Claims
- 1. A reciprocating mechanism, comprising:a plate adapted to rotate about a first axis, the plate having a spiral groove spiraling about the first axis; and a translating member having first and second groove engagement portions being configured to selectively engage the groove; wherein the translating member is configured so that, during rotation of the plate about the first axis, the groove engagement portions alternately engage the groove on opposite sides of the first axis, causing the translating member to translate linearly back and forth as the plate rotates in one rotary direction about the first axis.
- 2. The reciprocating mechanism of claim 1, wherein the spiral groove has an inner end and an outer end, the first axis being nearer to the inner end than to the outer end, the depth of the groove tapering to lesser depth at one of the ends.
- 3. The reciprocating mechanism of claim 2, wherein the spiral groove tapers to lesser depth at each of the inner end and the outer end.
- 4. The reciprocating mechanism of claim 3, wherein the groove engagement portions are alternately pulled to the outer end of the spiral groove when the plate rotates clockwise, and are alternately pulled to the inner end of the spiral groove when the plate rotates counterclockwise.
- 5. The reciprocating mechanism of claim 3, wherein the groove engagement portions are alternately pulled to the outer end of the spiral groove when the plate rotates counterclockwise, and are alternately pulled to the inner end of the spiral groove when the plate rotates clockwise.
- 6. The reciprocating mechanism of claim 2, wherein the translating member is configured to translate in a first linear direction when the first groove engagement portion is engaged with the groove on a first side of the first axis and when the first plate rotates in the one rotary direction about the first axis.
- 7. The reciprocating mechanism of claim 6, wherein the translating member is arranged to pivot about a central axis between the first groove engagement portion and the second groove engagement portion when the first groove engagement reaches the tapered end.
- 8. The reciprocating mechanism of claim 7, wherein the translating member is arranged to insert the second groove engagement portion into the groove on a second side of the first axis when the translating member pivots as the first groove engagement portion reaches the tapered outer end, the second side being opposite to the first side, the translating member being configured to translate in a second linear direction when the second groove engagement portion is engaged with the groove and the plate continues to rotate in the one rotary direction about the first axis, the second linear direction being opposite to the first linear direction.
- 9. The reciprocating mechanism of claim 1, wherein the first groove engagement portion comprises a first pin, the second groove engagement portion comprising a second pin.
- 10. The reciprocating mechanism of claim 1, further comprising a generally linear track being positioned generally parallel to the plate, the translating member having a track engagement portion configured to engage and translate along the track during linear translation of the translating member.
- 11. The reciprocating mechanism of claim 1, forming a part of a reel for winding and unwinding linear material.
- 12. The reciprocating mechanism of claim 11, wherein the first plate rotates along with a reel drum configured to receive the linear material thereabout, the reel drum and the plate configured to rotate together about the first axis.
- 13. The reciprocating mechanism of claim 12, wherein the reel further comprises:a housing substantially surrounding the plate, the translating member, and the reel drum, at least a portion of the housing configured to rotate about a second axis, the portion of the housing including a guide aperture configured to guide linear material onto the reel drum; and a linkage between the translating member and the housing, the linkage configured to convert linear translation of the translating member into reciprocating rotation of the portion of the housing about the second axis.
- 14. The reciprocating mechanism of claim 13, wherein the second axis is substantially orthogonal to the first axis.
- 15. The reciprocating mechanism of claim 14, wherein the linkage comprises:an arm extending from the translating member, the arm having a bore extending through a portion of the arm; and a pin extending from the housing, the pin being received within the bore in the arm.
- 16. A reel comprising:a drum configured to rotate about a drum axis and to receive linear material being wrapped around a spool surface of the drum as the drum rotates about the drum axis; a shell substantially surrounding the drum; and a reciprocating mechanism configured to reciprocatingly rotate at least a portion of the shell with respect to the drum about a shell axis, the portion of the shell having an aperture which reciprocates through an arc across the spool surface as the portion of the shell reciprocatingly rotates about the shell axis.
- 17. The reel of claim 16, wherein the reciprocating mechanism links continued rotation of the drum about the drum axis with reciprocating rotation of the portion of the shell about the shell axis, the shell axis being orthogonal to the drum axis.
