Claims
- 1. A dimension monitoring system comprising:
- a coherent fiber optic bundle comprising a two dimensional array of fibers secured at a distal end for viewing a target across two dimensions;
- a one dimensional linear light detector array fixed relative to a proximal face of the fiber optic bundle for receiving an image of the target from the bundle to detect light through only a slice of the image; and
- electronic processing means for locating the edge of a target by identifying the detectors of the array across which there is a transition in the intensity of the detected light, fitting the positions of the detectors to a curve and identifying the edge location as a location on the curve between the detectors.
- 2. A monitoring system as claimed in claim 1 wherein the light detector array is a charged coupled device array.
- 3. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 wherein the electronic means includes means for detecting two edges of the target and means for computing the width of the target based on the spacing of the detected edges.
- 4. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 wherein the coherent fiber optic bundle is a polyfurcated optic bundle and the light detector array is positioned to receive images from a common end of plural bundle segments.
- 5. A monitoring system as claimed in claim 4 further comprising electronic means for windowing signals from the light detector array to separately process the images viewed from respective bundle segments.
- 6. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 further comprising a noncoherent light source and a collimator for collimating the light from the light source for illuminating the target from the side opposite to the fiber optic bundle.
- 7. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 6 further comprising a fiber optic bundle between the light source and the collimator, and wherein the collimator comprises a single lens and an aperture for limiting the light passing through the lens to that near the optic axis of the lens.
- 8. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 further comprising a light source and electronic means for controlling the intensity of the light source and the duration of exposure of the light detector array, the electronics means operating in a first mode to minimize the intensity of the light source and in a second mode to minimize the duration of exposure.
- 9. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 further comprising an air purge for maintaining a high pressure zone in a viewing bore in front of the distal end of the fiber optic bundle, the air purge comprising:
- an inner member having a generally frustoconical end and a viewing bore therethrough;
- an outer member having a viewing bore therethrough and an internal, generally frustoconical surface complementary to and fitted over the frustoconical end of the inner member in spaced relation thereto to define a frustoconical annulus terminating at a viewing bore defined by the bores of the inner and outer members; and
- means for directing pressurized fluid into the annulus and out through the viewing bore of the outer member.
- 10. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 9 further comprising a lens positioned to receive light from the bore of the inner member, the inner member further comprising means for directing pressurized fluid into the bore of the inner member between the annulus and the lens.
- 11. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 further comprising a fiber optic taper at the distal end of the fiber optic bundle for viewing the target.
- 12. A .[.measurement.]. .Iadd.monitoring .Iaddend.system as claimed in claim 1 wherein .Iadd.the electronic processing means provides a .Iaddend.digital signal indicative of one of a range of detected radiation amplitudes .[.is provided from.]. .Iadd.for .Iaddend.each element of the detector array.
- 13. A linear dimension monitoring system comprising:
- a noncoherent light source including a fiber optic bundle;
- a collimator for collimating light from the light source and illuminating a target from a first side, the collimator comprising a single lens and an aperture for limiting the light passing through the lens to that near the optic axis of the lens;
- a coherent fiber optic bundle secured at a distal end for viewing the target from a side opposite to the first side; and
- a light detector array for detecting light from the fiber optic bundle.
- 14. An air purge for a viewing system comprising:
- an inner member having a generally frustoconical end and a viewing bore therethrough;
- an outer member having a viewing bore therethrough and an internal, generally frustoconical surface complementary to and fitted over the frustoconical end of the inner member in spaced relation thereto to define a frustoconical annulus terminating at a viewing bore defined by the bores of the inner and outer members;
- a first sleeve surrounding and retaining the inner member and outer member, and defining a plenum within the first sleeve in communication with the frustoconical annulus and with the bore of the inner member behind the annulus, and having a port therethrough to the plenum; and
- a second sleeve rotatable relative to the first sleeve and adapted for mounting to an optical system at an end of the air purge opposite to the outer member.
