of about 2500 RPM.
- 99. The method of claim 97, wherein the predetermined level is a water pressure corresponding to a motor speed between 3500 and 5500 RPM.
- 100. The method of claim 99, wherein the predetermined level is a water pressure corresponding to a motor speed of about 4500 RPM.
- 101. A kit for retrofitting a watercraft having a propulsion system that generates a stream of pressurized water through a nozzle and a helm operatively connected to the nozzle such that turning the helm turns the nozzle, said kit comprising:a rudder; a bracket constructed to be mounted to a port or starboard side of the hull, said bracket being further constructed to support said rudder in spaced relation away from the respective port or starboard side of the hull; and an actuator constructed and arranged to operatively connect the rudder to the helm so that the rudder is operable from the helm.
- 102. The kit of claim 101, wherein said actuator is a linking member constructed to be connected between the nozzle and the rudder.
- 103. The kit of claim 102, further comprising a tube to place around the linking member.
- 104. The kit of claim 102, further comprising a clutch constructed to selectively connect the nozzle to the rudder.
- 105. The kit of claim 101, wherein said rudder pivotally mounts to said bracket.
- 106. The kit of claim 101, wherein said rudder pivotally mounts to said bracket in spaced relation from a forward edge of said rudder.
- 107. The kit of claim 101, wherein the rudder comprises a mini-flap rotatably mounted thereto to enable an angle of said mini-flap to be adjusted.
- 108. The kit of claim 101, wherein the rudder comprises at least one fin projecting outwardly therefrom.
- 109. The kit of claim 101, wherein the actuator further comprises a piston connected to the at least one rudder, said piston being constructed and arranged to raise and lower the rudder.
- 110. The kit of claim 109, wherein said piston is mounted with a cylinder carried on said bracket.
- 111. The kit of claim 110, wherein said cylinder is formed integrally with said bracket as one-piece.
- 112. The kit of claim 109, wherein the actuator further comprises:a water line adapted for connection between said piston and a venturi of the watercraft propulsion system so as to enable water pressure in the venturi to flow in the waterline to raise or lower the piston.
- 113. The kit of claim 112, wherein said rudder and said bracket are a port rudder and a port bracket, respectively, and wherein the watercraft further comprises a starboard rudder and a starboard bracket;the aforesaid piston being a port piston adapted to be connected between the port rudder and the port side of the hull and said actuator further comprising a starboard piston adapted to be connected between the starboard rudder and the starboard side of the hull for moving the starboard rudder in the substantially vertical direction; said actuator further comprising a T-connector adapted to be connected to said venturi, the aforesaid water line being a port water line adapted to be connected between said port piston and said T-connector, said actuator further comprising a starboard water line adapted to be connected between said starboard piston and said T-connector.
- 114. The kit of claim 113, wherein said T-connector comprises a check valve movable between open and closed positions responsive to water pressure in said venturi to control the flow of water to said pistons through said water lines.
- 115. The kit of claim 114, wherein said pistons are configured such that water flowing from said venturi to said piston via said water lines raises said rudders to raised positions, said check valve being movable from said closed position thereof to said open position thereof responsive to water pressure in the venturi exceeding a predetermined threshold.
- 116. The kit of claim 101, wherein the actuator further comprises a U-shaped member constructed to be operatively connected between the nozzle and said rudder.
- 117. The kit of claim 101, wherein the actuator further comprises spring for biasing the at least one rudder downwardly.
- 118. The kit of claim 117, wherein the actuator further comprises a piston connected to the rudder for raising the piston against the biasing of said spring.
- 119. The kit of claim 118, wherein the actuator further comprises a water line adapted for connection between said piston and a venturi of the watercraft propulsion system so as to enable water pressure in the venturi to flow in the water line to raise the piston.
- 120. The kit of claim 101, wherein the actuator further comprises a flexible member connectable between the nozzle and the at least one rudder to prevent impact forces applied to the rudder from being transmitted to the nozzle.
- 121. A kit for retrofitting a watercraft having a propulsion system that generates a stream of pressurized water and a helm, said kit comprising:a nozzle constructed and arranged to be positioned adjacent the propulsion system and operatively connected to the helm such that said nozzle directs the stream of pressurized water and turning the helm turns the nozzle; a rudder; a bracket constructed to be mounted to a port or starboard side of the hull, said bracket being further constructed to support said rudder in spaced relation away from the respective port or starboard side of the hull; and a linking element constructed and arranged to operatively connect the rudder to the nozzle so that turning of the nozzle via said helm can affect movement of the rudder.
- 122. The kit of claim of 121, further comprising a tube adapted to be placed around the linking member.
- 123. The kit of claim 121, further comprising a clutch constructed to selectively connect the nozzle to the rudder.
- 124. The kit of claim 123, wherein the rudder pivotally mounts to said bracket in spaced relation from a forward edge of said rudder.
- 125. The kit of claim 121, wherein the rudder comprises a mini-flap rotatably mounted thereto to enable an angle of said mini-flap to be adjusted.
- 126. The kit of claim 121, wherein the rudder comprises at least one fin projecting outwardly therefrom.
- 127. The kit of claim 121, wherein said actuator further comprises a piston connected to the rudder, said piston being constructed and arranged to raise and lower the rudder.
- 128. The kit of claim 127, wherein said piston is mounted with a cylinder carried on said bracket.
- 129. The kit of claim 128, wherein said cylinder is formed integrally with said bracket as one-piece.
- 130. The kit of claim 127, wherein the actuator further comprises a water line connectable between said piston and a venturi of the watercraft propulsion system so as to enable water pressure in the venturi to flow in the water line to raise or lower the piston.
