Claims
- 1. A mechanism for guiding pay out of a monofilament strand, comprising:
- a bobbin for receiving a mono-filament strand wound on the bobbin in a helix, the bobbin having a longitudinal axis;
- outer guide means including an inward facing guide surface for guiding the mono-filament as it leaves the bobbin, the outer guide means further including a mono-filament strand pay out outlet; and
- inner guide means cooperating with the outer guide means and having an outward facing guide surface including a surface of revolution about the longitudinal bobbin axis for guiding the mono-filament strand as it leaves the bobbin between the inner guide means and the outer guide means, and through the pay out outlet, whereby the mono-filament strand pay out occurs such that the mono-filament strand does not contact or slide along any surface with a radius which would permit sharp bend radii in the mono-filament strand sufficiently to produce bending stresses and angular accelerations exceeding known material limits of the mono-filament strand, wherein the surface of revolution comprises:
- an arc on the outward facing surface of the inner guide means extending into a recessed end of the bobbin at an end nearest the outlet, the end of the bobbin receiving the adjacent arc portion of the surface of revolution; and
- the arc extending to a tangent point on an imaginary line spaced from the outer surface of the outer layer of mono-filament strand wound on the bobbin.
- 2. A mechanism as set forth in claim 1 wherein the imaginary line is spaced, at the tangent point, an optimum distance from and parallel to the outer layer of the mono-filament strand wound on the bobbin.
- 3. A mechanism as set forth in claim 2 wherein the optimum distance is greater than or equal to approximately two strand diameters.
- 4. A mechanism as set forth in claim 1 wherein the inner guide means comprises a radial transition portion of the arc extending past the tangent point and proximate the outlet and spaced away from the adjacent outer guide means portion.
- 5. A mechanism as set forth in claim 4 wherein the radial transition portion maintains an optimum spacing from an adjacent portion of the outer guide means.
- 6. A mechanism as set forth in claim 5 wherein the optimum spacing is approximately between five and fifteen strand diameters, inclusive.
- 7. A mechanism as set forth in claim 1 wherein the outer guide means comprises a transition portion providing a smooth transition between an outer guide means bobbin portion, which is parallel to the outer layer of wound fiber on the bobbin and extends to a point near and adjacent to the tangent point of the inner guide means, and a tangential arc portion, adjacent to and extending past the tangent point on the inner guide means towards the outlet.
- 8. A mechanism as set forth in claim 7 wherein the outer guide means transition portion transforms an inward facing surface of the outer guide means from the transition portion to the tangential arc portion and is spaced an optimum distance, measured in the number of strand diameters, from the inner guide means tangent portion, the distance being sufficient to restrain a helix formed as the fiber unwinds from the bobbin within an acceptable instantaneous longitudinal radius to reduce stresses and reduce the helix diameter.
- 9. A mechanism as set forth in claim 8 wherein the optimum distance extends past the end of the inner guide means and at least to an inflection point on the outer guide means inward facing surface where the outer guide means inward facing surface converts to a curve having the same, although opposite, curve radius.
- 10. A mechanism as set forth in claim 9 wherein the optimum spacing is approximately from five to fifteen strand diameters, inclusive.
- 11. A mechanism as set forth in claim 1 wherein the outer guide means comprises an inward facing surface having a first radius curve and a second opposite radius curve having the same radius as the first radius curve but measured from the opposite side of a tangent line, with the change in curve radius direction defined by an intermediate inflection point, the inflection point also being a common tangent point to form the tangent line.
- 12. A mechanism as set forth in claim 11 wherein the opposite radius curve defines a tangent to the bobbin longitudinal axis at an optimum distance greater than a desired helix diameter of the strand as the strand exits the payout outlet.
- 13. A mechanism as set forth in claim 12 wherein the opposite radius curve extends to further define an exit means.
- 14. A mechanism as set forth in claim 13 wherein the exit means further comprises an exit cone having the radius of the opposite radius curve, whereby the exit cone provides for desired strand pay out and any expected misalignment between the bobbin and strand being dispensed.
- the arc remaining tangent to an imaginary line spaced from the outer surface of the outer layer of mono-filament strand wound on the bobbin, the arc spaced at the tangent point an optimum distance from the outer layer of the fiber optic cable helix wound on the bobbin.
