Claims
- 1. A vibrational device for use with a papermaking machine having a wire, the vibrational device comprising:
at least one vibration-inducing mechanism; a vibrational head coupled to the at least one vibration-inducing mechanism and movable to impart a vibrational force to the wire, the vibrational head having a support and a vibrational element coupled to the support and positionable adjacent the wire; and at least one dampener coupled between the vibration-inducing mechanism and the vibrational head.
- 2. The vibrational device of claim 1, wherein the at least one dampener comprises a conduit containing fluid.
- 3. The vibrational device of claim 2, wherein fluid pressure in the conduit is adjustable.
- 4. The vibrational device of claim 1, wherein the at least one dampener is located between the vibrational element and the support of the vibrational head.
- 5. The vibrational device of claim 4, wherein the at least one dampener comprises a conduit containing fluid.
- 6. The vibrational device of claim 1, wherein the at least one dampener comprises elastomeric material.
- 7. The vibrational device of claim 1, wherein the vibrational element is slidably coupled to the support.
- 8. The vibrational device of claim 7, wherein the support includes at least one T-shaped member by which the vibrational element is coupled to the support.
- 9. The vibrational device of claim 1, wherein the vibrational element is coupled to first and second supports positioned end-to-end in a cross-machine direction of the papermaking machine, each support coupled to and vibrated by a respective vibration-inducing mechanism.
- 10. The vibrational device of claim 9, wherein a machine-direction width of the vibrational element is greater than a machine-direction width of each one of the first and second supports.
- 11. The vibrational device of claim 9, wherein the at least one dampener extends in the cross-machine direction along at least part of each of the first and second supports.
- 12. The vibrational device of claim 9, wherein:
the first and second support members have a first combined length in a cross-machine direction of the wire; and the at least one dampener extends along at least a majority of the first combined length of the first and second support members.
- 13. The vibrational device of claim 9, wherein at least one of the vibration-inducing mechanisms is controllable independently of another of the vibration-inducing mechanisms to adjust vibrational forces between different supports.
- 14. The vibrational device of claim 1, further comprising a feedback control system adapted to adjust the frequency of the at least one vibration-inducing mechanism.
- 15. The vibrational device of claim 14, wherein:
the vibrational head includes at least two supports positioned end-to-end in a cross-machine direction; and the feedback control system includes a controller and at least two accelerometers each coupled to a respective support of the at least two supports.
- 16. The vibrational device of claim 1, wherein the at least one vibration-inducing mechanism pneumatically powered.
- 17. The vibrational device of claim 1, wherein:
the vibrational head further includes a secondary support; and the at least one dampener is coupled between the support and the secondary support.
- 18. The vibrational device of claim 17, wherein the support has at least one connector positioned for coupling the vibrational element to the support.
- 19. The vibrational device of claim 18, wherein the at least one connector establishes a sliding connection between the vibrational head and the support.
- 20. The vibrational device of claim 17, wherein at least one of the vibrational element and the secondary support includes a recess into which the at least one dampener is received.
- 21. The vibrational device of claim 20, wherein the at least one dampener is secured within the recess.
- 22. A method of forming a web, comprising:
discharging stock flow from a headbox onto a wire, the stock flow including water and fibers; transferring a vibrational force produced by at least one vibration-inducing mechanism to the wire by contacting the wire with a vibrational head; dampening the vibrational head by coupling at least one dampener between the vibrational head and the at least one vibration-inducing mechanism; and draining at least some of the water from the stock flow to cause the fibers to form a web.
- 23. The method of claim 22, further comprising adjusting a pressure in the at least one dampener.
- 24. The method of claim 22, wherein the vibrational head includes a vibrational element and at least two support members aligned end-to-end in a cross-machine direction, each support member having at least one vibration-inducing mechanism coupled thereto; the method further comprising adjusting the at least one dampener until the phase of the vibrational force generated by the vibration-inducing mechanisms is substantially constant in a cross-machine direction of the wire.
- 25. The method of claim 22, wherein the vibrational head includes a vibrational element and at least two support members aligned end-to-end in a cross-machine direction, each support member having at least one vibration-inducing mechanism coupled thereto; the method further comprising adjusting the at least one dampener until the frequency of the vibrational force generated by the vibration-inducing mechanisms is substantially constant in a cross-machine direction of the wire.
- 26. The method of claim 22, and further comprising controlling a frequency of the vibrational force generated by the at least one vibration-inducing mechanism with a feedback control system, the feedback control system receiving signals from the vibrational head representative of at least one of frequency and amplitude of vibrational head movement.
- 27. A vibrational device for use with a papermaking machine having a wire, the vibrational device comprising:
first and second vibration-inducing mechanisms; and a vibrational head including a vibrational element and first and second supports, the first and second supports coupled to and driven by the first and second vibration-inducing mechanisms, respectively, the vibrational element coupled to and driven by the first and second vibration-inducing mechanisms via the first and second supports to transmit vibrational force to the wire.
- 28. The vibrational device of claim 27, further comprising at least one dampener coupled adjacent at least one of the vibrational element and the first and second supports.
- 29. The vibrational device of claim 28, wherein the at least one dampener is a conduit containing fluid.
- 30. The vibrational device of claim 29, wherein fluid pressure in the conduit is adjustable.
- 31. The vibrational device of claim 27, wherein the vibrational element spans across a seam between the first and second supports.
- 32. The vibrational device of claim 31, wherein the vibrational element spans across at least a majority of each of the first and second supports.
- 33. The vibrational device of claim 28, wherein the at least one dampener comprises elastomeric material.
- 34. The vibrational device of claim 1, wherein the vibrational element is slidably coupled to the first and second supports.
- 35. The vibrational device of claim 34, wherein each of the first and second supports includes at least one T-shaped member by which the vibrational element is coupled to the first and second supports.
- 36. The vibrational device of claim 28, wherein:
the first and second supports extend a first combined length in the cross-machine direction; and the at least one dampener extends at least a second length in the cross machine direction, the second length being substantially the same length as the first combined length.
- 37. The vibrational device of claim 27, wherein the first vibration-inducing mechanism is controllable independently of the second vibration-inducing mechanism to adjust vibrational forces between the first and second supports.
- 38. The vibrational device of claim 27, further comprising a feedback control system adapted to adjust the frequency of the first and second vibration-inducing mechanisms.
- 39. The vibrational device of claim 38, wherein:
the first and second supports are positioned end-to-end in a cross-machine direction; and the feedback control system includes a controller and at least two accelerometers coupled to the first and second supports.
- 40. The vibrational device of claim 27, wherein the at least one vibration-inducing mechanism is pneumatically powered.
- 41. The vibrational device of claim 27, wherein at least one dampener is coupled between the vibrational element and connectors of the first and second supports.
- 42. The vibrational device of claim 27, further comprising a secondary support coupled to the vibrational head, wherein at least one dampener is coupled between the support and the secondary support.
- 43. The vibrational device of claim 42, wherein at least one of the vibrational element and the secondary support includes a female recess into which the at least one dampener is received.
- 44. The vibrational device of claim 43, wherein the at least one dampener is secured within the recess.
- 45. The vibrational device of claim 27, wherein a machine-direction width of the vibrational element is greater than a machine-direction width of each one of the first and second supports.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 10/027,507 filed on Dec. 21, 2001, the entire disclosure of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10027507 |
Dec 2001 |
US |
Child |
10646367 |
Aug 2003 |
US |