Claims
- 1. In a variable pitch marine propeller comprising a plurality of blades, the blades being rotatably secured to the propeller, a self contained blade actuating and positioning mechanism for automatically causing rotational movement of the blade between a low pitch blade angular position and a high pitch blade angular position in response to forces generated as a result of a change in a boat operating parameter, and sensing means operably connected to the self-contained mechanism and designed to respond to such change in operating parameter; the improvement which comprises means to generate, sense and transmit, to the blade actuating and positioning mechanism, centrifugal and hydrodynamic forces acting on the blade and which tend to change the blade pitch in the same direction, and restricted viscous fluid flow damping means operably connected to the blade to reduce the rotational velocity of the blade during any such rotational movement, and thus to reduce the rate of change in the angular position of the blade.
- 2. A self-actuating variable pitch marine propeller comprising a hub case; drive securing means designed to secure the propeller to a rotating drive means on a boat propulsion system, such that the propeller is caused to rotate, about a propeller axis, by the drive means; a plurality of blades which extend radially outward from, and are pivotally connected to, the hub case, about a blade axis extending transverse to the propeller axis, each blade comprising a hydrodynamic surface, and a blade shaft extending from the hydrodynamic surface along the blade axis, the center of pressure of the hydrodynamic surface being distant from the blade axis, such that rotation of the propeller by the drive shaft generates a hydrodynamic force torque about the blade axis tending to move the blade towards a higher pitch position; inertial mass means operably connected to the blade and designed to generate an inertial force torque, tending to cause each blade to pivot about the blade axis towards a higher pitch angle as the rotational speed of the propeller increases; and restricted viscous flow damping means mechanically, operatively connected to a blade, and designed to reduce the rotational velocity of such blade as the blade pivots about the blade axis in response to the hydrodynamic force torque and inertial force torque; whereby the blade is automatically movable between a first lower angle of pitch operational position, and a second higher angle of pitch operational position, as the rotational speed of the propeller increases, and whereby the blade rotatably moves between angular pitch positions slowly and without flutter.
- 3. The self-actuating variable pitch marine propeller of claim 2, comprising coordination means operatively connected to each of the blades, such that movement of any one of the blades causes a proportional movement of the coordination means, whereby the movement of all of the blades is synchronized.
- 4. The self-actuating variable pitch marine propeller of claim 3, further comprising mechanical biasing means tending to maintain the blade in the first operational pitch position.
- 5. The self-actuating variable pitch marine propeller of claim 4, wherein the drive securing means is axially rotatably movable relative to the hub case, and the mechanical biasing means comprises drive-torque connecting means operably connected between the coordination means and the drive securing means, whereby the application of power to the drive shaft tends to rotate the coordination means, and thus to bias the blades, towards a lower angular pitch position.
- 6. The self-actuating variable pitch marine propeller of claim 4, wherein the mechanical biasing means comprises spring biasing means.
- 7. The self-actuating variable pitch marine propeller of claim 6, wherein the spring biasing means comprises a compression spring operatively connected between a blade and the hub case, and designed to bias the blade towards the lowest pitch angular position.
- 8. The self-actuating variable pitch marine propeller of claim 6, wherein the spring biasing means comprises a tension spring operatively connected between a blade and the hub case, and designed to bias the blade towards the lowest pitch angular position.
- 9. The variable pitch marine propeller of claim 2, wherein the restricted flow damping means comprises a surface defining an enclosed fluid-containing chamber and having a fluid flow orifice opening into the chamber, at least a portion of such surface being movable relative to the hub case, such that the movement results in a change in the size of the chamber; connecting means between each blade and the movable portion of the surface, the connecting means being so designed that rotational movement of any blade, which results in a change in the angular pitch position of that blade, results in a proportional movement of the movable portion of the surface and thus of all the blades; such that the rate of change in the angular pitch position of the blades is limited by the flow of a viscous fluid relative to the chamber through the orifice.