- 15. A method of measuring a linear dimension comprising:
- viewing a target across two dimensions from each of two directions by means of a bifurcated coherent fiber optic bundle comprising a two dimensional array of fibers; and
- simultaneously detecting respective images of the target from the fiber optic bundle through only a slice of the images with a linear light detector array.
- 16. A method a claimed in claim 15 further comprising the step of electronically windowing signals from the light detector array to separately process the images viewed from respective bundle segments of the bundle.
- 17. A method as claimed in claim 15 further comprising illuminating the target from a side opposite to the fiber optic bundle by means of a noncoherent light source through a collimator.
- 18. A method of monitoring multiple linear dimensions of a target comprising:
- providing a linear light detector array;
- providing .[.plural coherent fiber optic bundles.]. .Iadd.a polyfurcated fiber optic bundle having plural coherent segments .Iaddend.and orienting a distal end of each .Iadd.segment of the polyfurcated .Iaddend.bundle to view the target along one of the multiple linear dimensions;
- simultaneously detecting images of the target from the plural .[.coherent fiber optic bundles.]. .Iadd.segments of the polyfurcated bundle .Iaddend.by means of the light detector array; and
- electronically processing signals from the detector array to provide indictations of the multiple linear dimensions. .[.19. A method as claimed in claim 18 wherein the coherent fiber optic bundles are segments of a
- polyfurcated bundle..]. 20. A method as claimed in claim .[.19.]. .Iadd.18 .Iaddend.wherein the polyfurcated bundle comprises a two dimensional array of fibers and the light detector array is a one dimensional array which views only a slice of the end face of the polyfurcated .[.coherent.].
- bundle. 21. A dimensional monitoring system comprising:
- a plurality of coherent fiber optic bundles .Iadd.wherein the coherent fiber optic bundles are segments of a polyfurcated bundle.Iaddend., each bundle being oriented at a distal end thereto to provide a respective target image;
- a linear light detector array for simultaneously receiving the images from the fiber optic bundles;
- processing electronics for establishing windows in signals received from the detector array corresponding to the respective images provided by the fiber optic bundles and providing dimensional information corresponding to the respective images. .[.22. A dimension monitoring system as claimed in claim 21 wherein the coherent fiber optic bundles are segments of a
- polyfurcated bundle..]. 23. A method of monitoring the characteristics of articles transferred along a path in an industrial process comprising viewing the articles through a coherent fiber optic taper and a coherent fiber optic bundle such that the taper contracts images of the articles to smaller images transmitted through the bundle, and detecting light from the fiber optic bundle to provide an electrical output related to visual
- features of individual articles. 24. A method as claimed in claim 23 wherein the light is detected by a plurality of detector elements and further comprising providing a digital signal from .[.each detector.]. .Iadd.electronic processing means .Iaddend.indicative of one of a range of detected radiation amplitudes .Iadd.for each detector element.Iaddend..
- .Iadd.25. An optical monitoring system, comprising:
- a) a coherent fiber optic bundle for viewing an object;
- b) a coherent fiber optic taper positioned relative to the coherent fiber optic bundle for changing image size of an image of the object; and
- c) a light detector array for receiving and detecting the size changed image from the bundle and taper; and
- d) processing electronics connected to the light detector array for converting the detected size changed image to a digital signal representation indicative of one of a range of detected radiation
- amplitudes for each element of the detector array. .Iaddend. .Iadd.26. An optical monitoring system as recited in claim 25 further comprising a recorder for recording the digital signal representation of the image.
- .Iaddend. .Iadd.27. An optical monitoring system as recited in claim 25 further comprising a non-coherent light source and a collimator for collimating light from the light source. .Iaddend. .Iadd.28. An optical monitoring system as recited in claim 27 wherein the collimator comprises a single lens and an aperture for limiting the light passing through the lens to that near the optic axis of the lens. .Iaddend. .Iadd.29. An optical monitoring system as recited in claim 27 further comprising a fiber optic bundle positioned between the light source and the collimator.
