Claims
- 1. An optical signal transmission device to connect optical signal emitters and detectors comprising:
a multi-path structure having at least three exterior faces, the multi-path structure having at least a first and a second CFBS, each of the CFBSs having at least a first, second, and third faces, at least the first and second faces being in optical communication with one another; the first face of the first CFBS forms at least a portion of the first exterior face of the multi-path structure and the second face of the first CFBS forms at least a portion of one of the second and third exterior faces of the multi-path structure to provide optical communication between one of the first and second and the first and third exterior faces of the multi-path structure; the first face of the second CFBS forms at least a portion of the second exterior face of the multi-path structure and the second face of the second CFBS forms at least a portion of the third exterior face of the multi-path structure to provide optical communication between the second and third exterior faces of the multi-path structure; and each of the exterior faces of the multi-path structure being adapted to optically connect at least one of an optical signal emitter or optical signal detector to another of the exterior faces.
- 2. The optical signal transmission device of claim 1, wherein the second face of the first CFBS forms at least a portion of the second exterior face of the multi-path structure to provide optical communication between the first and second exterior faces of the multi-path structure, the data transmission device further comprising:
a third CFBS having at least first, second and third faces, with at least the first and second faces of the third CFBS being in optical communication with one another, the first face of the third CFBS forms at least a portion of the third exterior face of the multi-path structure and the second face of the third CFBS forms at least a portion of the first exterior face of the multi-path structure to provide optical communication between the first and third exterior faces of the multi-path structure.
- 3. The optical signal transmission device of claim 2, wherein the exterior faces of the multi-path structure are in bidirectional communication with one another.
- 4. The optical signal transmission device of claim 2, wherein the CFBSs are stacked vertically.
- 5. The optical signal transmission device of claim 4, wherein the CFBSs are triangular shaped.
- 6. The optical signal transmission device of claim 2, wherein the CFBSs are positioned horizontally.
- 7. The optical signal transmission device of claim 6, wherein the CFBSs are triangular shaped.
- 8. The optical signal transmission device of claim 2, wherein the CFBSs are rigid fiber bundle structures.
- 9. The optical signal transmission device of claim 2, wherein the CFBSs are each produced from a one piece fiber optic plate.
- 10. The optical signal transmission device of claim 2, wherein the CFBSs are adapted to accept optical signals at approximately 60° or less as measured from perpendicular axes to each of the external faces of the multi-path structure.
- 11. The optical signal transmission device of claim 2, wherein the optical signal transmission device has n side faces, and at least one of the CFBSs has n faces, where n is greater than or equal to 3.
- 12. The optical signal transmission device of claim 2, wherein the device is adapter for use as a router.
- 13. The optical signal transmission device of claim 1, further comprising opto-electronic devices connected to the exterior faces of the multi-path structure.
- 14. The optical signal transmission device of claim 1, wherein the optical signals comprise visual images.
- 15. The optical signal transmission device of claim 1, wherein the optical signals comprise optical data communication links.
- 16. A method of transmitting optical signals between at least three opto-electronic chips through a one-piece optical signal transmission device comprising:
providing a first opto-electronic device with at least one signal emitter and detector; providing a second opto-electronic device with at least one signal detector; providing a third opto-electronic device with at least one signal emitter; optically connecting the at least one optical signal emitter on the first opto-electronic device with the at least one signal detector on the second opto-electronic device through a first CFBS of the optical signal transmission device; optically connecting the at least one signal detector on the first opto-electronic device to the at least one signal emitter on the third opto-electronic device through a second CFBS of the optical signal transmission device; emitting optical signals from the signal emitters on the first and third opto-electronic devices; transmitting the optical signals through the optical signal transmission device to the signal detectors; and receiving each of the emitted signals at the optically connected signal detector.
- 17. An optical signal transmission device for connecting opto-electronic devices comprising:
at least four stacked polygon shaped coherent fiber bundle plates; the polygon shaped coherent fiber bundle plates forming a rectilinear structure; the rectilinear structure having a bottom face, a top face and four side exterior faces; the side exterior faces being adapted for coupling of opto-electronic devices; at least two of the stacked polygon shaped coherent fiber bundle plates each providing optical communication between at least two adjacent side exterior faces; and at least two of the stacked polygon shaped coherent fiber bundle plates each providing optical communication between non-adjacent side exterior faces.
- 18. The optical signal transmission device of claim 17 wherein the polygon shaped plates are formed from two halves.
- 19. An optical signal transmission device for connecting opto-electronic devices comprising:
at least two polygon shaped coherent fiber bundle plates, each having five exterior side faces, a top face and a bottom face; the at least two polygon shaped coherent fiber bundle plates having a stacked arrangement; the exterior side faces of the at least two coherent fiber bundle plates being arranged to provide optical communication between at least two pairs of adjacent exterior side faces and at least one pair of non-adjacent exterior side faces.