- 18. The reel of claim 16, wherein the reciprocating mechanism comprises:a plate connected to rotate with the drum together about the drum axis, the plate having a groove spiraled about the drum axis; and a translating member having first and second groove engagement portions configured to engage the groove, the translating member configured so that, during rotation of the drum and the plate about the drum axis, the groove engagement portions are pulled to one end of the groove, alternately engage the groove on opposite sides of the drum axis and causing the translating member to translate linearly reciprocatingly along a line as the plate continually rotates in one rotary direction about the drum axis.
- 19. The reel of claim 16, wherein the reciprocating mechanism comprises a reversing screw.
- 20. The reel of claim 16, wherein the shell substantially encloses the drum.
- 21. The reel of claim 20, wherein the aperture has a width measured generally parallel to the drum axis and a height, the width being no more than about twice the height.
- 22. A reel comprising:a shell having an aperture, the shell adapted to rotate about a shell axis; and a drum housed within the shell, the drum adapted to rotate about a drum axis to receive a spool of linear material around a spool surface of the drum as the drum rotates; a first element engaged with the drum, the first element having a spiral groove in a surface thereof; a second element slidingly engaged with a track within the shell, the second element having first and second groove engagement portions configured to selectively engage the spiral groove; and a linkage between the second element and the shell; wherein the reel is configured so that during rotation of the drum about the drum axis: the first element rotates; the groove engagement portions alternately engage the groove on opposite sides of the first axis, causing the second plate to reciprocatingly and linearly translate within the track line as the first element rotates; and the linkage converts the reciprocating and linear translation of the second element into reciprocating rotation of the shell about the second axis, causing the aperture to reciprocatingly translate through an arc in front of the drum, the aperture translating such that linear material is guided through the aperture and distributed across the spool surface during drum rotation.
- 23. The reel of claim 22, wherein the groove has an inner end and an outer end, the depth of the groove tapering at each of the inner and outer ends.
- 24. The reel of claim 22, wherein the first groove engagement portion comprises a first pin, the second groove engagement portion comprising a second pin.
- 25. A reel comprising:a drum having a spool surface, the drum configured to wind linear material onto the spool surface as the drum rotates about a drum axis, the drum also configured to rotate about a shell axis; and a shell substantially surrounding the drum, the shell comprising: a first shell portion configured to remain fixed with respect to a support surface; and a second shell portion adapted to rotate about the shell axis while the first shell portion is fixed with respect to the support surface, the second shell portion connected to the drum by a linkage allowing limited relative rotation about the shell axis, the drum and the second shell portion rotating together freely about the shell axis, the second shell portion having a guide aperture therethrough sized and shaped to allow linear material to be drawn through the aperture onto the spool surface of the drum.
- 26. The reel of claim 25, wherein the drum and second shell portion rotate freely 360° about the shell axis.
- 27. The reel of claim 25, wherein the aperture has a width measured parallel to the drum axis and a height, the width being no more than about twice the height.
- 28. The reel of claim 25, wherein the drum axis is substantially orthogonal to the shell axis.
- 29. The reel of claim 25, wherein the shell is substantially spherical, the first shell portion comprising a lower hemisphere of the shell, the second shell portion comprising an upper hemisphere of the shell.
- 30. A method of spooling linear material, comprising:providing a drum and a shell around the drum, a portion of the shell having an aperture therethrough; rotating the drum about a first axis; reciprocatingly rotating the shell portion with the aperture about a second axis as the drum rotates about the first axis; and drawing linear material through the aperture to the drum as the drum rotates, the linear material being distributed across the spool surface by reciprocating rotation of the shell portion.
- 31. The method of claim 30, wherein rotating the drum axis comprises transferring drum rotation into reciprocating rotation of the shell portion.
- 32. The method of claim 31, wherein transferring comprises converting rotary motion of the drum to reciprocating linear translation of a translating member and converting reciprocating linear translation of the translating member into reciprocating arcuate translation of the shell portion.
- 33. The method of claim 32, wherein converting rotary motion of the drum to reciprocating linear translation of the translating member comprises:engaging a first pin of the translating member with a spiral groove that rotates along with the drum, the first pin engaged with the spiral groove on a first side of the drum axis; disengaging the first pin from the spiral groove when the pin reaches an end of the spiral groove; engaging a second pin of the translating member with the spiral groove on a second side of the drum axis, the second side being opposite the first side; and confining the translating member to linear translation along a track.