- 131. The kit of claim 130, wherein said rudder and said bracket are a port rudder and a port bracket, respectively, and wherein the watercraft further comprises a starboard rudder and a starboard bracket;the aforesaid piston being a port piston adapted to be connected between the port rudder and the port side of the hull and said actuator further comprising a starboard piston adapted to be connected between the starboard rudder and the starboard side of the hull for moving the starboard rudder in the substantially vertical direction; said actuator further comprising a T-connector adapted to be connected to said venturi, the aforesaid water line being a port water line adapted to be connected between said port piston and said T-connector, said actuator further comprising a starboard water line adapted to be connected between said starboard piston and said T-connector.
- 132. The kit of claim 131, wherein said T-connector comprises a check valve movable between open and closed positions responsive to water pressure in said venturi to control the flow of water to said piston through said water lines.
- 133. The kit of claim 132, wherein said pistons are configured such that water flowing from said venturi to said piston via said water lines raises said rudders to raised positions, said check valve being movable from said closed position thereof to said open position thereof responsive to water pressure in the venturi exceeding a predetermined threshold.
- 134. The kit of claim 130, wherein the actuator further comprises a U-shaped member constructed to be operatively connected between the nozzle and the rudder.
- 135. The kit of claim 121, wherein the actuator further comprises a spring for biasing the at least one rudder downwardly.
- 136. The kit of claim 135, wherein the actuator further comprises a piston connected to the rudder for raising the piston against the biasing of said spring.
- 137. The kit of claim 136, wherein the actuator further comprises a water line adapted for connection between said piston and a venturi of the watercraft propulsion system so as to enable water pressure in the venturi to flow in the water line to raise the piston.
- 138. The kit of claim 121, wherein the actuator further comprises a flexible member connectable between the nozzle and the at least one rudder to prevent impact forces applied to the rudder from being transmitted to the nozzle.
- 139. A watercraft hull comprising:port and starboard sides; a stern adapted to receive a propulsion system that generates a stream of pressurized water through a nozzle; a starboard rudder receiving recess on said starboard side of said hull proximate a stern end thereof, said starboard rudder receiving recess being configured to receive a starboard rudder therein such that said starboard rudder does not protrude laterally from said starboard side of said hull; and a port rudder receiving recess on said port side of said hull proximate a stern end thereof, said port rudder receiving recess being configured to receive a port rudder therein such that said port rudder does not protrude laterally from said port side of said hull.
- 140. An off-power steering system for a watercraft comprising a hull having port and starboard sides; a propulsion system that generates a stream of pressurized water through a nozzle; and a helm operatively connected to the nozzle such that turning the helm turns the nozzle; the steering system comprising:at least one rudder positioned on either of the port or starboard sides, the at least one rudder being spaced a predetermined distance away from the respective port or starboard side; and an actuator operatively connected to the at least one rudder.
- 141. A jet propulsion device comprising:a nozzle through which pressurized fluid flows; a pressure responsive actuating member operatively connected to the nozzle that reacts to pressurized fluid flow at a threshold pressure; and an element coupled to the pressure responsive actuating member that responds when the fluid in the nozzle achieves the threshold pressure.
- 142. The jet propulsion device of claim 141 in combination with a watercraft.
- 143. The jet propulsion device of claim 141 wherein the nozzle receives water as the pressurized fluid.
- 144. The jet propulsion device of claim 141, wherein the pressure responsive actuating member comprises at least one water passage from the nozzle and a piston coupled to the water passage.
- 145. The jet propulsion device of claim 141, wherein the pressure responsive actuating member comprises a spring biased nozzle rudder that selectively protrudes into the fluid flow.
- 146. The jet propulsion device of claim 141, wherein the element coupled to the pressure responsive actuating member comprises at least one rudder.
- 147. The jet propulsion device of claim 141, wherein the element coupled to the pressure responsive actuating member comprises at least one flap.
- 148. The jet propulsion device of claim 141, wherein the element coupled to the pressure responsive actuating member comprises a trim system.
- 149. The jet propulsion device of claim 141, wherein the element responds with a mechanical movement.
- 150. The jet propulsion device of claim 141, wherein the element responds with an electrical signal.
- 151. The jet propulsion device of claim 141, wherein the element is a steering control mechanism.
- 152. The jet propulsion device of claim 151, wherein the pressure responsive actuating member reacts at the threshold pressure to disengage the steering control mechanism.
- 153. A jet propelled watercraft comprising:a hull; a nozzle coupled to the hull through which pressurized water flows to drive the watercraft; a pressure responsive actuating member operatively connected to the nozzle that reacts to pressurized water flow at a threshold pressure; and an element supported by the hull and coupled to the pressure responsive actuating member that responds when the water in the nozzle achieves the threshold pressure.
- 154. The jet propelled watercraft of claim 153, wherein the pressure responsive actuating member comprises a water passage in communication with the nozzle and a piston coupled to the water passage, wherein the piston causes the element to provide steering control when water pressure in the nozzle is equal to or less than the threshold pressure.
- 155. The jet propelled watercraft of claim 153, wherein the pressure responsive actuating member comprises a spring biased rudder disposed in the nozzle, wherein the rudder causes the element to disengage when water pressure in the nozzle is equal to or greater than the threshold pressure.
Parent Case Info
The present application is a continuation in part of Simard U.S. application Ser. No. 09/775,806, filed Feb. 5, 2001, now abandoned, and Simard U.S. Provisional Appln. Ser. No. 60/180,223, filed Feb. 4, 2000, the entirety of each of which are hereby incorporated into the present application by reference.
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Number |
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CA |
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/180223 |
Feb 2000 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/775806 |
Feb 2001 |
US |
Child |
09/850173 |
|
US |