Claims
- 1. A beam winder comprising:
a comb for aligning a plurality of yarns, the comb having a plurality of openings passing therethrough, each opening being offset from each other opening of the plurality of openings in one direction; and one or more racks collectively having a plurality of spool holders, each spool holder being (i) adapted to hold a spool of yarn and (ii) associated with an opening of the plurality of openings, a distance between each spool holder and an associated opening being substantially the same for substantially all spool holders of the plurality of spool holders.
- 2. The beam winder of claim 1, further comprising:
at least one beam support adapted to hold a beam; and at least one drive motor adapted to couple to the beam for rotating the beam to receive the plurality of aligned yarns thereon.
- 3. The beam winder of claim 1, wherein the one direction is vertical.
- 4. The beam winder of claim 1, wherein the comb has (i) a length extending in the one direction (ii) a cross section substantially perpendicular to the one direction in the form of a first substantially circular arc, (iii) an inner surface and an outer surface, and (iv) a first center axis extending in the first direction and passing through a center point of the first substantially circular arc, the outer surface facing generally away from the first center axis and the interior surface facing generally towards the first center axis.
- 5. The beam winder of claim 1, wherein the one or more spool racks are arranged in a substantially circular arc, the circular arc having a center axis.
- 6. The beam winder of claim 4, wherein the one or more spool racks are arranged in a second substantially circular arc, the second circular arc having a second center axis.
- 7. The beam winder of claim 6, wherein the first center axis and the second center axis are co-extensive.
- 8. The beam winder of claim 1, further comprising a plurality of tubes, each tube of the plurality of tubes extending from a first end proximate a spool holder of the plurality of spool holders to a second end proximate an opening of the plurality of openings.
- 9. The beam winder of claim 1, wherein the one or more racks comprise a single circular arc-shaped rack.
- 10. The beam winder of claim 8, wherein the plurality of tubes comprise a metallic material.
- 11. The beam winder of claim 8, wherein the plurality of tubes comprise a polymeric material.
- 12. The beam winder of claim 8, further comprising at least one air supply manifolds, each manifold being (i) coupled with a tube of the plurality of tubes at the first end of the tube, and (ii) in fluid communication with a supply of pressurized air, and (iii) adapted, facilitate a flow of pressurized air along an interior of the tube towards the second end.
- 13. The beam winder of claim 12, further comprising a plurality of pneumatic switches, each pneumatic switch being configured to activate or deactivate a flow of pressurized air to one or more of the air supply manifolds.
- 14. The beam winder of claim 1, wherein an opening of the plurality of openings comprises a hole passing through the comb.
- 15. The beam winder of claim 1, wherein an opening of the plurality of openings comprises a slot in the comb.
- 16. The beam winder of claim 1, wherein the at least one beam support comprises a turntable for simultaneously supporting two or more beams.
- 17. The beam winder of claim 8, wherein the second end of each tube of the plurality of tubes is attached to the comb.
- 18. The beam winder of claim 1, wherein the comb is comprised of a plurality of elongated bars that extend in the first direction, each elongated bar having at least one of the plurality of openings therein.
- 19. The beam winder of claim 4, wherein the comb comprises of a plurality of elongated bars that extend in the one direction, each elongated bar having at least one or more of the plurality of openings therein.
- 20. The beam winder of claim 8, wherein the comb comprises an arrangement of the second ends of the plurality of tubes.
- 21. The beam winder of claim 4, further comprising an elongated cylindrical roller, the cylindrical roller (i) having a second center axis, and (ii) being coupled with a framework of the beam winder for rotation about the second center axis, wherein the second center axis is co-extensive with the first center axis.
- 22. The beam winder of claim 2, comprising a plurality of cylindrical rollers disposed between the comb and the at least one beam support, the plurality of cylindrical rollers being rotateably coupled with a framework of the beam winder and extending in the one direction.
- 23. The beam winder of claim 22, wherein one or more rollers of the plurality of cylindrical rollers are maintained at an elevated temperature.
- 24. The beam winder of claim 22, wherein at least one cylindrical roller of the plurality of cylindrical rollers is maintained at a first temperature, and wherein at least another cylindrical roller of the plurality of cylindrical rollers is maintained at a second temperature, the second temperature being greater than the first temperature and the first and second temperatures being greater than ambient temperature.
