Claims
- 1. A device adapted to be coupled into an imaging device, comprising:a tubular sleeve, said sleeve being adapted to rotate bidirectionally; a shaft rotatably inserted in said sleeve; a first end cap coupled to said shaft at a first end, said first end cap having an inner tunnel adapted to allow said shaft to pass through and having a center section of generally hexagonal shape on outer periphery; a second end cap coupled to said shaft at a second end, opposite to the first, said second end cap having an inner tunnel adapted to allow said shaft to pass through and having a center section of generally cylindrical shape on the outer periphery; a torsion mechanism positioned in said sleeve and encircling said shaft; and a slip mechanism positioned in said sleeve and coupled to said torsion mechanism, said slip mechanism being adapted to cause said torsion mechanism to rotate freely in a first rotational direction relative to said tubular sleeve and being adapted to cause said torsion mechanism to resist rotation in a second rotational direction, opposite to the first, until a torsion in the torsion mechanism is increased to reach a predetermined threshold value, said slip mechanism maintaining the torsion of the torsion mechanism at approximately the threshold value when the torsion reaches the threshold value.
- 2. The device of claim 1, wherein said first and second end caps are adapted to be inserted into respective receptive slots located in the imaging device, the receptive slots respectively having matching shapes to receive the center sections of said first and second end caps to prevent said first end cap from rotating once the first end cap is mounted thereon and to prevent said second end cap from being inserted into the receptive slot designated for the first end cap.
- 3. The device of claim 1, further comprising:a first roller bearing inserted inside said first end cap, said first roller bearing encircling said shaft to provide a low friction bidirectional rotation to said shaft; and a second roller bearing inserted inside said second end cap, said second roller bearing encircling said shaft to provide a low friction bidirectional rotation to said shaft.
- 4. The device of claimed 1, wherein said torsion mechanism comprises a coil spring encircling said shaft, said coil spring having a first bent extrusion at a first end coupled to said first end cap.
- 5. The device of claim 1, further comprising a pair of elastic holding means respectively secured to the center of an outer surface of said tubular sleeve at opposite sides, said elastic holding means being adapted to hold a medium roll encircling said tubular sleeve.
- 6. The device of claim 5, wherein said elastic holding means respectively comprise at least one metal plate spring securely mounted on respective recesses on the surface of said tubular sleeve.
- 7. The device of claim 1, further comprising:two sets of notches respectively located on the outer surface of said tubular sleeve at opposite ends; and two sets of indicators respective located on the outer surface of said tubular sleeve and positioned adjacent to said sets of notches for indicative purposes.
- 8. The device of claim 7, further comprising a pair of retainers wherein each of said pair of retainers respectively comprises a clip spring on an inner wall of a center hole of the respective retainer to allow said retainers to be mounted on said tubular sleeve by snapping or rotating said pair of retainers on the respective sets of notches.
- 9. A device adapted to be coupled into an imaging device, comprising:a tubular sleeve, said sleeve being adapted to rotate bidirectionally; a shaft rotatably inserted in said sleeve; a torsion mechanism positioned in said sleeve and encircling said shaft; a slip mechanism positioned in said sleeve and coupled to said torsion mechanism, said slip mechanism being adapted to cause said torsion mechanism to rotate freely in a first rotational direction relative to said tubular sleeve and being adapted to cause said torsion mechanism to resist rotation in a second rotational direction, opposite to the first, until a torsion in the torsion mechanism is increased to reach a predetermined threshold value, said slip mechanism maintaining the torsion of the torsion mechanism at approximately the threshold value when the torsion reaches the threshold value; a clutch mechanism coupled to said torsion mechanism and encircling said shaft, said clutch mechanism being adapted to allow said torsion mechanism to rotate freely in the first rotational direction and to resist in the second rotational direction; a slip means coupled to said clutch mechanism and affixed to said shaft, said slip means being adapted to prevent the torsion of said torsion mechanism to increase over the threshold value; a slip clutch encircling said shaft, said slip clutch being adapted to resist rotation in the second rotational direction and to rotate freely in the first rotational direction; and a clutch sleeve securely coupled to said torsion mechanism at a first end and encircling said slip clutch, said clutch sleeve being adapted to rotate freely in the first rotational direction and to resist rotation in the second rotational direction by said slip clutch.
- 10. The device of claim 9, wherein said slip means comprises:a compression means encircling said shaft, said compression being adapted to determine the threshold value of the tension of the torsion mechanism; first and second locking collars, said first locking collar being coupled to said clutch mechanism at a second end, said first and second locking collars encircling said shaft and being adapted to lock said shaft; and first and second felt bushings respectively coupled to said first and second locking collars.
