Claims
- 1. A trapezoidal bobbin for providing a foundation for a coil of optical fiber, comprising:
an elongated hub including a longitudinal axis, a first end, a second end and an exterior surface, the hub being symmetrically disposed about the longitudinal axis; an upper flange disposed at the first end of the hub, the upper flange including an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle with respect to the longitudinal axis; a lower flange disposed at the second end of the hub, the lower flange including an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle with respect to the longitudinal axis.
- 2. A trapezoidal bobbin according to claim 1, wherein the angle between the interior surface of the upper flange and the longitudinal axis is substantially 60 degrees.
- 3. A trapezoidal bobbin according to claim 1, wherein the angle between the interior surface of the lower flange and the longitudinal axis is substantially 60 degrees.
- 4. A trapezoidal bobbin according to claim 1, wherein the upper flange and the lower flange are fixedly attached to the cylindrical hub.
- 5. A trapezoidal bobbin according to claim 1, wherein the cylindrical hub, the upper flange and the lower flange form a unitary component.
- 6. A trapezoidal bobbin according to claim 5, wherein the unitary component includes a substantially homogenous material.
- 7. A trapezoidal bobbin according to claim 1, wherein the upper flange is symmetrically disposed about the longitudinal axis.
- 8. A trapezoidal bobbin according to claim 1, wherein the lower flange is symmetrically disposed about the longitudinal axis.
- 9. A trapezoidal bobbin according to claim 1, wherein a length of the exterior surface of the hub, measured from the interior surface of the upper flange to the interior surface of the lower flange, is substantially equal to an integral number of diameters of an optical fiber.
- 10. A trapezoidal bobbin according to claim 1, wherein the composition of the hub, the upper flange and the lower flange includes a substance having a thermal expansion characteristic similar to an optical fiber to be wound on the trapezoidal bobbin.
- 11. A trapezoidal bobbin according to claim 10, wherein the substance includes plastic.
- 12. A trapezoidal bobbin according to claim 10, wherein the substance includes a composite material.
- 13. A trapezoidal optical fiber coil for use in a fiber optic gyroscope, comprising:
a bobbin having (i) a cylindrical hub characterized by a longitudinal axis, a first end, a second end and an exterior surface, the hub being symmetrically disposed about the longitudinal axis, (ii) an upper flange symmetrically disposed about the longitudinal axis at the first end of the hub, the upper flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis, and (iii) a lower flange symmetrically disposed about the longitudinal axis at the second end of the hub, the lower flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis; a predetermined length of optical fiber wound about the bobbin in succeeding layers extending from the longitudinal axis in a radial direction, wherein the first layer is disposed upon the exterior surface of the hub in an integer number of turns of the optical fiber, and each subsequent layer having an integer number of turns greater than the next preceding layer.
- 14. A trapezoidal optical fiber coil according to claim 13, wherein the upper flange and the lower flange are fixedly attached to the cylindrical hub.
- 15. A trapezoidal optical fiber coil according to claim 13, wherein the cylindrical hub, the upper flange and the lower flange form a unitary component.
- 16. A trapezoidal optical fiber coil according to claim 15, wherein the unitary component includes a substantially homogenous material.
- 17. A trapezoidal optical fiber coil according to claim 13, wherein the upper flange is symmetrically disposed about the longitudinal axis.
- 18. A trapezoidal optical fiber coil according to claim 13, wherein the lower flange is symmetrically disposed about the longitudinal axis.
- 19. A trapezoidal optical fiber coil according to claim 13, wherein a length of the exterior surface of the hub, measured from the interior surface of the upper flange to the interior surface of the lower flange, is substantially equal to an integral number of diameters of an optical fiber.
- 20. A trapezoidal optical fiber coil according to claim 13, wherein the composition of the hub, the upper flange and the lower flange includes a substance having a thermal expansion characteristic similar to an optical fiber to be wound on the trapezoidal bobbin.