- .Iaddend. .Iadd.30. An optical monitoring system as recited in claim 25 further comprising a light source and an electronic means for controlling the intensity of the light source and the duration of exposure of the light detector array, the electronics means operating in a first mode to minimize the intensity of the light source and in a second mode to minimize the duration of exposure. .Iaddend. .Iadd.31. An optical monitoring system as recited in claim 25 wherein the light detector array is a linear array. .Iaddend. .Iadd.32. An optical monitoring system as recited in claim 25 wherein the light detector array is a charge coupled
- device array. .Iaddend. .Iadd.33. An optical monitoring system as recited in claim 25 further comprising a processor for processing the digital signal representations of the image to determine a location of an edge of
- the object. .Iaddend. .Iadd.34. An optical monitoring system as recited in claim 33 wherein the processor employs a quadratic curve fitting approach to determine the location of the edge. .Iaddend. .Iadd.35. An optical monitoring system as recited in claim 25 wherein the coherent fiber optic bundle is a polyfurcated fiber optic bundle. .Iaddend.
- .Iadd. . An optical monitoring system as recited in claim 35 further comprising electronic means for windowing of the image to separately process the images received from segments of the polyfurcated bundle.
- .Iaddend. .Iadd.37. A method of optically monitoring an object, comprising:
- a) receiving, from a coherent fiber optic bundle, light signals of an optical image of the object at detector elements of a light detector array;
- b) digitizing, in a processor coupled to the detector array, electrical signals representative of the intensities of the received light signals for each said detector element;
- c) encoding the digitized signals into digital values corresponding to one of a range of detected radiation amplitudes for each element of the detector array;
- d) recording said digital values; and
- e) processing said digital values to determine visual features of the
- object. .Iaddend. .Iadd.38. A method as recited in claim 37 wherein location of an edge of the object is one of the visual features of an object that is determined in the processing step. .Iaddend. .Iadd.39. A method as recited in claim 38 wherein the location of the edge of the object is determined by employing a curve fitting approach. .Iaddend.
- .Iadd.40. A method as recited in claim 39 wherein the location of the edge of the object is determined by employing a quadratic curve fitting approach. .Iaddend. .Iadd.41. A method as recited in claim 37 further comprising the step of illuminating the object with a non-coherent light source. .Iaddend. .Iadd.42. A method as recited in claim 41 further comprising the step of collimating the illuminating light from the non-coherent light source. .Iaddend. .Iadd.43. A method as recited in claim 42 wherein the collimating step uses a lens to collimate the light and also uses an aperture for limiting the light passing through the lens to that near the optic axis of the lens. .Iaddend. .Iadd.44. A method as recited in claim 43 wherein an optical fiber is used to carry the light from the non-coherent light source to the collimating lens. .Iaddend. .Iadd.45. A method as recited in claim 37 wherein the coherent fiber optic bundle is a polyfurcated bundle. .Iaddend. .Iadd.46. A method as recited in claim 37 wherein the processing step comprises windowing the image to separately process images received from segments of the coherent fiber
- optic bundle. .Iaddend. .Iadd.47. A method as recited in claim 37 further comprising the step of controlling the intensity of a light source and the duration of exposure of the light detector array with an electronic means so as to operate in a first mode to minimize the intensity of the light source and to operate in a second mode to minimize duration of exposure. .Iaddend.
Parent Case Info
This is a continuation in part of U.S. application Ser. No. 843,761, filed Mar. 25, 1986, now abandoned, and a continuation-in-part of U.S. application Ser. No. 708,105, filed Mar. 5, 1985, now abandoned, which was a continuation of U.S. application Ser. No. 625,180, filed Jun. 27, 1984, now abandoned, which was a continuation of U.S. patent application Ser. No. 352,596, filed Feb. 26, 1982, now abandoned.
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
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0039972 |
Apr 1957 |
PLX |
Related Publications (1)
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Date |
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708105 |
Mar 1985 |
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Continuations (2)
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Number |
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625180 |
Jun 1984 |
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Parent |
352596 |
Feb 1982 |
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Continuation in Parts (1)
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843761 |
Mar 1986 |
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Reissues (1)
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860530 |
May 1986 |
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