Claims
- 1. A method for imparting a substantially constant force to an object, comprising:
positioning a constant force actuator adjacent the object, the constant force actuator having a pair of force transmitting members disposed for relative linear movement, at least one of said force transmitting members being linearly movable, and a linkage in force receiving relation with said force transmitting members and having a first force transmitting element movable by said linkage in a direction substantially perpendicular to said relative linear movement of said force transmitting members and disposed for force transmitting contact with an object, said linkage having a movement control guide of predetermined movement control geometry in force reacting engagement with at least one of said force transmitting members and translating said relative linear movement of said force transmitting members to expansion and contracting movement of said linkage and linear movement of said first force transmitting element, said method comprising:
initiating expansion movement of said constant force actuator by causing relative linear movement of said force transmitting members toward one another and causing reaction of said movement control geometry with at least one of said force transmitting members and developing a linkage movement force oriented for expansion movement of said linkage and developing a substantially constant linkage transmitting force on said first force transmitting element; continuing expansion movement of said constant force actuator by continuing said relative linear movement of said force transmitting members until a predetermined intermediate angular relation of said linkage has been reached and said predetermined movement control geometry and said at least one force transmitting member have separated; further continuing expansion movement of said constant force actuator by continuing said relative linear movement of said force transmitting members with said force transmitting members acting directly on said linkage until desired extension of said linkage and desired movement of said first force transmitting element have been achieved.
- 2. The method of claim 1, wherein said linkage is defined by a pair of linkage arms each having a first end thereof pivotally connected to one of said force transmitting members, at least one of said linkage arms having said movement control guide of predetermined geometry thereon, and a second force transmitting element is mounted on at least one of said force transmitting members for force transmitting engagement with said movement control guide, said method further comprising:
reacting said second force transmitting element with said movement control guide during said relative linear movement of said force transmitting members toward one another and developing a linkage movement force of angular direction with respect to said linear movement of said force transmitting members and causing extension movement of said linkage.
- 3. The method of claim 1, wherein said linkage is defined by a pair of linkage arms each having a first end thereof pivotally connected to one of said force transmitting members, at least one of said linkage arms having said movement control guide of predetermined geometry thereon, and a guide roller is mounted for rotation on at least one of said force transmitting members for force transmitting engagement with said movement control guide, said method further comprising:
during a first portion of said relative linear movement of said force transmitting members reacting said guide roller with said movement control guide during said relative linear movement of said force transmitting members toward one another and developing a linkage movement force having an angular direction with respect to said linear movement of said force transmitting members and causing expansion movement of said linkage; and during a second portion of said relative linear movement of said force transmitting members applying force from said force transmitting members directly to said linkage causing further expansion movement of said linkage.
- 4. The method of claim 1, wherein said linkage is defined by a plurality of pairs of linkage arms disposed for radial expansion and contraction movement relative to said force transmitting members, said method further comprising:
extending said plurality of pairs of linkage arms simultaneously and radially by relative linear movement of said force transmitting members and applying substantially constant force of each of said pairs of linkage arms to the object.
- 5. The method of claim 1, wherein pivots interconnect said linkage with said force transmitting members, said pivots being linearly and pivotally movable with respect to said force transmitting members, said method further comprising:
causing linear and pivotal movement of said pivots relative to said force transmitting members during relative linear movement of said force transmitting members during expansion and contraction movement of said linkage.
- 6. A method for imparting a substantially constant force to an object, comprising:
positioning a constant force actuator adjacent the object, the constant force actuator having first and second force transmitting members linearly movable relative to one another and having a movement control element located on at least one of said first and second force transmitting members, and further having a pair of linkage arms each having a first end pivotally connected to a respective one of said first and second force transmitting members and each having second ends pivotally interconnected and defining a pivotal linkage angularly movable from a retracted position to an extended force transmitting position, and a linkage arm movement control guide having a predetermined movement control geometry and having linkage moving engagement with said movement control element during a portion of the extension movement of said pivotal linkage from said retracted position to said extended position, said method comprising: initiating extension movement of said constant force actuator from said contracted position of said pivotal linkage by moving at least a first of said force transmitting members linearly toward said second force transmitting member and causing reaction of said movement control element with said linkage arm movement control guide and developing a linkage movement force oriented for extension movement of said pivotal linkage and developing a substantially constant linkage transmitting force; continuing extension movement of said constant force actuator by forcible interaction of said linkage arm movement control guide and said movement control element until a predetermined intermediate angular relation of said pivotal linkage has been reached and said linkage arm movement control guide and said movement control element have separated; further continuing said extension movement of said constant force actuator by further moving said first and second force transmitting members toward one another and applying linear force from said force transmitting members directly to said pair of linkage arms; and from the extended condition of said constant force actuator causing contracting movement thereof by relative linear movement of said force transmitting members away from one another, said force transmitting members inducing contracting movement of said pivotal linkage.