- 20. The optical signal transmission device of claim 19, wherein the stack arrangement of the polygon shaped coherent fiber bundle plates has each of the polygon shaped CFBSs rotated 72° axially from an adjacent polygon shaped CFBS.
- 21. The optical signal transmission device of claim 19, wherein each of the polygon shaped coherent fiber bundle plate comprises a trapezoidal shaped member and a triangle shaped member.
- 22. The optical signal transmission device of claim 19, wherein there are of the five polygon shaped coherent fiber bundle plates, and the stacked arrangement has five exterior side faces, a top face and a bottom face, the exterior sides of the stacked arrangement adapted to receive opto-electronic devices to provide optical communication between at least three pairs of adjacent sides and at least three pairs of non-adjacent sides.
- 23. The optical signal transmission device of claim 22, wherein the polygon shaped coherent fiber bundle plates are rotated 72° in the stacked arrangement from an adjacent polygon shaped coherent fiber bundle plates.
- 24. A optical signal transmission device for connecting opto-electronic chips comprising:
at least two coherent fiber bundle plates having a stacked arrangement with six exterior side faces, a top face and a bottom face; the coherent fiber bundle plates are arranged to provide optical communication between at least three pairs of non-adjacent exterior side faces.
- 25. The optical signal transmission device for connecting opto-electronic chips of claim 24, wherein the exterior sides are adapted to couple optical signals to provide optical communication between at least three pairs of adjacent sides.
- 26. A optical signal transmission device for connecting opto-electronic chips comprising:
first, second, third and fourth polygon shaped CFBSs; the first and fourth CFBSs having a top portion having a pyramid shape with an apex and a larger base end; the second and third CFBSs having two cojoined sections, each section including a top portion having a pyramid shape with an apex and a larger base end, the two apexes of the pyramid shapes connected together by a transition piece; the transition pieces of the second and third CFBSs are located in an axially perpendicular orientation; the first and fourth CFBSs positioned adjacent to the second and third CFBSs such that at least four of the pyramid sides of the first and fourth CFBSs are in optical communication with at least two pyramid sides of the second CFBS and at least two pyramid sides of the third CFBS; and the exterior faces of the CFBSs being adapted for connection to opto-electronic devices.
- 27. An optic fiber end-bonded structure to connect opto-electronic devices comprising:
a first group of at least two coherent fiber bundles, each having first and second ends, the second ends of the coherent fiber bundles being horizontally aligned along a common axis; a second group of at least two coherent fiber bundles, each having first and second ends, the second ends of the second group coherent fiber bundles being vertically aligned along a common axis; the second ends of the first group of coherent fiber bundle stacks being side-connected together; the second ends of the second group of coherent fiber bundle stacks being side-connected together; the second ends of the first group being axially optically connected to the second ends of the second group, such that the second ends of the second group are collectively rotated approximately 90° about the common axis relative to the second ends of the first group; and the first ends of the first and second groups of coherent fiber bundles being adapted for connection to opto-electronic devices.
- 28. The optic fiber end-bonded structure of claim 27, wherein the first and second groups each have at least three CFBSs.
- 29. The optic fiber end-bonded structure of claim 27, wherein the first ends of the first and second coherent fiber bundles are side-bonded.
- 30. A method of routing an optical signal from an input position through an optical signal transmission device to a desired output position, comprising:
transmitting an optical signal into a first face portion of a multi-path structure comprising 2n stacked CFBSs, wherein the first face portion defines an m×n array of optical signal receiving areas; transmitting the optical signal through the multi-path structure to a detector array on an optically connected opto-electronic processing device having n vertically stacked horizontal 1×m detector arrays with corresponding 1×r emitter arrays optically connected to a second face portion of the multi-path structure, each vertically stacked horizontal 1×m detector array being aligned with one of the stacked CFBSs having parallel optic fibers oriented in a first direction and each 1×r emitter array being aligned with one of the stacked CFBSs having parallel optic fibers oriented in a second direction; processing the received optical signal in an associated nth vertically stacked horizontal 1×m detector array and generating a corresponding signal at a desired emitter rx in the corresponding 1×r emitter array; emitting a second optical signal from the emitter rx; transmitting the second optical signal through the multi-path structure to a third face portion of the multi-path structure; receiving the transmitted optical signal at an rth detector array on a second optically connected opto-electronic processing device having r horizontally stacked vertical 1×n detector arrays with corresponding 1×s emitter arrays; processing the transmitted optical signal in the rth horizontally stacked 1×n detector array and generating a corresponding signal at a desired emitter sy in the corresponding 1×s emitter array; and emitting a third optical signal through the multi-path structure to the fourth face portion in a desired rx, sy position.