- 34. The method of claim 33, wherein disengaging comprises ramping the first pin out of the end of the groove with a groove depth.
- 35. The method of claim 33, wherein disengaging and engaging comprise pivoting the translating member about an axis between the first and second pins.
- 36. A method of producing reciprocating motion, comprising:providing a first plate adapted to rotate about a plate axis, the first plate having a spiral groove spiraling about the plate axis, the spiral groove having two ends, the depth of the spiral groove tapering to lesser depth at at least one of the ends; provide a second plate having first and second groove engagement portions each adapted to selectively engage the spiral groove; engaging the first engagement portion with the spiral groove on a first side of the plate axis; rotating the first plate in one rotary direction about the plate axis; pulling the first engagement portion in a first direction toward the tapered end of the spiral groove by the rotation of the first plate, causing the second plate to translate generally along a line in the first direction; causing, by continued rotation of the first plate in the one rotary direction, the first engagement portion to be forced out of the spiral groove at the tapered end, whereby the second plate pivots so that the second engagement portion simultaneously engages the spiral groove on a second side of the plate axis, the second side being opposite to the first side; pulling the second engagement portion in a second direction toward an outer edge of the first plate, by continued rotation of the first plate in the one rotary direction, causing the second plate to translate generally along a line in the second direction, the second direction being generally opposite to the first direction; and causing, by continued rotation of the first plate in the one rotary direction, the second engagement portion to be forced out of the spiral groove at the tapered end, whereby the second plate pivots so that the first engagement portion simultaneously re-engages the spiral groove on the first side of the plate axis.
- 37. The method of claim 36, wherein rotating the first plate in an opposite rotary direction to the one rotary direction about the plate axis causes the first and second engagement portions to alternately be forced out of a second of the two ends of the spiral groove, thereby alternately changing translation of the second plate between the first and the second directions.
- 38. The method of claim 36, wherein the tapered end comprises an outer end.
- 39. The method of claim 38, wherein each of an outer end and an inner end of the spiral groove are tapered, the second plate configured to linearly reciprocate with either clockwise or counter-clockwise rotation of the first plate.
- 40. The method of claim 36, further comprising linking the second plate to a guide member to cause reciprocating motion of the guide member in front of a spooling drum.
- 41. A method of spooling linear material, comprising the steps of:providing a drum assembly comprising a disc and a drum, the disc and drum being linked to rotate about a drum axis, the disc having a spiral groove spiraling about the drum axis, the groove having a first end and a second end, the groove tapering to lesser depth at one of the first and second ends; providing a translating member having first and second groove engagement portions each adapted to engage the groove; providing a shell having an aperture and being configured to rotate about a shell axis; providing a linkage between the translating member and the shell, the linkage being configured to convert linear motion of the translating plate into rotational motion of the shell about the shell axis; engaging the first engagement portion with the groove on a first side of the drum axis; rotating the drum assembly about the drum axis to cause the translating member to reciprocatingly translate back and forth in a cycle in which; the first engagement portion is pulled in a first direction toward an outer edge of the disc, by the rotation of the disc, the pulling of the first engagement portion causing the translating plate to translate generally along a line in the first direction; the first engagement portion is forced out of the groove at the second end by the tapering of the second end, causing the translating member to pivot so that the second engagement portion simultaneously engages the groove on a second side of the drum axis, the second side being opposite to the first side; second engagement portion is pulled in a second direction toward an outer edge of the disc, by continued rotation of the disc, the pulling of the second engagement portion causing the translating member to translate generally along a line in the second direction, the second direction being generally opposite to the first direction; and the second engagement portion is forced out of the groove at the second end by the tapered end, causing the translating member to pivot so that the first engagement portion simultaneously engages the groove on the first side of the axis; and spooling linear material through the aperture and onto the drum as the drum assembly rotates; wherein the linkage converts the reciprocating translation of the translating member into reciprocating rotation of the shell about the shell axis, the aperture translating through an arc in front of the drum so that the linear material is spooled substantially uniformly onto a length of the drum.
REFERENCE TO RELATED APPLICATION
The present application claims the priority benefit under 35 U.S.C. §119(e) of provisional application No. 60/197,132, filed Apr. 14, 2000 of Mead et al.
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Country |
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FR |
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JP |
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JP |
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/197132 |
Apr 2000 |
US |