- 7. A substantially constant force actuator, comprising:
a pair of force transmitting members disposed for relative linear movement; and a linkage in force receiving relation with said force transmitting members and having a force transmitting element movable by said linkage in a direction substantially perpendicular to said relative linear movement of said force transmitting members and disposed for force transmitting contact with an object, said linkage having at least one movement control guide of predetermined geometry in force reacting engagement with at least one of said force transmitting members and translating said relative linear movement of said force transmitting members to extension and contraction movement of said linkage and linear movement of said force transmitting element.
- 8. The substantially constant force actuator of claim 7, wherein:
said linkage comprises a pair of linkage arms each having pivotal connection with one of said force transmitting members and pivotally connected to one another; said movement control guide is located on at least one of said linkage arms; and said force transmitting element is located on at least one of said linkage arms and is disposed for contact with the object to which force is to be transmitted.
- 9. The substantially constant force actuator of claim 7, wherein:
said linkage comprises a pair of linkage arms having a pivot establishing a pivotal connection of said linkage arms; and wherein said pivot establishes a pivotal connection of said force transmitting element with said linkage.
- 10. The substantially constant force actuator of claim 7, wherein:
said force transmitting members each define an elongate slot; and further comprising
pivot members having pivotal movement and linear movement within said elongate slots and establishing movable connection of said linkage with said force transmitting members within said elongate slots.
- 11. The substantially constant force actuator of claim 7, wherein:
said linkage is defined by a plurality of opposed pairs of linkage arms arranged for extension and contraction movement within a wellbore for application of force to a wellbore wall and each of said plurality of pairs of linkage arms extends and contracts in response to relative linear movement of said force transmitting members; said force transmitting members each define an elongate slot; and further comprising
pivot members having pivotal movement and linear movement within said elongate slots and establishing movable connection of said linkage arms with said force transmitting members within said elongate slots.
- 12. The substantially constant force actuator of claim 7, further comprising:
at least one spring member imparting said relative linear movement to said force transmitting members in a first linear direction and being compressed by relative linear movement of said force transmitting members in a second linear direction opposite said first linear direction.
- 13. The substantially constant force actuator of claim 7, further comprising:
at least one hydraulic actuator in driving relation with at least one of said force transmitting members and imparting linear movement thereto for extension movement of said linkage.
- 14. The substantially constant force actuator of claim 7, further comprising:
a rotary motor driven actuator mechanism in linear driving relation with at least one of said force transmitting members and imparting linear movement thereto for extension and contraction movement of said linkage.
- 15. The substantially constant force actuator of claim 7, further comprising:
a mechanical actuator in linear driving relation with at least one of said force transmitting members and imparting linear movement thereto for extension and contraction movement of said linkage.
- 16. The substantially constant force actuator of claim 7, wherein:
said linkage is defined by a plurality of opposed pairs of linkage arms arranged for extension and contraction movement within a wellbore for application of force to the wellbore wall and each of said plurality of pairs of linkage arms extends and contracts responsive to relative linear movement of said force transmitting members; and further comprising
power energized tractor mechanisms mounted to each of said opposed pairs of linkage arms and disposed for traction engagement with the wellbore wall for traction movement along the wellbore.
- 17. A substantially constant force actuator, comprising:
a pair of force transmitting members linearly movable relative to one another from positions of predetermined maximum spacing to positions of predetermined minimum spacing; a linear force transmitting mechanism forcibly moving said force transmitting members linearly to and from said positions of predetermined maximum spacing and predetermined minimum spacing; a movement control element located on at least one of said pair of force transmitting members; at least one pair of linkage arms each having a first end and a second end, said first ends of said linkage arms being pivotally connected to respective ones of said force transmitting members and said second ends of said linkage arms being pivotally interconnected, said at least one pair of linkage arms being angularly positionable at a predetermined minimum angle with said force transmitting members at said predetermined maximum spacing and being positionable at a predetermined maximum angle with said force transmitting members at said predetermined minimum spacing; a linkage arm guide defined by at least one of said linkage arms and having linkage moving engagement with said movement control element during extension movement of said linkage arms from said predetermined minimum angle to a predetermined intermediate angle; and said force transmitting members transmitting linkage movement force directly to said first and second linkage arms during extension movement of said linkage arms from said predetermined intermediate angle to said predetermined maximum angle.
- 18. The substantially constant force actuator of claim 17, wherein:
said linkage arm guide defines a guide surface having a predetermined geometry disposed in fixed relation with said at least one linkage arm; and said movement control element forcibly engages said guide surface during movement of said force transmitting members from said predetermined minimum angle to said predetermined intermediate angle.
- 19. The substantially constant force actuator of claim 18, wherein:
said movement control element comprises at least one wheel rotatably mounted to said at least one of said pair of force transmitting members and imparting linkage moving force to said guide surface and pivotally moving said linkage arms toward said predetermined maximum angle.
- 20. The substantially constant force actuator of claim 17, further comprising:
a force transmitting element mounted to at least one of said at least one pair of linkage arms and located at least near said second ends of said pair of linkage arms, said force transmitting element transmitting force from said pair or linkage arms in a direction substantially perpendicular to linear movement of said force transmitting members.