- 31. An optical signal transmission device comprising;
first and second optical signal detector/emitter arrays; a multi-path structure having at least four exterior faces, the multi-path structure adapted to transmit an optical signal from an input position in an m×n array to a desired output position in an r×s array, where m, n, r and s are integers greater than zero and m equals r and n equals s, the multi-path structure having 2n CFBSs, a first group of the CFBSs comprised of parallel optic fibers extending from a first exterior face portion of the multi-path structure to a second exterior face portion of the multi-path structure, the parallel optic fibers being oriented at an angle of less than 90° from the connected faces, the first face portion defines an array of receptor areas for transmission of optical signals through the first group of CFBSs along first pathways to a first array of emission areas on the second face which are optically connected to the first optical signal detector/emitter array; a second group of the CFBSs stacked with the first group of CFBSs, the second group of CFBS comprised of parallel optic fibers extending from the second face portion of the multi-path structure to another face portion of the multi-path structure and are optically connected to the second optical signal detector/emitter array; the first optical signal detector/emitter array has n rows of m optical detectors and a corresponding n rows of r emitters; the first detector/emitter array is adapted to receive an input optical signal into a first optical detector and activate a desired optical signal emitter in a corresponding row to the first optical detector at a desired rx position on the first detector/emitter array to generate a second optical signal, the second optical signal detector/emitter array has r columns of n detectors and a corresponding r columns of s emitters, the second optical signal detector/emitter array is adapted to receive the second optical signal in an nth detector in an aligned column of the r columns of optical detectors and activate a desired optical signal emitter sy in the corresponding column to the nth optical detector to generate a third optical signal in a desired location.
- 32. An optical signal transmission device comprising:
a multi-path structure having at least four exterior faces, at least one exterior face adapted to receive optical signals from a 1×m array and at least one exterior face adapted to emit optical signals received by the multi-path structure in 1×n1 through 1×nL arrays, where L>1 and a sum of n1 to nL=m, the multi-path structure having at least first and second CFBSs each comprised of parallel optic fibers extending from an input side to an output side at a predetermined angle of less than 90° from the input and output sides, the first CFBS oriented such that the optic fibers extend in a first orientation and the second CFBS being placed upon the first CFBS such that the optic fibers of the second CFBS extend in a second orientation and the input sides of the first and second CFBSs are aligned on a first exterior face of the multi-path structure; and the respective output sides of the CFBSs are aligned with at least one exterior face of the multi-path structure such that the optical signals from the 1×m array are transmitted to the 1×n1 through 1×nL arrays, and the n1 through nL arrays are offset from one another.
- 33. The optical signal transmission device of claim 32, wherein the multi-path structure further includes at least z additional CFBSs, the z additional CFBSs comprised of parallel optic fibers extending from an input side to an output side at a predetermined angle of less than 90° from the input and output sides, the z additional CFBSs being located in the multi-path structure such that the input sides of the z additional CFBSs are aligned with the first exterior face of the multi-path structure, and the output sides of the z additional CFBSs are aligned with at least one exterior face of the multi-path structure.
- 34. An optical signal transmission device comprising:
a multi-path structure having at least four exterior faces, the multi-path structure having at least a first exterior face adapted to receive optical signals at least a second exterior face adapted to receive and emit signals, and at least a third exterior face adapted to emit signals, the multi-path structure having at least first and second CFBSs, the first CFBS comprised of parallel optic fibers extending from a first face to a second face, optically connecting the faces, the parallel optic fibers being oriented at an angle of less than 90° from the first and second faces, the first face defines an array of receptor areas adapted to receive optical signals, and the second face defines a first array of emission areas adapted to emit the optical signals, the first face of the first CFBS being located on the first exterior face of the multi-path structure and the second face of the first CFBS being located on the second exterior face of the multi-path structure; the second CFBS comprised of parallel optic fibers extending from a first face to a second face, optically connecting the faces, the parallel optic fibers being oriented at an angle of less than 90 degrees from the first and second faces, the first face of the second CFBS defines a second array of receptor areas adapted to receive optical signals, and the second face of the second CFBS defines a second array of emission areas, the first face of the second CFBS being located on the second exterior face of the multi-path structure, in proximity to the second face of the first CFBS, and the second face of the second CFBS being located on the third exterior face of the multi-path structure; and the first CFBS including parallel optic fiber extending from a third face to a fourth face, optically connecting the faces, the third face defines a third array of receptor areas, located in proximity to the second array of emission areas, adapted to receive optical signals, and the fourth face defining a third array of emission areas adapted to emit optical signals.
Parent Case Info
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS
[0002] This application claims the benefit of U.S. Provisional Application No. 60/212,268, filed Jun. 19, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60212268 |
Jun 2000 |
US |