- 10. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means is a piston damper, wherein one of the piston and cylinder is operably connected to a propeller blade.
- 11. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means is operably connected between the coordination means and the hub case and wherein the movable surface is part of the coordination means and the remaining surface defining the chamber is affixed to the hub case, such that angular movement of the blade about the blade axis results in a proportional movement of the coordination means and thus results in a proportional change in the size of the chamber; whereby movement of the blade is thus limited by the flow of a viscous fluid relative to the chamber through the orifice.
- 12. The variable pitch marine propeller of claim 9, wherein the viscosity of the fluid in the damping chamber and the size of the orifice are designed to provide a level of damping at least equal to the critical damping value of the rotating propeller blade relative to the fundamental mode of rotational displacement oscillation.
- 13. The variable pitch marine propeller of claim 9, wherein the viscosity of the fluid in the damper chamber and the size of the orifice is sufficient to provide a level of damping which has the effect of reducing, by at least about fifty percent relative to an undamped such propeller, the rate of change in angular pitch position of the blades.
- 14. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means further comprises directional actuating means, wherein the degree of damping provided varies with the direction of rotation of the blade.
- 15. The variable pitch marine propeller of claim 14, wherein the restricted flow damping means further comprises a second orifice opening into the damping chamber, the second orifice permitting the flow of the viscous fluid in parallel to the flow through the first orifice, relative to the chamber.
- 16. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means further comprises a valve seat secured to said surface, a valve, movable relative to said surface between a sealing position in contact with the valve seat and an open position out of contact with the valve seat, the valve comprising a valve surface and inertial mass means designed to be so juxtaposed to the valve, as to cause the valve to move away from the valve seat as the rotational speed of the propeller increases; and bias means operatively connected to the valve so as to cause the valve to remain in contact with the valve seat, such that when the propeller is at rest, the valve is in the sealing position, seated against the valve seat, and the valve tends to move away from the valve seat in opposition to the bias, so as to open the orifice, as the rotational speed of the propeller increases.
- 17. The variable pitch marine propeller of claim 16, wherein the restricted flow damping means further comprises feed-back means operably connected between the blade and the valve and responsive to the hydrodynamic force torque generated by the blades, whereby an increase in the hydrodynamic force torque increases the bias effect causing the valve to seat against the valve seat.
- 18. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means further comprises manual adjusting means designed to permit manual adjustment of the size of the orifice, whereby the amount of damping effect can be varied.
- 19. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means further comprises means to automatically vary the size of the orifice with the angular pitch position of the blades.
- 20. The variable pitch marine propeller of claim 9, wherein the restricted flow damping means further comprises a wall dividing the damping chamber into two mutually sealed sub-chambers, the wall and the surface being mutually movable in response to pivoting movement of a blade, but wherein the orifice provides a fluid flow connection between the two sub-chambers, such that the viscous fluid flows between the two chambers through the orifice as the blades pivot to change angular pitch position, the size of the two sub-chambers varying, but the sum of the volumes of the two sub-chambers remaining substantially constant.
- 21. The variable pitch marine propeller of claim 20, wherein the restricted flow damping means further comprises a second flow orifice interconnecting the two sub-chambers and a movable valve means in the second orifice.
