Claims
- 1. A slat for a harvester, the slat comprising:
a blade extending at least 180° about an axis and having a cross-section having a uniform radius in relation to the axis, the blade having an edge extending parallel to the axis, finger-like indentations being defined on the edge, the blade being supportable by a frame and being couplable to a rotational drive mechanism for rotation about the axis.
- 2. The slat of claim 1, wherein the blade has a cross-section having an adjustment cavity, the rotational drive mechanism including a support member extending into the adjustment cavity to couple the blade to the rotational drive mechanism.
- 3. The slat of claim 2, wherein the cross-section of the blade has the first-mentioned adjustment cavity and a second adjustment cavity, the rotational drive mechanism including the first support member extending into the first-mentioned adjustment cavity and a second support member extending into the second adjustment cavity to couple the blade to the rotational drive mechanism.
- 4. The slat of claim 3, wherein the slat has a length, the first-mentioned adjustment cavity and the second adjustment cavity extending parallel to the axis along at least a portion of the length of the slat.
- 5. The slat of claim 1, wherein the indentations are evenly spaced and substantially uniform in size.
- 6. The slat of claim 1, wherein the slat is extruded.
- 7. A sieve assembly comprising:
a frame; a slat supported by the frame, the slat extending at least 180° about an axis and having a cross-section having a uniform radius in relation to the axis, the slat having a blade edge extending parallel to the axis, finger-like indentations being defined on the blade edge; and a rotational drive mechanism supported by the frame, the slat being couplable to the rotational drive mechanism for rotation about the axis.
- 8. The sieve assembly of claim 7, wherein the indentations are evenly spaced and substantially uniform in size.
- 9. The sieve assembly of claim 7, wherein the slat has a cross-section having an adjustment cavity, the rotational drive mechanism including a support member extending into the adjustment cavity to couple the blade to the rotational drive mechanism.
- 10. The sieve assembly of claim 9, wherein the cross-section of the slat has the first-mentioned adjustment cavity and a second adjustment cavity, and wherein the rotational drive mechanism includes the first support member extending into the first-mentioned adjustment cavity and a second support member extending into the second adjustment cavity to couple the blade to the rotational drive mechanism.
- 11. The sieve assembly of claim 7, further comprising a plurality of slats extending substantially parallel to one another, a space being defined between adjacent slats.
- 12. The sieve assembly of claim 11, wherein the space between adjacent slats is uniform in more than one rotational position of the adjacent slats.
- 13. The sieve assembly of claim 11, wherein each slat includes a blade portion including the blade edge and the indentations, and a baffle portion having a baffle edge extending the length of the slat opposite the blade edge, the blade edge of each slat being adjacent to the baffle edge of the adjacent slat.
- 14. The sieve assembly of claim 11, wherein each indentation includes an inner end, and wherein an opening having a size is defined between the inner end of each indentation and a nearest portion of the adjacent slat.
- 15. The sieve assembly of claim 14, wherein the size of the opening is adjustable by rotating the adjacent slats about their axes.
- 16. The sieve assembly of claim 15, wherein each slat is substantially symmetrical about the axis of the slat, such that the change of the size of the opening is consistent as the adjacent slats are rotated.
- 17. The sieve assembly of claim 7, wherein the rotational drive mechanism includes a pinion gear connected to the slat, and a rack engaging the pinion and supported by the frame, such that the pinion and the slat rotate about the axis in response to linear movement of the rack.
- 18. The sieve assembly of claim 17, further comprising a plurality of slats extending substantially parallel to one another, and wherein the drive mechanism includes a pinion gear connected to each slat and engaging the rack, such that each pinion and the respective slat rotate about the axis of each respective slat in response to linear movement of the rack.
- 19. The sieve assembly of claim 17, wherein the frame includes a frame member providing bearing support for the pinion gear and for the rack.
- 20. The sieve assembly of claim 7, wherein the rotational drive mechanism includes a pinion gear connected to the slat, and a drive shaft including a worm gear engaging the pinion and rotatably supported by the frame to rotate about a drive axis, such that the pinion and the slat rotate about the axis in response to rotational movement of the drive shaft and worm gear about the drive axis.
