Claims
- 1. Method for increasing the forward movement of a tacking sailing vessel which is driven by a wind force vector in a favorable forward direction and in an unfavorable leeward drift direction and having at least one submergible appendage with a cambered surface and a less cambered surface so that said appendage generates a lift force vector when water passes thereover including the steps of selectively shaping said cambered surface on said appendage to provide a high lift/drag ratio for said appendage so that the amount of wasted energy being saved is substantial when the sailing vessel drifts leewardly is equal to the difference between the wind force vector in said leeward drift direction and the lift force vector times the reduced leeward drift distance in a given period of time resulting from the reduced wind force vector in said leeward drift direction by said lift force vector, such multiplication product being greater than the amount of the incremental increase in the wasted drag energy by water passing over said appendage plus the lost entropy energy associated with the energy transfer, said saved energy increasing the forward speed of the sailing yacht because energy cannot be destroyed, and selectively adjusting the position of said appendage longitudinally on the hull relative to a center of the wind pressure upon the sails of said sailing vessel to controllably move a center of water pressure upon the appendage for producing a selected amount of weather helm for offsetting the undesirable lee helm upon the sailing vessel produced by said lift force vector acting upon the appendage.
- 2. Method according to claim 1 including the step of selectively shaping said cambered surface as shown in NACA 63,A012; NACA 63-006; NACA 63-008; NACA 63,A015; NACA 63; NACA 64 and NACA 66.
- 3. Method according to claim 2 including the step of moving said appendage along the hull centerline of said sailing vessel for providing a selective torque upon the vessel into the wind for reducing the lee helm produced by the appendage which is in the water.
- 4. Method according to claim 2 including the steps of providing another appendage having a cambered surface and a less cambered surface, the sailing vessel having a hull circumferential waterline and a longitudinal hull centerline plane from the bow to the stern of the hull, straddling said appendage and said another appendage on said longitudinal hull centerline plane, pointing the leading edges of said appendage and said another appendage towards the bow of the hull, pointing the trailing edges of the two appendages towards the stern of the hull, positioning said appendage and said other appendage so that the generated lift vectors of their cambered surfaces point in opposite directions in perpendicular aspect to said longitudinal hull centerline plane, selectively moving one of the appendages a selected distance into the water so as to control the magnitude of the generated lift force vectors and selectively avoiding the occurrence of both appendages being in the water at the same time.
- 5. Method according to claim 4 including the steps of providing a centerboard trunk and pivoting said appendage and said another appendage to said trunk as centerboards.
- 6. Method according to claim 4 including the steps of providing a sliding keel trunk and laterally sliding said appendage and said another appendage into and out of said sliding keel trunk for a selective distance into and out of the water so as to vary the magnitude of said keel lift force.
- 7. Method according to claim 2 including the steps of providing a waterline on the hull, said at least one appendage being a single appendage juxtapositioned to the bottom of the hull in perpendicular aspect to said waterline plane, providing a cavity in said appendage, providing a wing to fit into said cavity in said appendage, said cambered surface being selectively shaped on said wing with its chord in parallel relationship to the plane of said waterline, attaching a shaft to said wing, journalling said shaft in said cavity with its axis in parallel relationship to said waterline plane and selectively rotating said shaft for providing port and starboard lift force vectors.
- 8. Method according to claim 7 including the step of providing a gasket in the space between said cavity and said appendage to prevent water from passing between said wing and said appendage.
- 9. Method according to claim 2 wherein the sailing vessel has a fin keel with a ballast attached to the end thereof juxtapositioned to the bottom of the hull in perpendicular aspect to said waterline and said appendage is a single wing including the steps of providing a cavity in said fin keel, attaching a shaft to said wing in parallel relationship to the chord of said fin keel, journalling said shaft in said cavity with its axis in parallel relationship to said waterline plane and selectively rotating said shaft for providing port and starboard lift force vectors.
- 10. Method according to claim 9 including the step of providing a gasket in the space between said cavity and said fin keel to prevent water from passing between said wing and said fin keel.