- 22. A self-actuating variable pitch marine propeller comprising a hub case; drive securing means designed to secure the propeller to a rotating drive means on a boat propulsion system, such that the propeller is caused to rotate, about a propeller axis, by the drive means; a plurality of blades which extend radially outward from, and are pivotally connected to, the hub case, about a blade axis extending transverse to the propeller axis, each blade comprising a hydrodynamic surface, and a blade shaft extending from the hydrodynamic surface along the blade axis, the center of pressure of the hydrodynamic surface being distant from the blade axis, such that rotation of the propeller by the drive shaft generates a hydrodynamic force torque about the blade axis; inertial mass means operably connected to the blade and designed to generate an inertial force torque, tending to cause each blade to pivot about the blade axis towards a higher pitch angle as the rotational speed of the propeller increases; and restricted viscous flow damping means mechanically, operatively connected to a blade, and designed to provide a level of damping at least equal to the critical damping value of the rotating propeller blade relative to the fundamental mode of rotational displacement oscillation, so as to substantially reduce the rotational velocity of such blade as the blade pivots about the blade axis; whereby the blades are automatically movable between a first lower angle of pitch operational position, and a second higher angle of pitch operational position, as the rotational speed of the propeller increases, and whereby the blade rotatably moves between angular pitch positions slowly and without flutter; the center of pressure of the hydrodynamic surface being so juxtaposed relative to the blade axis that the hydrodynamic force torque generated about the blade axis when the propeller is rotated, at least during initial acceleration of the propeller, tends to move the blades towards a lower pitch position, such that the blades cannot move towards a higher pitch position until the propeller rotational speed is sufficiently great that the centrifugal force effect is sufficient to overcome the hydrodynamic force effect.
- 23. The self-actuating variable pitch marine propeller of claim 22, further comprising mechanical biasing means tending to maintain the blade in the first operational pitch position.
- 24. A self-actuating variable pitch marine propeller comprising a hub case, drive securing means designed to secure the propeller to a rotating drive shaft on a boat propulsion system such that the propeller rotates with the drive shaft; a plurality of blades extending radially outward from the hub case, each blade comprising a hydrodynamic surface, and a blade shaft extending from the hydrodynamic surface along a blade axis extending transverse to the drive shaft axis, said blade shaft being movably connected to the hub case, both pivotally about and linearly along the blade axis, such that rotation of the propeller by the drive shaft generates a centrifugal reaction force tending to cause each blade to move linearly outwardly along the blade axis; motion-direction means, operatively connected between the hub case and a blade shaft, designed to cause such blade to move pivotally about the blade axis, when the blade moves linearly along its blade axis; and a plurality of restricted flow damping means, each such damping means being mechanically, directly connected to one blade shaft, and designed to reduce the velocity of linear outward movement of such blade as the blade moves linearly and pivots about the blade axis in response to the motion-directing means; whereby the blades are automatically movable between a first lower angle of pitch operational position, and a second higher angle of pitch operational position, as the rotational speed of the propeller increases, and wherein the blade pivots slowly and without flutter.
- 25. The self-actuating variable pitch marine propeller of claim 24, comprising coordination means operatively connected to each of the blades, such that movement of any one of the blades causes a proportional movement of the coordination means, whereby the movement of all of the blades is synchronized.
- 26. The self-actuating variable pitch marine propeller of claim 24, wherein the motion directing means comprises a cam surface and a cam follower which causes simultaneous translational and rotational movement of the blade in response to the centrifugal force effect on the blade.
- 27. The self-actuating variable pitch marine propeller of claim 26, further comprising mechanical biasing means tending to maintain the blade in the first operational pitch position.
- 28. The self-actuating variable pitch marine propeller of claim 24, wherein the blade is so designed that the center of pressure of the hydrodynamic surface is distant from the blade axis so as to generate a hydrodynamic force torque about the blade axis when the propeller is rotated, such hydrodynamic force torque during acceleration tending to move the blades towards a lower pitch position, and thus holding the blade in the low pitch angular position during initial startup until the rotational movement of the propeller generates sufficient centrifugal force effect to overcome such hydrodynamic blade biasing force.
- 29. The self-actuating variable pitch marine propeller of claim 28, further comprising a spring bias means connected between the hub case and the coordination means so as to bias the blades towards the low pitch position.