- 21. A trapezoidal optical fiber coil according to claim 20, wherein the substance includes plastic.
- 22. A trapezoidal optical fiber coil according to claim 20, wherein the substance includes a composite material.
- 23. A trapezoidal optical fiber coil according to claim 13, wherein the optical fiber, viewed in a plane intersecting the longitudinal axis, is arranged in a quadrupolar pattern.
- 24. A trapezoidal optical fiber coil according to claim 13, further including a layer of epoxy disposed between the first layer of optical fiber and the exterior surface of the hub.
- 25. A trapezoidal optical fiber coil according to claim 11, further including a layer of epoxy disposed between each adjacent layer of optical fiber.
- 26. A trapezoidal bobbin for providing a foundation about which an optical fiber is wound, comprising:
hub means for providing an elongated form for winding optical fiber, the hub means characterized by a longitudinal axis, a first end, a second end and an exterior surface, the hub being symmetrically disposed about the longitudinal axis; upper flange means for terminating the first end of the hub, the upper flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis; lower flange means for terminating the second end of the hub, the lower flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis.
- 27. A trapezoidal bobbin for providing a foundation about which an optical fiber is wound, comprising:
a cylindrical hub characterized by a longitudinal axis, a first end, a second end and an exterior surface, the hub being symmetrically disposed about the longitudinal axis; an upper flange disposed at the first end of the hub, the upper flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis; a lower flange disposed at the second end of the hub, the lower flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis; wherein the cylindrical hub, the upper flange and the lower flange form a unitary component, and a length of the exterior surface of the hub, measured from the interior surface of the upper flange to the interior surface of the lower flange, is substantially equal to an integral number of diameters of an optical fiber
- 28. A method of winding a optical fiber about a trapezoidal bobbin having (i) a cylindrical hub characterized by a longitudinal axis, a first end, a second end and an exterior surface, the hub being symmetrically disposed about the longitudinal axis, (ii) an upper flange symmetrically disposed about the longitudinal axis at the first end of the hub, the upper flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis, and (iii) a lower flange symmetrically disposed about the longitudinal axis at the second end of the hub, the lower flange characterized by an exterior surface being substantially perpendicular to the longitudinal axis and facing away from the hub, and an interior surface forming an angle of substantially 60 degrees with respect to the longitudinal axis, comprising:
winding, via a first feed spool, a first layer of optical fiber about the hub from the upper flange to the lower flange, such that the first layer includes a first integer number of turns of the optical fiber; moving the first feed spool in a direction parallel to the longitudinal axis to a location away from the first layer of optical fiber; winding, via a second feed spool, a second layer of optical fiber about the hub overlaying the first layer of optical fiber, from the upper flange to the lower flange, such that the second layer includes a second integer number of turns being equal to one more than the first integer number of turns; winding, via the second feed spool, a third layer of optical fiber about the hub on top of the second layer of optical fiber, from the lower flange to the upper flange, such that the second layer includes a third integer number of tuns being equal to one more than the second integer number of turns; moving the second feed spool in a direction parallel to the longitudinal axis to a location away from the third layer of optical fiber; winding, via the first feed spool, a fourth layer of optical fiber about the hub on top of the third layer of optical fiber, from the lower flange to the upper flange, such that the fourth layer includes a fourth integer number of turns being equal to one more than the third integer number of turns.
- 29. A method according to claim 28, further including repeating, after winding the fourth layer of optical fiber, the winding of the first layer, second layer, third layer and fourth layer, so as to apply at least two sets of four layers on the trapezoidal bobbin.
- 30. A method according to claim 28, further including arranging the layers of optical fiber so as to create a quadrupolar pattern when the layers are viewed in a plane intersecting the longitudinal axis.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/290,042 entitled “TRAPEZOIDAL COIL FOR FIBER OPTIC GYROSCOPES” filed on May 11, 2001, the disclosure of which is entirely incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60290042 |
May 2001 |
US |