Claims
- 1. A method for taking discrete parts travelling at a first speed in a first direction, and transferring the discrete parts to a receiver travelling at a second speed in a second direction, said method comprising the steps of:
(a) providing a rotatable transfer assembly, and at least one transport head mounted on the transfer assembly, for taking the discrete parts onto the at least one transport head in a taking zone, and for transferring the discrete parts to the receiver in a transfer zone; (b) taking a discrete part onto the at least one transport head in the taking zone wherein a leading edge of the discrete part is oriented at a first angle with respect to the first direction of travel; (c) after taking the discrete part onto the at least one transport head, (i) rotating the rotatable transfer assembly about a first axis oriented in a third direction transverse to, and disposed in a plane parallel with, the first direction, at a variable angular velocity such that the at least one transport head travels at a first surface speed which substantially equals the first speed of the discrete part as the discrete part is taken onto the at least one transport head in the taking zone, and travels at a second surface speed which substantially equals the second speed of the receiver as the discrete part is transferred to the receiver in the transfer zone, and (ii) rotating the transport head about a second radial axis intersecting the first axis and extending outwardly therefrom, to thereby orient the leading edge of the discrete part at a second angle measured with respect to the second direction of travel of the receiver in the transfer zone, different from the first angle; and (d) transferring the so rotated discrete part to the receiver in the transfer zone.
- 2. A method as in claim 1 and including applying adhesive to the discrete part, and drawing the discrete part away from the transport head by contacting the adhesive with a substrate onto which the discrete part is transferred.
- 3. A method as in claim 1, and including rotating the transport head about the second radial axis while simultaneously rotating the rotatable transfer assembly about the first axis.
- 4. A method as in claim 1, and including taking the discrete part in subparagraph (b) as contained in a continuous web, and cutting the web to separate out the discrete part after the taking of step (b) and before rotating the transport head about the second radial axis in step (c).
- 5. A method as in claim 1, and including holding the discrete part to the transport head with suction while rotating the rotatable transfer assembly from the taking zone to the transfer zone.
- 6. A method as in claim 5, and including holding the discrete part to the transport head with at least about 1 inch of water suction.
- 7. A method as in claim 1 and including providing, on the transport head, a taking section having a roughened surface, and providing, on the discrete part, a textured surface, the textured surface of the discrete part interacting with the taking section of roughened surface on the transport head to thereby secure the discrete part to the transport head.
- 8. A method as in claim 7, and including providing suction through the transport head, to enhance the holding of the discrete part to the transport head.
- 9. A method as in claim 5, and including providing suction through the transport head, to enhance the holding of the discrete part to the transport head.
- 10. A method as in claim 1, said transport head having an arcuate top wall for receiving the discrete parts thereunto, the method including orienting the transport head such that the curvature of the arcuate top wall is disposed transverse to the first direction of travel at the taking zone, and rotating the transport head about the radial axis after taking the discrete part onto the transport head, and thereby aligning the arcuate top wall with the receiver at the transfer zone, whereby, after the rotation about the second radial axis, the arcuate top wall can interact with a substantially planar receiver disposed tangential to the orbital path, along a line transverse to the second direction in the transfer zone, and interacts with the discrete parts in the taking zone along a line approximating the first direction.
- 11. A method as in claim 1, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated by 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 12. A method as in claim 2, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 13. A method as in claim 3, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the dicrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 14. A method as in claim 4, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 15. A method as in claim 5, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 16. A method as in claim 6, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 17. A method as in claim 7, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 18. A method as in claim 8, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, when the integral elastics are elongated up to about 300%, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 19. A method for taking discrete parts travelling in a first direction and applying the discrete parts to a receiver travelling in a second direction, the method comprising the steps of:
(a) providing a rotatable transfer assembly, mounted for rotation in an orbital path about a first axis oriented in a plane parallel with the first direction, and at least one transport head mounted on the transfer assembly, for taking the discrete parts onto the at least one transport head in a taking zone, and for transferring the discrete parts to the receiver in a transfer zone, the transport head having an arcuate top wall, including an arcuate outer surface thereon, for taking the discrete parts, the transport head being mounted for rotation about a second radial axis intersecting the first axis and extending outwardly therefrom; (b) orienting the transport head such that the curvature of the arcuate top wall is disposed transverse to the first direction of travel; (c) while the arcuate top wall is so disposed transverse to the first direction of travel, taking a discrete part onto the at least one transport head in the taking zone; (d) after taking the discrete part onto the at least one transport head, (i) rotating the rotatable transfer assembly about the first axis, and (ii) rotating the transport head, and the discrete part disposed thereon, about the second radial axis, to thereby bring the curvature of the arcuate top wall into alignment with the second direction of travel, and the transport head into proximity with the receiver in the transfer zone; and (e) transferring the so rotated discrete part to the receiver.