- 25. The beam winder of claim 22, wherein at least one cylindrical roller of the plurality of cylindrical rollers is coupled with an electric motor for motorized rotation of the at least one cylindrical roller.
- 26. The beam winder of claim 1, further comprising a plurality of continuous yarn supports, each yarn support of the plurality of continuous yarn supports extending from a first end proximate a spool holder of the plurality of spool holders to a second end proximate an opening of the plurality of openings.
- 27. The beam winder of claim 26, wherein the continuous yarn supports comprise cylindrical tubes.
- 28. A beam winder comprising:
a comb having a plurality of openings passing therethrough, each opening being offset from each other opening of the plurality of openings in a first direction; one or more racks collectively having a plurality of spool holders, each spool holder being (i) adapted to hold a spool of yarn and (ii) associated with an opening of the plurality of openings; and a plurality of tubes, each tube of the plurality of tubes extending from a first end proximate a spool holder of the plurality of spool holders to a second end proximate an opening of the plurality of openings.
- 29. The beam winder of claim 28, further comprising:
at least one beam support adapted to hold a beam; and at least one drive motor adapted for coupling to the beam for rotating the beam to receive a plurality of aligned yarns thereon.
- 30. The beam winder of claim 28, wherein distances between each spool holder and an opening associated with the spool opening is substantially the same for substantially all spool holders of the plurality of spool holders.
- 31. The beam winder of claim 28, wherein a length of each tube is substantially the same as each of the other tubes of the plurality of tubes.
- 32. The beam winder of claim 28, further comprising an airflow means for inducing a flow of air along an interior of at least one tube of the plurality of tubes from the first end to the second end.
- 33. The beam winder of claim 32, wherein the air flow means comprises a manifold attached to the at least one tube, the manifold being coupled with a source of pressurized air to blow pressurized air along at a portion of the interior.
- 34. The beam winder of claim 32, wherein the air flow means comprises a manifold attached to the at least one tube, the manifold being coupled with a vacuum source to suck air along at least a portion of the interior.
- 35. The beam winder of claim 29, further comprising a plurality of rollers located between the comb and the at least one beam support.
- 36. The beam winder of claim 28, further comprising a plurality of air supply manifolds, each manifold being (i) coupled with a tube of the plurality of tubes at the first end of the tube, and (ii) in fluid communication with a supply of pressurized air, and (iii) adapted to facilitate a flow of pressurized air along an interior of the tube towards the second end.
- 37. The beam winder of claim 36, further comprising a plurality of pneumatic switches, each pneumatic switch being configured to activate or deactivate a flow of pressurized air to a single air supply manifold of the plurality of air supply manifolds.
- 38. The beam winder of claim 35, wherein one or more of the plurality of rollers are heated to an elevated temperature.
- 39. The beam winder of claim 29, wherein the beam support comprises at least one driven axle that couples to a beam to rotate the beam.
- 40. A method of winding a beam, the method comprising:
aligning a plurality of yarns into a yarn sheet, the plurality of yarns in the yarn sheet being arranged in a parallel planar relationship; shrinking the yarn sheet prior to winding the sheet onto a beam; and winding the yarn sheet onto a beam.
- 41. The method of claim 40, further comprising maintaining a substantially equal level of tension among the plurality of yarns as the plurality of yarns are aligned into the yarn sheet.
- 42. The method of claim 40, further comprising maintaining a substantially equal level of tension among the plurality of yarns of the yarn sheet as the yarn sheet is shrunk.
- 43. The method of claim 40, wherein said shrinking the yarn sheet further comprises heating the yarn sheet to an elevated temperature.
- 44. The method of claim 40, wherein the yarns of the yarn sheet are pulled at a first tension level during said shrinking the yarn sheet, and the yarns of the yarn sheet are pulled at a second tension level during said winding the yarn sheet onto the beam, the first level of tension being less than the second level of tension.
- 45. The method of claim 43, wherein said heating the yarn sheet further comprises passing the yarn sheet over and against one or more heated rollers.
- 46. The method of claim 40, wherein said aligning a plurality of yarns into a yarn sheet further comprises pulling each yarn of the yarn sheet off of a spool and through an associated opening in a comb, the comb having a plurality of openings passing therethrough, each opening being offset from each other opening of the plurality of openings in one direction.