- 30. A self-actuating variable pitch marine propeller comprising a hub case, drive securing means designed to secure the propeller to a rotating drive shaft on a boat propulsion system such that the propeller rotates with the drive shaft; a plurality of blades extending radially outward from the hub case, each blade comprising a hydrodynamic surface, and a blade shaft extending from the hydrodynamic surface along a blade axis extending transverse to the drive shaft axis, said blade shaft being movably connected to the hub case, both pivotally about and linearly along the blade axis, such that rotation of the propeller by the drive shaft generates a centrifugal reaction force tending to cause each blade to move linearly outwardly along the blade axis; motion-direction means, operatively connected between the hub case and a blade shaft, designed to cause such blade to move pivotally about the blade axis, when the blade moves linearly along its blade axis; coordination means operatively connected to each of the blades, such that movement of any one of the blades causes a proportional movement of the coordination means, whereby the movement of all of the blades is synchronized; and a restricted flow damping means, mechanically, operatively connected between the coordination means and the hub case, designed to reduce the rotational velocity of the blade as each blade pivots about the blade axis in response to the motion-directing means, and comprising a surface defining an enclosed fluid-containing chamber and having a fluid flow orifice extending through such surface into the chamber, at least a portion of such surface being movable relative to the hub case, such that the movement results in a change in the size of the chamber; connecting means between the coordination means and the movable portion of the surface, the connecting means being so designed that rotational movement of the blades result in a proportional movement of the movable portion of the surface, and wherein movement of the surface is limited by the flow of a viscous fluid relative to the chamber through the orifice; whereby the blades are automatically movable between a first lower angle of pitch operational position, and a second higher angle of pitch operational position, as the rotational speed of the propeller increases, and wherein a level of damping is provided at least sufficient to reduce by at least about fifty percent relative to an undamped such propeller, the rate of change in angular pitch operational position of the blades.
- 31. The self-actuating variable pitch marine propeller of claim 30, comprising mechanical biasing means tending to maintain the blade in the first operational pitch position.
- 32. The self-actuating variable pitch marine propeller of claim 31, wherein the mechanical biasing means comprises spring biasing means.
- 33. The self-actuating variable pitch marine propeller of claim 32, wherein the spring biasing means comprises a compression spring operatively connected between the blade and the hub case, tending to bias the blade towards the innermost radial position.
- 34. The self-actuating variable pitch marine propeller of claim 32, wherein the spring biasing means comprises a tension spring operatively connected between the blade and the hub case, tending to bias the blade towards the innermost radial position.
- 35. The variable pitch marine propeller of claim 30, wherein the restricted flow damping means is operably connected between the coordination means and the hub case and wherein the movable portion of the defining surface is part of the coordination means and another portion of the defining surface is affixed to the hub case, such that angular movement of the blade about the blade axis results in a proportional movement of the coordination means and thus results in a proportional change in the size of the chamber; whereby movement of the blade is thus limited by the flow of a viscous fluid relative to the chamber through the orifice.
- 36. The variable pitch marine propeller of claim 35, wherein the restricted damper means further comprises directional actuating means, wherein the degree of damping provided varies with the direction of rotation of the blade.
- 37. The variable pitch marine propeller of claim 35, wherein the viscosity of the fluid in the damper chamber and the size of the orifice is sufficient to provide a level of damping which has the effect of reducing, by at least about fifty percent relative to an undamped such propeller, the rate of change in angular pitch position of the blades.
- 38. The variable pitch marine propeller of claim 35, wherein the viscosity of the fluid in the damper chamber and the size of the orifice is sufficient to provide a level of damping at least equal to the critical damping value of the rotating propeller blade relative to the fundamental mode of radial displacement oscillation.