- 11. A method of increasing the velocity of a sailing vessel moving in a body of water and decreasing its leeward drift, said sailing being in a state of equilibrium in accordance with the energy balance:
- W=F+L+D+E,
- where
- W=Energy of the wind
- F=Energy of the wind which forwardly propels the sailing vessel
- L=Energy wasted by the sailing vessel drifting leewardly by the wind
- D=Energy wasted by drag of the hull
- E=Entropy lost energy
- said method comprising the steps of selectively exposing an appendage having a cambered surface and a less cambered surface, in the water, generating a lift force vector by the water passing over the cambered surface on said appendage, directing said lift force vector counter to the direction of drift of the sailing vessel by the wind, more greatly reducing the waisted drift energy then the additional drag energy of said appendage in the moving water plus the energy increase in entropy so as to change the balance of energy to:
- W=(F+f)+(L-g)+(D+d)+(E+e),
- where
- W=Energy of the wind
- F=Energy of the wind which forwardly propels the sailing vessel before the exposure of the cambered surface of the wing to the water
- f=The increase in energy for increasing the vessel forward velocity when the asymmetric wing is exposed to the water
- L=Energy wasted by the sailboat drifting leewardly by the wind
- g=Leeward Drift Energy saved when asymmetric wing is exposed to the water
- D=Drag Energy wasted by water passing over the submerged portion of the sailing vessel before exposing the asymmetric wing to the water
- d=The increase in drag energy wasted by water passing over the asymmetric wing
- E=Entropy wasted energy before exposing asymmetric wing to the water, and
- e=The increase in entropy energy wasted when the asymmetric wing is exposed to the water
- whereby so that the forward velocity of the sailing vessel is increased provided "g" is greater than "d"+"e" and adjusting said appendage longitudinally position relative to a center of the wind pressure upon the sails of said sailing vessel to controlably move a center of water pressure upon the appendage to produce a selected amount of weather helm for offsetting the undesirable lee helm upon the sailing vessel produced by said lift force vector acting upon the appendage.
- 12. Method according to claim 11 including the step of selectively shaping said cambered surface as shown in NACA 63,A012; NACA 63-006; NACA 63-008; NACA 63,A015; NACA 63; NACA 64 and NACA 66.
- 13. An appendage adapted to be exposed in a stream of water under a tacking sailing vessel being driven by a wind force vector upon its sails which drives said tacking sailing vessel in a desired forward direction and in an undesired leeward drift direction, which comprises at least one appendage having a cambered surface and a less cambered surface, means moveably securing said appendage to the hull of the sailing vessel, said cambered surface on said appendage being selectively shaped to have a high lift/drag ratio so that the amount of wasted energy saved when the sailing vessel drifts leewardly is equal to the difference between the wind force vector in said leeward drift direction and the lift force vector times the reduced leeward drift distance in a given period of time resulting from the reduced wind force vector in said leeward drift direction, such multiplication product being greater than the amount of the incremental increase in the wasted drag energy by water passing over said appendage plus the lost entropy energy associated with the energy transfer, said saved energy increasing the forward speed of the sailing yacht because energy cannot be destroyed, and adjusting said appendage longitudinally position relative to a center of the wind pressure upon the sails of said sailing vessel to controlably move a center of water pressure upon the appendage to produce a selected amount of weather helm for offsetting the undesirable lee helm upon the sailing vessel produced by said lift force vector acting upon the appendage and means to move the center of water pressure upon said appendage to produce weather helm for offsetting the undesirable lee helm upon a sailing vessel produced by said lift force vector on said appendage.
- 14. An appendage according to claim 13 wherein said cambered surface is selectively shaped as shown in NACA 63,A012; NACA 63-006; NACA 63-008; NACA 63,A015; NACA 63; NACA 64 and NACA 66.
- 15. An appendage according to claim 14 including means to moveably move said appendage along the hull centerline of said sailing vessel for providing a selective torque upon the vessel into the wind for reducing the lee helm produced by the appendage which is in the water.
- 16. An appendage according to claim 14, said appendage having another less cambered surface and including another appendage having a cambered surface and a less cambered surface, a hull circumferential waterline, a longitudinal hull centerline plane from the bow to the stern of the hull, means straddling said appendage and said another appendage on said longitudinal hull centerline plane, the leading edges of said appendage and said another appendage being pointed towards the bow of the hull and the trailing edges of the two appendages being pointed towards the stern of the hull, said appendage and said other appendage the generating lift vectors on their cambered surfaces pointing in opposite directions in perpendicular aspect to said longitudinal hull centerline plane, means selectively moving one of the appendages a selected distance into the water to vary the magnitude of the keel lift force and selectively avoiding the occurrence of both appendages being in the water at the same time.