- 47. The method of claim 46, wherein the distance between a spool of each yarn and the associated opening in a comb is substantially the same for each yarn of the plurality of yarns.
- 48. The method of claim 40, wherein said winding the yarn sheet onto a beam further comprises compacting the yarns of the yarn sheet against a core of the beam using a compaction roller.
- 49. A beam winder comprising:
an alignment means for aligning a plurality of continuous yarns in a parallel planar relationship; a shrink means for (i) receiving the aligned planar yarns from the alignment means, (ii) applying a first tensioning force to the aligned planar yarns and (ii) shrinking the aligned planar yarns; a winding means for (i) receiving the aligned planar yarns from the shrink means, (ii) applying a second tensioning force to the aligned planar yarns and (iii) winding the aligned planar yarns onto a beam, the second tension force being greater than the first tension force; and a tension isolating means for preventing the transfer of the second tension force from a portion of the aligned planar yarns in the winding means to another portion of the aligned planar yarns in the shrink means.
- 50. The beam winder of claim 49, wherein the shrink means comprises (i) one or more motor-driven rollers for pulling the aligned yarn sheet through the shrink means.
- 51. The beam winder of claim 49, wherein the alignment means comprises a comb, the comb having a plurality of openings passing there through, each opening being spaced from each other opening in one direction.
- 52. The beam winder of claim 50, wherein the shrink means further comprises a pneumatically biased dancer roller to tension the aligned planar yarns.
- 53. A beam winder comprising:
a framework; first and second beams; and a beam turntable, the beam turntable being (i) rotateably coupled to the framework through an axle and (ii) adapted to support the first and second beams; wherein rotation of the turntable moves the first beam from a first position to another position while simultaneously moving the second beam into the first position, the first position positioning one of the first and second beams to receive an aligned yarn sheet.
- 54. The beam winder of claim 53, further comprising a lift mechanism coupled with the axle to raise and lower the turntable between extended and retracted positions.
- 55. The beam winder of claim 53, further comprising a motor assembly attached with the framework for rotating one of the first and second beams when the beam is received in the first position.
- 56. The beam winder of claim 55, wherein the motor assembly comprises an electric motor and a magnetic clutch, the magnetic clutch having an clutch drive shaft with a fitting for connecting with one of the first and second beams when the beam is in the first position.
- 57. The beam winder of claim 54, further comprising an electric motor attached to the framework and a magnetic clutch rotationally coupled with a motor drive shaft of the electric motor, the magnetic clutch having a clutch drive shaft with a fitting, the fitting being (i) coupled with one of the first and second beams when the beam is in the first position and the turntable is in the retracted position, and (ii) uncoupled with one of first and second beams when the beam is in the first position and the turntable is in the extended position.
- 58. The beam winder of claim 54, wherein the lift mechanism comprises a pneumatic cylinder.
- 59. The beam winder of claim 53, further comprising one or more additional beams, wherein the rotation of the turntable moves the one or more additional beams from one position other than the first position to another position other than the first position.
- 60. A method of setting up a beam winder, the method comprising:
loading a plurality of spools of yarn onto a plurality of spool holders; feeding ends of a plurality of yarns from the plurality of spools through a plurality of tubes by inducing an air flow in interiors of the plurality of tubes threading the ends of the plurality of yarns through a plurality of openings in the comb; and attaching the plurality of yarns to a beam.
- 61. The method of claim 60, wherein said feeding the ends of a plurality of yarns from the plurality of spools through a plurality of tubes, and said threading the ends of the plurality of yarns through a plurality of openings in the comb are accomplished in a single operation.
- 62. The method of claim 60, further comprising guiding the ends of the plurality of yarns around a plurality of rollers.
- 63. The method of claim 62, wherein one or more of the plurality of rollers are heated.
- 64. The method of claim 62, wherein at least one roller of the plurality of rollers is coupled with a motor for rotating the at least one roller.
- 65. A beam winder comprising:
a comb, the comb having a plurality of openings passing therethrough, each opening being offset from each other opening of the plurality of openings in one direction; a beam drive mechanism adapted to couple with a beam and rotate the beam; a first set of one or more rollers located between the comb and the beam drive mechanism; a second set of one or more rollers located between the first set and the beam drive mechanism; at least one heater, the heater being (i) maintained at an elevated temperature and (ii) located at least at one of a first location between the first set and the second set and a second location within the second set of one or more rollers; and one or more stepper motors for rotating the first set at a first speed and for rotating the second set at a second speed, the first speed being faster than the second speed.