- 39. A self-actuating variable pitch marine propeller comprising a hub case, drive securing means designed to secure the propeller to a rotating drive shaft on a boat propulsion system such that the propeller rotates with the drive shaft; a plurality of blades extending radially outward from the hub case, each blade comprising a hydrodynamic surface, and a blade shaft extending from the hydrodynamic surface along a blade axis extending transverse to the drive shaft axis, said blade shaft being movably connected to the hub case, both pivotally about and linearly along the blade axis, such that rotation of the propeller by the drive shaft generates a centrifugal reaction force tending to cause each blade to move linearly outwardly along the blade axis; motion-directing means, operatively connected between the hub case and a blade shaft, designed to cause such blade to move pivotally about the blade axis, when the blade moves linearly along its blade axis; and restricted flow damping means, mechanically, operatively connected to a blade shaft, and designed to reduce the rotational velocity of such blade as the blade pivots about the blade axis in response to the motion-directing means; whereby the blades are automatically movable between a first lower angle of pitch operational position, and a second higher angle of pitch operational position, as the rotational speed of the propeller increases, and wherein the blade pivots slowly and without flutter, the restricted flow damping means comprises a surface defining an enclosed fluid-containing chamber and having a fluid flow orifice opening into the chamber, at least a portion of such surface being movable relative to the hub case, such that the movement results in a change in the size of the chamber; a valve seat, surrounding the orifice and secured to the defining surface, and a valve, movable relative to the valve seat, between a first position sealably closing the orifice and a second position away from the valve seat, so as to open the orifice, as the sped of the propeller increases; and feed-back means operably connected between the blades and the valve and directly responsive to the hydrodynamic torque generated by the blades, the feedback means tending to bias the valve against the valve seat with increasing force as the hydrodynamic torque increases; whereby an increase in the hydrodynamic torque increases the bias effect forcing the valve to seat against the valve seat, and thus requiring a greater centrifugal force effect torque to move the valve from the closed position.
- 40. The variable pitch marine propeller of claim 39, comprising an inertial mass operatively connected to the valve surface, wherein the inertial mass moves outwardly as the propeller rotational speed increases, and wherein outward movement of the mass causes the valve surface to move away from the valve seat.
- 41. The variable pitch marine propeller of claim 39, wherein the restricted flow damping means including not more than the single orifice to a chamber, such that the blades are prevented from being moved by the closed valve until such time as the valve is opened.
- 42. In a variable pitch marine propeller comprising a plurality of blades, the blades being rotatably secured to the propeller, a self contained blade actuating and positioning mechanism for automatically causing rotational movement of the blade between a low pitch blade angular position and a high pitch blade angular position in response to forces generated as a result of a change in a boat operating parameter, and sensing means operably connected to the self-contained mechanism and designed to respond to such change in operating parameter; the improvement which comprises means to generate, sense and transmit, to the blade actuating and positioning mechanisms, centrifugal and hydrodynamic forces acting on the blade and which tend to change the blade pitch in the same direction, and restricted viscous fluid flow damping mean operably connected to the blade to control rotational movement and to reduce the rotational velocity of the blade during any such rotational movement, the damping means comprising an orifice and control means to open and close the orifice, and feedback means operatively connected to the control means and to the blade to apply any hydrodynamic force to the control means so as to close the orifice, whereby the damping means acts to restrain pitch change movement of the blade until the feedback force is overcome and to reduce the rate of change in the angular position of the blade, when movement is permitted.
- 43. The variable pitch marine propeller of claim 42, wherein the damping means includes not more than the single orifice to a chamber, such that the blades are prevented from being moved by the closed valve until such time as the valve is opened.
Parent Case Info
This is a continuation-in-part of U.S. patent application Ser. No. 645,096, filed Jan. 4, 1991, and now U.S. Pat. No. 5,129,785, which is a continuation-in-part of U.S. patent application Ser. No. 376,112, filed Jul. 6, 1989, now U.S. Pat. No. 5,032,057, which is a continuation-in-part of U.S. Pat. Ser. No. 216,014, filed Jul. 17, 1988 and now U.S. Pat. No. 4,929,153.
US Referenced Citations (15)
Foreign Referenced Citations (3)
Number |
Date |
Country |
1549850 |
Mar 1990 |
SUX |
432768 |
Aug 1935 |
GBX |
467488 |
Jan 1937 |
GBX |
Continuation in Parts (3)
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Number |
Date |
Country |
Parent |
645096 |
Jan 1991 |
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Parent |
376112 |
Jul 1989 |
|
Parent |
216014 |
Jul 1988 |
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