- 21. The sieve assembly of claim 20, wherein the rotational axis of the pinion and the slat is substantially transverse to the drive axis of the drive shaft and the worm gear.
- 22. The sieve assembly of claim 20, further comprising a plurality of slats extending substantially parallel to one another, and wherein the drive mechanism includes a pinion gear connected to each slat and engaging the worm gear, such that each pinion and the respective slat rotate about the axis of each respective slat in response to rotational movement of the drive shaft and worm gear about the drive axis.
- 23. The sieve assembly of claim 20, wherein the frame includes a frame member providing bearing support for the pinion gear and for the worm gear.
- 24. The sieve assembly of claim 7, wherein the slats are rotatable an entire 360° about the axis, the rotational driving mechanism not limiting the extent of slat rotation.
- 25. The sieve assembly of claim 7, wherein the slat is extruded.
- 26. The sieve assembly of claim 7, wherein the frame includes a first side frame member, a second side frame member, and a center divider member, wherein a first panel includes a plurality of slats extending between the first side frame member and the center divider member, and wherein a second panel includes a plurality of slats extending between the second side frame member and the center divider member, a slat from the first panel being linked to a corresponding slat in the second panel and having the same axis as the corresponding slat.
- 27. The sieve assembly of claim 26, wherein the drive mechanism extends adjacent the center divider member between the first panel and the second panel.
- 28. The sieve assembly of claim 27, wherein the rotational drive mechanism includes a separate pinion gear connected to each slat from the first panel and to the corresponding slat from the second panel.
- 29. The sieve assembly of claim 28, wherein each slat has a cross-section having an adjustment cavity, the pinion being supported by an axle and including connectors on opposite sides of the pinion connecting the pinion to the corresponding slats, each connector having a support member extending outwardly from the connector in a direction substantially parallel to the axis, the support member extending into the adjustment cavity of the corresponding slats.
- 30. The sieve assembly of claim 29, wherein each slat has a cross-section having the first-mentioned adjustment cavity and a second adjustment cavity, the pinion being supported by an axle and including connectors on opposite sides of the pinion connecting the pinion to the corresponding slats, each connector having the first-mentioned support member and a second support member extending outwardly from the connector in a direction substantially parallel to the axis, the first-mentioned support member and the second support member extending into the first-mentioned adjustment cavity and the second adjustment cavity, respectively, of the corresponding slats.
- 31. A sieve assembly comprising:
a frame; a slat supported by the frame; and a rotational drive mechanism drivingly connected to the slat, the rotational drive mechanism including
a pinion connected to the slat, and a drive shaft including a worm gear engaging the pinion and rotatably supported by the frame to rotate about a drive axis, rotational movement of the drive shaft about the drive axis causing rotation of the slat about the axis.
- 32. The sieve assembly of claim 31, wherein the slat extends at least 180° about an axis and has a cross-section having a uniform radius in relation to the axis, the slat having an edge extending parallel to the axis, finger-like indentations being defined on the edge.
- 33. The sieve assembly of claim 32, wherein the indentations are evenly spaced and substantially uniform in size.
- 34. The sieve assembly of claim 31, wherein the slat has a cross-section having an adjustment cavity, the rotational drive mechanism including a support member extending into the adjustment cavity to couple the blade to the rotational drive mechanism.
- 35. The sieve assembly of claim 34, wherein the cross-section of the slat has the first-mentioned adjustment cavity and a second adjustment cavity, wherein the rotational drive mechanism includes the first-mentioned support member and a second support member extending outwardly from the pinion into the first-mentioned adjustment cavity and the second adjustment cavity, respectively, to couple the slat to the rotational drive mechanism.
- 36. The sieve assembly of claim 31, further comprising a plurality of slats extending substantially parallel to one another, a space being defined between adjacent slats.
- 37. The sieve assembly of claim 36, wherein the space between adjacent slats is uniform in more than one rotational position of the adjacent slats.
- 38. The sieve assembly of claim 36, wherein each slat includes a blade portion including the blade edge and the indentations, and a baffle portion having a baffle edge extending the length of the slat opposite the blade edge, the blade edge of each slat being adjacent to the baffle edge of the adjacent slat.