- 20. A method as in claim 19 and including applying adhesive to the discrete part, and drawing the discrete part away from the transport head by contacting the adhesive with a substrate onto which the discrete part is transferred.
- 21. A method as in claim 19, and including rotating the transport head about the second radial axis while simultaneously rotating the rotatable transfer assembly about the first axis, whereby, after the rotation about the second radial axis in subparagraph (d)(ii), the arcuate top wall can interact with a receiver disposed tangential to the orbital path, along a line transverse to the second direction in the transfer zone, and interacts with the discrete parts in the taking zone along a line approximating the first direction.
- 22. A method as in claim 21, wherein the tangential receiver is substantially planar.
- 23. A method as in claim 21, wherein the tangential receiver is acutate.
- 24. A method as in claim 19, and including taking the discrete part in subparagraph (c) as contained in a continuous web, and cutting the web to separate out the discrete part after the taking of step (c) and before rotating the transport head about the second radial axis in step (d).
- 25. A method as in claim 19 and including holding the discrete part to the transport head with suction while rotating the rotatable transfer assembly from the taking zone to the transfer zone.
- 26. A method as in claim 25 and including holding the discrete part to the transport head with at least about 1 inches of water suction.
- 27. A method as in claim 19, and including providing, on the transport head, an taking section having a roughened surface, and providing, on the discrete part, a textured surface, the suction causing the textured surface of the discrete part to interact with the taking section of roughened surface on the transport head to thereby enhance the holding of the discrete part to the transport head.
- 28. A method as in claim 23, and including holding the discrete part to the transport head with suction while rotating the rotatable transfer assembly from the taking zone to the transfer zone.
- 29. A method as in claim 22, and including providing, on said transport head, a taking section having a roughened surface, and providing, on the discrete part, a textured surface, the suction causing the textured surface of the discrete part to interact with the taking section of roughened surface on the transport head to thereby enhance the holding of the discrete part to the transport head.
- 30. A method as in claim 18, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 31. A method as in claim 19, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 32. A method as in claim 20, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 33. A method as in claim 21, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 34. A method as in claim 25, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 35. A method as in claim 23, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 36. A method as in claim 24, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 37. A method as in claim 25, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the discrete part exhibits less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 38. Apparatus for taking discrete parts travelling at a first speed in a first direction, and transferring the discrete parts to a receiver travelling at a second speed in a second direction, said apparatus comprising:
(a) a transfer assembly mounted for rotation about a first axis oriented in a third direction transverse to, and disposed in a plane parallel with, the first direction; (b) at least one transport head mounted on said transfer assembly, for taking the discrete parts onto said at least one transport head in a taking zone, wherein a leading edge of the discrete part is oriented at a first angle with respect to the first direction of travel, and for transferring the discrete parts to the receiver in a transfer zone; (c) a first driver, for driving said transfer assembly about said first axis, at a variable angular velocity such that the at least one transport head travels at a first surface speed which substantially equals the first speed of the discrete part as the discrete part is taken onto the at least one transport head in the taking zone, and travels at a second surface speed which substantially equals the second speed of the receiver as the discrete part is applied to the receiver in the transfer zone, thereby defining an orbital path; and (d) a second driver for rotating said transport head about a second radial axis of rotation intersecting said first axis, and extending outwardly from said first axis, to thereby orient the leading edge of the discrete part at a second angle measured with respect to the second direction of travel of the receiver in the transfer zone, different from the first angle.
- 39. Apparatus as in claim 38, said second driver comprising said first driver in combination with control apparatus for causing the rotation of said transport head about said second radial axis of rotation.
- 40. Apparatus as in claim 38, said second driver comprising control apparatus, cooperating with motive force provided by said first driver, for causing said second driver to rotate said transport head about said second radial axis while said first driver drives said transfer assembly about said first axis.
- 41. Apparatus as in claim 38, and including suction apparatus for holding the discrete part to said transport head between said taking zone and said transfer zone, while said first driver drives said transfer assembly about said first axis.
- 42. Apparatus as in claim 38, said transport head having a taking section for taking the discrete parts, said taking section having a roughened surface comprising a first base surface component, and a second component comprising a first array of protrusions extending outwardly at least about 0.006 millimeter from the base surface component for taking the discrete parts thereunto, such that said protrusions on said taking section can interact with a textured surface on the discrete part to thereby secure the discrete part to the transport head.
- 43. Apparatus as in claim 42, said taking section further comprising a second array of suction ports for applying suction to the discrete part, to thereby enhance the securement between the discrete part and said taking section of said transport head.