- 17. A sailing vessel having two appendages according to claim 16 and including a sliding keel trunk and means laterally moving said appendage and said another appendage in said trunk so as to vary said lift force vectors, said two appendages acting as sliding keels.
- 18. a sailing vessel having two appendages according to claim 16 and including a centerboard trunk and means pivoting said appendage and said another appendage to said trunk, said two appendages acting as centerboards.
- 19. An appendage according to claim 14 wherein said sailing vessel has a hull waterline, said at least one appendage being a single appendage juxtapositioned to the bottom of the hull and in perpendicular aspect to said waterline, and including a cavity in said appendage, a wing adapted to be inserted in said cavity in said appendage, said cambered surface being selectively shaped on said wing with its chord in parallel relationship to the chord of said fin keel, means attaching a shaft to said wing, means journalling said shaft in said cavity with its axis in parallel relationship to said waterline and means selectively rotating said shaft for providing port and starboard lift force vectors.
- 20. An appendage according to claim 19 including a gasket in the space between said cavity and said wing to prevent water from passing therethrough.
- 21. An appendage according to claim 14 wherein said sailing vessel has a fin keel and a hull waterline, said at least one appendage being a single wing, including a cavity in said fin keel, said wing being adapted to be inserted in said cavity in said fin keel, a cambered surface being selectively shaped on said wing with its chord in parallel relationship to the chord of said fin keel, means attaching a shaft to said wing, means journalling said shaft in said cavity with its axis in parallel relationship to said waterline and means selectively rotating said shaft for providing port and starboard lift force vectors.
- 22. An appendage according to claim 21 including a gasket in the space between said cavity and said fin keel to prevent water from passing between said wing and said fin keel.
- 23. The sailing vessel moving in a body of water in the state of equilibrium in accordance with the energy balance:
- W=F+L+D+E,
- where
- W=Energy of the wind
- F=Energy of the wind which forwardly propels the sailing vessel
- L=Energy wasted by the sailing vessel drifting leewardly by the wind
- D=Energy wasted by drag of the hull
- E=Entropy lost energy
- said sailing vessel comprising at least one submergible appendage having a cambered surface and a less cambered surface for increasing the sailboat's forward speed and decreasing its windward drift, means for selectively exposing said submergible appendage for reducing the wasted leeward drift energy of the sailing vessel and for selectively positioning its cambered surfaces so that a force generated by the water passing over said cambered surfaces has a component to counter the sailboat's windward drift for changing the energy balance to:
- W=(F+f)+(L-g)+(D+d)+(E+e),
- where
- W=Energy of the wind
- F=Energy of the wind which forwardly propels the sailing vessel before the exposure of the cambered surface of the wing to the water
- f=The increase in energy for increasing the vessel forward velocity when the asymmetric wing is exposed to the water
- L=Energy wasted by the sailboat drifting leewardly by the wind
- g=Leeward Drift Energy saved when asymmetric wing is exposed to the water
- D=Draft Energy wasted by water passing over the submerged portion of the sailing vessel before exposing the asymmetric wing to the water
- d=The increase in drag energy wasted by water passing over the asymmetric wing
- E=Entropy wasted energy before exposing asymmetric wing to the water, and
- e=The increase in entropy energy wasted when the asymmetric wing is exposed to the water
- whereby, the forward velocity of the sailing vessel is increased provided "g" is greater than "d"+"e" and means adjusting said appendage longitudinally position relative to a center of the wind pressure upon the sails of said sailing vessel to controlably move a center of water pressure upon the appendage to produce a selected amount of weather helm for offsetting the undesirable lee helm upon the sailing vessel produced by said lift force vector acting upon the appendage.
- 24. An appendage according to claim 23 wherein said cambered surface is selectively shaped as shown in NACA 63,A012; NACA 63-006; NACA 63-008; NACA 63,A015; NACA 63; NACA 64 and NACA 66.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS
A Provisional Application of the invention was filed on Jan. 23, 1997 under Ser. No. 60/035918 and is incorporated by reference.
US Referenced Citations (9)