- 39. The sieve assembly of claim 36, wherein each indentation includes an inner end, and wherein an opening having a size is defined between the inner end of each indentation and a nearest portion of the adjacent slat.
- 40. The sieve assembly of claim 39, wherein the size of the opening is adjustable by rotating the adjacent slats about their axes with respect to the frame.
- 41. The sieve assembly of claim 40, wherein each slat is substantially symmetrical about the axis of the slat, such that the change of the size of the opening is consistent as the slats are rotated with respect to the frame.
- 42. The sieve assembly of claim 31, wherein the slats are rotatable an entire 360° about the axis, the rotational driving mechanism not limiting the extent of slat rotation.
- 43. The sieve assembly of claim 31, wherein the slat is extruded.
- 44. The sieve assembly of claim 31, wherein the frame includes a first side frame member, a second side frame member, and a center divider member, wherein a first panel includes a plurality of slats extending substantially parallel to one another between the first side frame member and the center divider member, and wherein a second panel includes a plurality of slats extending substantially parallel to one another between the second side frame member and the center divider member, a slat from the first panel being linked to a corresponding slat in the second panel and having the same axis as the corresponding slat.
- 45. The sieve assembly of claim 44, wherein the rotational drive mechanism extends adjacent the center divider member between the first panel and the second panel.
- 46. The sieve assembly of claim 44, wherein the frame members and the divider member are extruded.
- 47. The sieve assembly of claim 44, wherein the divider member provides bearing support for the pinion and for the worm gear.
- 48. The sieve assembly of claim 31, wherein the slat has an end, and wherein the pinion is connected to the end of the slat.
- 49. A slat for a harvester, the slat comprising:
an elongated blade extending along an axis, and having an edge extending parallel to the axis, finger-like indentations being defined on the edge, the blade having a cross-section, the cross-section including an adjustment cavity, the blade being supportable by a frame and being couplable to a rotational drive mechanism for rotation about the axis, the rotational drive mechanism including a support member extending into the adjustment cavity to couple the blade to the rotational drive mechanism.
- 50. The slat of claim 49, wherein the cross-section of the blade includes the first-mentioned adjustment cavity and a second adjustment cavity, the rotational drive mechanism including the first-mentioned support member extending into the first adjustment cavity and a second support member extending into the second adjustment cavity to couple the blade to the rotational drive mechanism.
- 51. The slat of claim 49, wherein the indentations are evenly spaced and substantially uniform in size.
- 52. The slat of claim 49, wherein the slat is extruded.
- 53. The slat of claim 49, wherein the blade extends at least 180° about an axis and has a cross-section having a uniform radius in relation to the axis, the slat having an edge extending parallel to the axis.
- 54. A method of manufacturing a slat for a harvester, the method comprising the acts of:
providing an extrudable material; and extruding a slat extending along an axis and having an edge extending parallel to the axis.
- 55. The method of claim 54, wherein the extruding act includes extruding a slat extending at least 180° about the axis and having a cross-section having a uniform radius in relation to the axis.
- 56. The method of claim 54, wherein the extruding act includes extruding the slat having a length and a cross-section, the cross-section including an adjustment cavity extending parallel to the axis along at least a portion of the length of the slat, the harvester including a rotational drive mechanism including a support member positionable to extend into the adjustment cavity to couple the blade to the rotational drive mechanism.
- 57. The method of claim 56, wherein the extruding act includes extruding the slat having a cross-section including the first-mentioned adjustment cavity and a second adjustment cavity extending parallel to the axis along at least a portion of the length of the slat, the rotational drive mechanism including the first-mentioned support member and a second support member extending into the first-mentioned adjustment cavity and the second adjustment cavity, respectively, to couple the blade to the rotational drive mechanism.
RELATED APPLICATIONS
[0001] The present application claims the benefit of prior-filed co-pending provisional patent application Serial No. 60/412,912, filed Sep. 23, 2002, and of prior-filed co-pending provisional patent application Serial No. 60/346,339, filed Jan. 7, 2002.
Provisional Applications (2)
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Number |
Date |
Country |
|
60346339 |
Jan 2002 |
US |
|
60412912 |
Sep 2002 |
US |