- 44. A method of transferring discrete parts from a giver at a taking zone to a receiver at a transfer zone, the method comprising the steps of:
(a) providing a transfer assembly, including at least one transport head mounted on the transfer assembly, the transport head having an outer wall for taking the discrete parts, and for releasing the discrete parts, the outer wall having at least one taking section having a roughened surface, the taking section comprising (i) a base surface component, and (ii) a second component comprising a first array of protrusions extending outwardly at least about 0.006 millimeter from the base surface component for receiving the discrete parts thereunto; (b) taking, onto the taking section having a roughened surface, a discrete part having a textured surface wherein texture in the textured surface can interact with the roughened surface of the taking section to thereby secure the discrete part to the transport head; and (c) releasing the discrete part from the transport head.
- 45. A method as in claim 44 and including applying adhesive to the discrete part, and drawing the discrete part away from the transport head by contacting the adhesive with a substrate onto which the discrete part is transferred.
- 46. A method as in claim 44, said method including providing a second array of suction ports disposed in the taking section having a roughened surface, and extending through the outer wall to an interior passage inside the transport head.
- 47. A method as in claim 46, and including applying suction through the second array of suction ports to the discrete part, the combination of (i) the suction and (ii) the interaction between the roughened taking section of the transport head and the textured surface of the discrete part being effective to enhance the securement between the discrete part and the transport head.
- 48. A method as in claim 44, and including taking the discrete part in subparagraph (b) as contained in a continuous web, and cutting the web to separate out the discrete part after the taking of step (b) and before releasing the discrete part in step (c).
- 49. A method as in claim 44, the transfer assembly being adapted to rotate about a first axis, to take the discrete part while the discrete part is travelling at a first speed, and to release the discrete part to a receiver travelling at a second speed, and including rotating the transfer assembly about the first axis at a variable angular velocity such that the at least one transport head travels at a first surface speed which substantially equals the first speed of the discrete part as the discrete part is taken onto the at least one transport head in the taking zone, and travels at a second surface speed which substantially equals the second speed of the receiver as the discrete part is released to the receiver in the transfer zone, and including holding the discrete part to the transport head while rotating the rotatable transfer assembly from the taking zone to the transfer zone.
- 50. A method as in claim 44, and including holding the discrete part to the transport head with at least 1 inch of water suction.
- 51. A method as in claim 41, and including rotating the transport head about a second radial axis intersecting the first axis and extending outwardly therefrom.
- 52. A method as in claim 44, and including taking the discrete parts while travelling in a first direction and transferring the discrete parts to the receiver while the receiver is travelling in a second direction, the transport head having an arcuate top wall for receiving the discrete parts thereunto, the method including orienting the transport head such that the curvature of the arcuate top wall is disposed transverse to the first direction of travel at the taking zone, and after taking the discrete part onto the transport head, rotating the transfer assembly about a first axis oriented in a third direction transverse to, and disposed in a plane parallel with, the first direction, and rotating the transport head about a second radial axis intersecting the first axis, thereby aligning the arcuate top wall with the receiver at the transfer zone, such that after the rotation about the second radial axis, the arcuate top wall can interact with a substantially planar receiver disposed tangential to the orbital path, along a line transverse to the second direction in the transfer zone, and does interact with the discrete parts in the taking zone along a line approximating the first direction.
- 53. A method as in claim 44, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the integral elastics exhibit less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 54. Apparatus for transferring discrete parts from a giver at a taking zone to a receiver at a transfer zone, said apparatus comprising:
(a) a transfer assembly; (b) at least one transport head mounted on said transfer assembly, said transport head having an outer wall for taking the discrete parts, and for releasing the discrete parts, said outer wall having at least one taking section having a roughened surface, said at least one taking section comprising (i) a base surface component, and (ii) a second component comprising a first array of protrusions extending outwardly at least about 0.006 millimeter from said base surface component, for receiving the discrete parts thereunto; and (c) motive means for rotating said transfer assembly about an axis of rotation and thereby moving said at least one transport head from said taking zone to said transfer zone.
- 55. Apparatus as in claim 54, said motive means being adapted to rotate said transfer assembly about said first axis, to take the discrete part while the discrete part is travelling at a first speed, and to release the discrete part to a receiver travelling at a second speed, including rotating said transfer assembly about the first axis at a variable angular velocity such that said at least one transport head travels at a first surface speed substantially equal to the first speed of the discrete part at the taking zone, and travels at a second surface speed substantially equal to the second speed of the receiver at the transfer zone.