- 11. The device of claim 10, wherein said slip means further comprises:first and second washers respectively coupled to said compression means at opposite ends, said first washer being coupled to said second felt bushing; and first and second support bearings, said first and second support bearings being securely coupled to first and second inner circular ribs of said tubular sleeve respectively wherein said first support bearing is pressed against said first felt bushing and said second support bearing is pressed against said second washer.
- 12. The device of claim 10, wherein said compressing means comprises a compression spring encircling said shaft.
- 13. A tension system adapted to be incorporated into an imaging device, comprising:a support frame adapted to be positioned within the imaging device, said support frame having first and second slots respectively located at opposite ends of said support frame wherein said first slot has a hexagonal contour at its receptive bottom and said second slot has a round contour at its receptive bottom; and a torsion roller, said torsion roller having first and second end caps wherein a portion of said first end cap has a keyed periphery adapted to be inserted into the first slot and a portion of said second end cap has a round periphery adapted to be inserted into the second slot and the first slot is small enough to not accept the second end cap, said torsion roller being adapted into be rotated freely in a first rotational direction and being adapted to resist rotation in a second rotational direction, opposite to the first, until a torsion within said torsion roller is increased to reach a predetermined threshold value.
- 14. The torsion system of claim 13, wherein said torsion roller comprises:a tubular sleeve, said tubular sleeve being adapted to rotate bidirectionally; a shaft rotatably inserted through said sleeve; a torsion mechanism positioned in said sleeve and encircling said shaft near a first end, said torsion mechanism being securely coupled to the first end cap at a first end; a clutch mechanism positioned in said tubular sleeve, said clutch mechanism being securely coupled to said torsion mechanism and being adapted to cause said torsion mechanism to rotate freely in the second rotational direction relative to said tubular sleeve and to resist rotation in the first rotational direction; a compressing mechanism positioned in said tubular sleeve and encircling said shaft near a second end, opposite to the first, said compression mechanism being adapted to define the threshold torsion value; and a slip mechanism coupled to said compression mechanism and to said clutch mechanism, said slip mechanism being adapted to cause said clutch mechanism and said torsion mechanism to rotate in the first rotational direction when the torsion of the torsion mechanism reaches the threshold value.
- 15. The torsion system of claim 14, wherein said slip mechanism comprises:first and second locking collars, said first locking collar being coupled to said clutch mechanism, said first and second locking collars encircling said shaft and being adapted to lock said shaft; first and second felt bushings respectively coupled to said first and second locking collars; first and second washers respectively coupled to said compressing mechanism at opposite ends, said first washer being coupled to said second felt bushing; and first and second support bearings, said first and second support bearings being securely coupled to first and second inner circular ribs of said tubular sleeve respectively wherein said first support bearing is pressed against said first felt bushing and said second support bearing is pressed against said second washer.
- 16. The torsion system of claim 14, further comprising:a first roller bearing inserted inside said first end cap, said first roller bearing encircling said shaft to provide a low friction bidirectional rotation to said shaft; and a second roller bearing inserted inside said second end cap, said second roller bearing encircling said shaft to provide a low friction bidirectional rotation to said shaft.
- 17. The torsion system of claim 14, further comprising:a pair of elastic holding means respectively secured to the center of an outer surface of said tubular sleeve at opposite sides, said elastic holding means being adapted to hold a medium roll encircling said tubular sleeve; two sets of notches respectively located on the outer surface of said tubular sleeve at opposite ends; and two sets of indicators respective located on the outer surface of said tubular sleeve and positioned adjacent to said sets of notches for indicative purposes.
- 18. The torsion system of claim 17, further comprising a pair of retainers, each of said pair of retainers respectively comprising a snap spring on an inner wall of a center hole of the respective retainer to allow said retainers to be mounted on said tubular sleeve by snapping or rotating said pair of retainers on the respective sets of notches.
- 19. A device adapted to be coupled into an imaging device, comprising:a tubular sleeve, said sleeve being adapted to rotate bidirectionally; a shaft rotatably inserted in said sleeve; a torsion mechanism positioned in said sleeve and encircling said shaft; and a slip means positioned in said sleeve and coupled to said shaft, said slip mechanism being adapted to cause said torsion mechanism to rotate freely in a first rotational direction relative to said tubular sleeve and to resist rotation in a second rotational direction, opposite to the first, until torsion in the torsion mechanism is increased to reach a predetermined threshold value, said slip means maintaining the torsion of the torsion mechanism at approximately the threshold value when the torsion reaches the threshold value and being adapted solely to prevent the torsion of said torsion mechanism from increasing over the threshold value independent of the rate of accumulation of torsion in the torsion mechanism.
Parent Case Info
This application is based upon provisional patent application Ser. No. 60/106,895 which was filed in the United States Patent and Trademark Office on Nov. 3, 1998.
US Referenced Citations (12)
Provisional Applications (1)
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Number |
Date |
Country |
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60/106895 |
Nov 1998 |
US |