- 15. A mechanism for dispensing a fiber optic cable between two objects experiencing relative movement, the mechanism comprising:
- a bobbin, the bobbin having a longitudinal axis through the bobbin center;
- a length of fiber optic cable for providing a data link between a first object and a second object, at least a portion of the length of fiber optic cable wound in a helical pattern on the bobbin;
- outer guide means including an inward facing guide surface for guiding the fiber optic cable as it leaves the bobbin, the outer guide means further including a fiber optic cable pay out outlet; and
- inner guide means cooperating with the outer guide means and having an outward facing guide surface including a surface of revolution about the longitudinal bobbin axis for guiding the fiber optic cable as it leaves the bobbin between the inner guide means and the outer guide means, and through the pay out outlet, whereby the fiber optic cable pay out occurs such that the fiber optic cable does not contact or slide along any surface with a radius which would permit sharp bend radii in the fiber optic cable sufficient to produce bending stresses and angular accelerations exceeding known material limits of fiber optic cable suitable for use as a data link;
- the bobbin at an end nearest the pay out outlet, receiving the adjacent arc portion of the surface of revolution; and
- the arc remaining tangent to an imaginary line spaced from the outer surface of the outer layer of mono-filament strand wound on the bobbin, the arc spaced at the tangent point an optimum distance from the outer layer of the fiber optic cable helix wound on the bobbin.
- 16. A mechanism as set forth in claim 15 wherein the optimum distance is greater than or equal to approximately two optic fiber diameters.
- 17. A mechanism set forth in claim 15 wherein the inner guide means comprises:
- a radial transition portion of the arc extending past the tangent point on the outward facing surface and proximate the outlet and spaced away from the adjacent outer guide means portion, the radial transition portion maintains an optimum spacing from an adjacent portion of the outer guide means.
- 18. A mechanism as set forth in claim 17 wherein the optimum spacing is approximately between five and fifteen optical fiber diameters, inclusive.
- 19. A mechanism set forth in claim 15 wherein the outer guide means comprises:
- an outer guide means transition portion providing a smooth transition between an outer guide means bobbin portion and a tangential arc portion;
- the outer guide means transition portion transforms and inward facing surface of the outer guide means from the transition portion to the tangential arc portion and spaced an optimum distance, measured in number of optical fiber diameters, from the inner guide means tangent portion; and
- the optimum distance extending past the end of the inner guide means and at least to an inflection point on the outer guide means inward facing surface where the outer guide means inward facing surface converts to a curve having the same, although opposite, curve radius, and the optimum distance being sufficient to restrain a helix formed as the fiber unwinds from the bobbin within an acceptable instantaneous longitudinal radius to reduce stresses and reduce the helix diameter.
- 20. A mechanism as set forth in claim 19 wherein the optimum distance is approximately from five to fifteen optical fiber diameters, inclusive.
- 21. A mechanism as set forth in claim 15 wherein the outer guide means comprises:
- an inward facing surface having a first radius curve and a second opposite radius curve having the same radius with the change in curve radius direction defined by an intermediate inflection point;
- the opposite radius curve defines a tangent to the bobbin longitudinal axis at an optimum distance greater than a desired strand exit helix diameter;
- the opposite radius curve extending through to further define an exit means; and
- the exit means further comprises an exit cone having the radius of the opposite radius curve, whereby the exit cone provides for desired optic fiber pay out and any expected misalignment between the bobbin and the optic fiber being dispensed.
- 22. A mechanism as set forth in claim 15 wherein the optic fiber pay out outlet further includes an optic fiber deflection means for deflecting the exiting optic fiber.
- 23. A mechanism as set forth in claim 22 wherein the optic fiber deflection means includes a deflection surface provided as an effective extension of the pay out outlet.
Parent Case Info
This is a continuation of application Ser. No. 07/559,788 filed on Jul. 30, 1990, now abandoned.
US Referenced Citations (9)
Foreign Referenced Citations (1)
Number |
Date |
Country |
2249820 |
May 1992 |
GBX |
Continuations (1)
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Number |
Date |
Country |
Parent |
559788 |
Jul 1990 |
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