- 56. Apparatus as in claim 54, said axis of rotation comprising a first axis of rotation, said transport head being mounted for rotation about a second radial axis of rotation, intersecting the first axis of rotation and extending outwardly therefrom.
- 57. Apparatus as in claim 54, including a second array of suction ports, extending through said outer wall to an interior passage inside said transport head, and suction apparatus for applying suction to said at least one taking section through said second array of suction ports while said transport head is moving from said taking zone to said transfer zone.
- 58. Apparatus for intermittently applying and releasing suction to a rotating suction head, said apparatus comprising:
(a) a tubular conduit comprising a central suction supply line, said tubular conduit comprising an outer circumferential wall, and having a length; (b) a slip ring mounted for rotation about said tubular conduit, while maintaining suction seal between said slip ring and said tubular conduit; (c) an enclosure comprising a suction chamber sealed to said slip ring, for rotation about said tubular conduit along with said slip ring and for applying suction to parts to be held to an outer surface of the enclosure; (d) a first array of suction ports in said outer circumferential wall of said tubular conduit extending part-way, but less than all the way, about said outer circumference of said tubular conduit; and (e) a second array of suction ports in said slip ring, longitudinally aligned along the length of said tubular conduit with said first array of suction ports such that, upon rotation of said slip ring about said tubular conduit, said first and second arrays of suction ports become aligned for transfer of suction from said tubular conduit to said suction chamber, through said first and second arrays of suction ports.
- 59. Apparatus as in claim 58, said first array of suction ports in said tubular conduit being arranged about said circumferential wall of said tubular conduit such that said suction ports in said first array are aligned with ones of said suction ports in said second array, and thereby supply suction to said suction chamber, over an angle of rotation of said slip ring of at least about 30 degrees, and no more than about 330 degrees.
- 60. Apparatus as in claim 58, said slip ring comprising a first slip ring, and including a second slip ring displaced longitudinally along the length of said tubular conduit from said first slip ring, and mounted for rotation about said tubular conduit, while maintaining suction seal between said second slip ring and said tubular conduit, said tubular eve conduit having a third array of suction ports, and said second slip ring having a fourth array of suction ports for cooperating with said third array of suction ports, to thereby supply suction to a second suction chamber mounted to said second slip ring, over an angle of rotation of said second slip ring of at least about 30 degrees, and no more than about 330 degrees.
- 61. A method of transferring a discrete part from a taking zone to a transfer zone using a transfer assembly having a transport head mounted thereon, the transport head including a taking section for taking the discrete part onto the transport head, the taking section having a roughened surface for receiving the discrete part thereon, the method comprising the steps of:
(a) taking a discrete part onto the transport head at the taking section; (b) holding the discrete part on the transport head by interaction between a textured surface of the discrete part and a roughened surface of the taking section; (c) orienting the taking segment such that the discrete part is disposed in a downward orientation such that gravity urges the discrete part to separate from the taking section, and wherein the interaction between the textured surface of the discrete part and the roughened surface of the taking section maintains the holding of the discrete part on the taking section; and (d) transferring the discrete part away from the taking section and thus off the transport head, to a receiver, by applying an outside force to the discrete part.
- 62. A method as in claim 61 and including applying adhesive to the discrete part, and drawing the discrete part away from the transport head by contacting the adhesive with a substrate onto which the discrete part is transferred.
- 63. A method as in claim 61 and including taking the discrete part as contained in a continuous web, and cutting the web to separate the discrete part from the web after taking the discrete part onto the transport head and before transferring the discrete part to the receiver.
- 64. A method as in claim 61, and including taking the discrete part while the discrete part is elongated and under tension exerted by elastics integral with the discrete part, and including holding the discrete part to the transport head with sufficient force that, in cooperation with a friction relationship between the transport head and the discrete part, the integral elastics exhibit less than 50% snap-back of the elongation while the discrete part is held on the transport head.
- 65. A method as in claim 61 and including enhancing the holding of the discrete part to the transport head by applying suction through the transport head urging the discrete part toward the transport head.
- 66. A method as in claim 64 and including enhancing the holding of the discrete part to the transport head by applying suction through the transport head urging the discrete part toward the transport head.
- 67. A method as in claim 61 wherein the orienting of the discrete part includes rotating the transfer assembly about a substantially horizontal axis and thereby orienting the discrete part downwardly within 30 degrees of the vertical before the transferring of the discrete part away from the transport head.
Parent Case Info
[0001] Priority is claimed under 35 U.S.C. 120 with respect to application Ser. No. 08/186,352, filed Jan. 25, 1994, herein incorporated by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
08381364 |
Jan 1995 |
US |
Child |
10000640 |
Nov 2001 |
US |