- 66. The beam winder of claim 65, wherein the one or more stepper motors comprises a first stepper motor to rotate the first set and a second stepper motor to rotate the second set.
- 67. The beam winder of claim 65 further comprising a controller wherein the controller is electronically coupled to the one or more stepper motors to control the speed of the first and second sets.
- 68. The beam winder of claim 65, wherein the at least one heater is contained within one or more rollers of the second set.
- 69. The beam winder of claim 65, further comprising a tensioning mechanism located between the first and second sets, the tensioning mechanism being adapted for tensioning a sheet of aligned parallel yarns.
- 70. The beam winder of claim 69, wherein the tensioning mechanism comprises a dancer roller, the dancer roller being moveable relative to one of at least one roller of the first set and at least one roller of the second set between one position closer to the at least one roller and another position farther away from the at least one roller.
- 71. The beam winder of claim 70, wherein the dancer roller is pivotally coupled to framework of the beam winder through one or more cantilever arms.
- 72. The beam winder of claim 71, wherein the tensioning mechanism further comprises a pneumatic cylinder pivotally coupled with (i) one of the one or more cantilever arms and the dancer roller and (ii) the framework to apply a biasing force to the sheet.
- 73. The beam winder of claim 70, wherein (i) the dancer roller moves away from the at least one roller when the first speed is too great relative to the second speed.
- 74. The beam winder of claim 70, wherein (i) the dancer roller moves towards the at least one roller when the first speed is too low relative to the second speed.
- 75. The beam winder of claim 65, wherein a sheet of aligned parallel yarns passes through and around the first and second sets, and wherein a level of tension in the sheet as it passes through the first set is substantially the same as a level of tension in the sheet as it passes through the second set.
- 76. The beam winder of claim 65, further comprising a third set of one or more rollers, at least one roller of the third set being maintained substantially at ambient temperature or cooler, the third set of being located between the second set and the beam drive mechanism.
- 77. The beam winder of claim 76, wherein the at least one roller of the third set is cooled through a flow of liquid through a hollow interior of the roller.
- 78. The beam winder of claim 76, wherein a surface of at least one roller of the third set is textured for gripping yarns of a sheet of aligned parallel yarns as it passes over the surface.
- 79. The beam winder of claim 65, further comprising a third set of one or more rollers, at least one roller of the third set having a textured surface for gripping yarns of a sheet of aligned parallel yarns as the sheet passes over the textured surface, the third set being located between the second set and the beam drive mechanism.
- 80. The beam winder of claim 79, wherein at least one roller of the third set is coupled with the beam drive mechanism for rotating the at least one roller of the third set at substantially the second speed.
- 81. The beam winder of claim 65, wherein the beam drive mechanism comprises a drive motor and a clutch, the clutch being rotateably coupled with a shaft of the drive motor.
- 82. The beam winder of claim 81, wherein the clutch is a magnetic clutch adapted for applying a specified level of torque at a specified rotational speed.
- 83. The beam winder of claim 81, wherein the clutch is rotateably coupled to the drive motor through pulley wheels and a drive belt.
- 84. The beam winder of claim 79, wherein the level of tension of the sheet as the sheet passes between the third set and a beam that is coupled to the beam drive mechanism is greater than the level of tension as the sheet passes around the second set.
- 85. The beam winder of claim 81, further comprising a controller, the controller being operationally coupled with the drive motor and the clutch for transmitting signals to (i) the drive motor to vary the speed of the drive motor, and (ii) the clutch to vary the amount of clutch slippage.
- 86. The beam winder of claim 85, further comprising a tensiometer located between the third set and the beam drive mechanism for measuring the level of tension in a sheet of parallel align yarns as the sheet passes from the third set to a beam that is coupled to the beam drive mechanism, the controller being (i) coupled to the tensiometer to receive signals from the tensiometer, and (ii) responsive to the signals by varying the clutch slippage to maintain a specified level of tension in the yarn sheet between the third set and the beam.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application is a nonprovisional and claims priority to U.S. Provisional Application Serial No. 60/385,694 (the '694 application), filed Jun. 3, 2002. The '694 application is hereby incorporated by reference as though fully set forth herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60385694 |
Jun 2002 |
US |