- 21. The substantially constant force actuator of claim 20, further comprising:
a pivot interconnecting said second ends of said at least one pair of linkage arms; and wherein
said force transmitting element is a wheel mounted for rotation by said pivot and disposed for force transmitting engagement with an object.
- 22. The substantially constant force actuator of claim 17, wherein:
each of said force transmitting members defines an elongate pivot slot having a longitudinal axis aligned with said linear movement of said force transmitting members; and further comprising
a pivot pin located at said first end of each of said at least one pair of linkage arms and received for linear movement and for pivotal movement by a respective one of said elongate pivot slots.
- 23. The substantially constant force actuator of claim 17, further comprising:
linkage arm actuator wedges located on each of said at least one pair of linkage arms and each defining a guide surface of predetermined geometry and predetermined orientation with respect to linear movement of said force transmitting members; wherein said movement control element comprises a force transmitting wheel mounted for rotation on each of said force transmitting members and having force transmitting engagement with a guide surface and imparting pivotal movement to said at least one pair of linkage arms responsive to relative linear movement of said force transmitting members; each of said force transmitting members defines an elongate pivot slot having a longitudinal axis aligned with said linear movement of said force transmitting members; and wherein a pivot pin is located at said first end of each of said at least one pair of linkage arms and is received for linear movement and for pivotal movement by a respective one of said elongate pivot slots.
- 24. The substantially constant force actuator of claim 17, further comprising:
a force transmitting jack element mounted to at least one of said at least one pair of linkage arms and imparting lifting force to an object.
- 25. The substantially constant force actuator of claim 17, wherein:
said at least one pair of linkage arms comprises a plurality of pairs of linkage arms; and further comprising
a force transmitting centralizer element positioned by each of said pairs of linkage arms for centralizing contact with spaced surfaces.
- 26. The substantially constant force actuator of claim 17, wherein:
said at least one pair of linkage arms comprises a plurality of pairs of linkage arms; and further comprising
a plurality of power energized tractor mechanisms mounted to respective pairs of linkage arms and disposed for force transmitting engagement with a wellbore wall and energized for traction movement along the wellbore wall.
- 27. The substantially constant force actuator of claim 17, wherein:
said at least one pair of linkage arms comprises a plurality of pairs of linkage arms; and further comprising
anchor members mounted to each of said pairs of linkage arms and positioned for anchoring engagement with a wellbore wall.
- 28. The substantially constant force actuator of claim 17, wherein:
said linear force transmitting mechanism is a fluid pressure energized piston actuator mechanism.
- 29. The substantially constant force actuator of claim- 17, wherein:
said linear force transmitting mechanism comprises at least one spring having spring force transmitting engagement with at least one of said force transmitting members.
- 30. The substantially constant force actuator of claim 17, further comprising:
a base structure; and wherein said pair of force transmitting members comprise first and second force transmitting members at least one of which is linearly movable relative to said base structure; and wherein said linear force transmitting mechanism has an elongate linear force transmitting element extending between said first and second force transmitting members.
- 31. A constant force actuator mechanism, comprising;
a pair of force transmitting members, at least one of which is linearly movable to establish relative positions of predetermined maximum and minimum spacing thereof; a linear force transmitting mechanism moving said at least one force transmitting member linearly to and from said positions of predetermined maximum and minimum spacing; at least one movement control element located on at least one of said pair of force transmitting members; at least two pairs of linkage arms, each linkage arm having a first end and a second end, said first ends of said linkage arms being pivotally connected to a respective one of said force transmitting members, said second ends of said linkage arms being pivotally interconnected, said pairs of linkage arms each having angulating movement and being angularly positionable from minimum angles with said force transmitting members at said predetermined maximum spacing to maximum angles with said force transmitting members at said predetermined minimum spacing; power energized tractor elements mounted to each of said pairs of linkage arms and disposed for force transmitting engagement with a surface for traction movement of said constant force mechanism along the surface; and at least one linkage arm actuator defined by at least one of said linkage arms and having linkage moving engagement with said movement control element during at least a portion of the angulating movement of said linkage arms from said predetermined minimum angle to said predetermined maximum angle.
- 32. The constant force actuator mechanism of claim 31, wherein:
said power energized tractor elements are powered rotary tractor wheels disposed for gripping relation with opposed spaced surfaces and are rotatable against the opposed surfaces to accomplish traction movement along the opposed spaced surfaces.
- 33. The constant force actuator mechanism of claim 32, wherein:
said powered rotary tractor wheels are powered rotary cam elements positioned for traction engagement with said opposed spaced surfaces.
- 34. The constant force actuator mechanism of claim 31, wherein:
said power energized tractor elements are powered rotary endless tractor belts disposed for traction engagement with opposed spaced surfaces and having driving rotation against the opposed spaced surfaces to accomplish said traction movement.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from U.S. Provisional Application No. 60/364,189, filed Mar. 13, 2002, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60364189 |
Mar 2002 |
US |