Claims
- 1. A wide field scanning laser obstacle awareness system (LOAS) comprising:
a light source for generating a pulsed laser beam of light, a light detector; a laser beam expander; a plurality of first optical elements configured to direct a portion of said generated pulsed laser beam to said light detector, and to direct the pulsed laser beam to said beam expander wherein said pulsed laser beam is expanded; at least one rotationally operated second optical element for directing said expanded pulsed laser beam from said system with a predetermined pattern scanned azimuthally over a wide field, said at least one rotationally operated second optical element also for receiving reflections of said pulsed laser beam from at least one object along said predetermined pattern and directing said laser beam reflections to said laser beam expander wherein said laser beam reflections are focused; said plurality of first optical elements also configured to direct said focused laser beam reflections to said light detector for use in determining the location of said at least one object.
- 2. The system of claim 1 including means for determining substantially the azimuth position of the directed pulsed laser beam; and a processor means coupled to said azimuth position determining means and the light detector for determining the location of the at least one object in range and azimuth.
- 3. The system of claim 2 wherein the predetermined pattern includes a variation in elevation of the directed pulsed laser beam in relation to a line of sight of the system; including means for determining substantially the elevation of the directed pulsed laser beam; and wherein the processor means is coupled to said elevation determining means for determining the location of the at least one object in elevation in relation to the line of sight of the system.
- 4. The system of claim 3 including a display driven by the processor means to display an indication representing the at least one object in range, azimuth and elevation.
- 5. The system of claim 1 wherein the at least one rotationally operated optical element includes:
a first rotationally operated optical element for receiving the expanded pulsed laser beam and directing said received beam therefrom with the predetermined pattern; and a second rotationally operated optical element for receiving the directed beam from said first rotationally operated optical element and directing said received beam with the predetermined pattern azimuthally over the wide field.
- 6. The system of claim 5 wherein the first rotationally operated optical element comprises a mirrored optical element rotated at a predetermined nutation angle; and wherein said expanded pulsed laser beam being received and reflected from a surface of said mirrored optical element.
- 7. The system of claim 5 wherein the first rotationally operated optical element comprises a mirrored optical element having one surface inclined at a predetermined angle relative to a surface opposite thereto, said optical element being rotated about an axis normal to said opposite surface; and wherein said expanded pulsed laser beam being received and reflected from said inclined surface of said mirrored optical element.
- 8. The system of claim 5 wherein the first rotationally operated optical element comprises a Palmer mirror; and wherein said expanded pulsed laser beam being received and reflected from a surface of said Palmer mirror.
- 9. The system of claim 5 wherein the second rotationally operated optical element comprises a mirrored optical element; and wherein the directed beam from said first rotationally operated optical element is received and reflected from a surface of said mirrored optical element.
- 10. The system of claim 5 wherein the second rotationally operated optical element is configured as a fold mirror.
- 11. The system of claim 5 wherein the first rotationally operated optical element is configured as a fold mirror.
- 12. The system of claim 5 wherein the first rotationally operated optical element is rotated at a rotational speed substantially greater than the rotational speed of the second rotationally operated optical element.
- 13. The system of claim 5 including an electric motor for rotating the first rotationally operated optical element.
- 14. The system of claim 13 including a sensor for sensing the angular position of the first rotationally operated optical element.
- 15. The system of claim 5 including an electric motor for rotating the second rotationally operated optical element.
- 16. The system of claim 1 wherein the light source comprises a laser diode; and a driver circuit for pulsing said laser diode to generate the pulsed laser beam of light therefrom.
- 17. The system of claim 1 wherein the light detector comprises a photodiode for converting detected light into an electrical signal representative thereof.
- 18. The system of claim 14 wherein the light detector comprises a threshold detector circuit coupled to the photodiode for use in detecting the at least one object and for determining the range thereof.
- 19. The system of claim 1 wherein the at least one rotationally operated second optical element directs the expanded pulsed laser beam with a conical pattern that is scanned azimuthally through the wide field.
- 20. The system of claim 19 wherein the conical pattern is scanned azimuthally over a field of substantially minus ninety degrees to plus ninety degrees in relation to a reference axis of the system.
- 21. A wide field scanning laser obstacle awareness system (LOAS) for use on-board an aircraft for alerting an operator of obstacles posing a risk of collision with said aircraft, said system comprising:
a light source for generating a pulsed laser beam of light, a light detector; a laser beam expander; a plurality of first optical elements configured to direct a portion of said generated pulsed laser beam to said light detector, and to direct the pulsed laser beam to said beam expander wherein said pulsed laser beam is expanded; at least one rotationally operated second optical element for directing said expanded pulsed laser beam from said system with a predetermined pattern scanned azimuthally over a wide field, said at least one rotationally operated second optical element also for receiving reflections of said pulsed laser beam from at least one object along said predetermined pattern and directing said laser beam reflections to said laser beam expander wherein said laser beam reflections are focused; wherein the predetermined pattern includes a variation in elevation of the directed pulsed laser beam in relation to an elevation of the aircraft; said plurality of first optical elements also configured to direct said focused laser beam reflections to said light detector; means for determining substantially the azimuth position of the directed pulsed laser beam; means for determining substantially the elevation of the directed pulsed laser beam; display apparatus; processor means coupled to said light detector, display apparatus, azimuth position determining means and elevation determining means for determining the location of the at least one object in range, azimuth and elevation in relation to a flight path of the aircraft, said processor means for driving said display apparatus to display an indication representing the at least one object in range, azimuth and elevation.
- 22. The system of claim 21 wherein the display apparatus includes an image screen that has a limited field of view; and wherein the wide field of the system extends substantially beyond the field of view of said image screen.
- 23. The system of claim 22 wherein the display apparatus comprises a multi-functional display.
- 24. The system of claim 22 wherein the indication of the at least one object is overlayed with an existing image on the screen of the display apparatus.
- 25. The system of claim 22 wherein the indication of the at least one object is an image of a bar, said bar image disposed vertically at the far left of the screen of the display apparatus when the object location is azimuthally outside the field of view of the display apparatus to the left, and said bar image disposed vertically at the far right of the screen of the display apparatus when the object location is azimuthally outside the field of view of the display apparatus to the right.
- 26. The system of claim 25 wherein the bar image is controlled to change color and height based on the risk of collision with the aircraft posed by the object represented thereby.
- 27. The system of claim 26 wherein the bar image is controlled to change color based on the range of the object to the aircraft in relation to the flight path thereof.
- 28. The system of claim 26 wherein the bar image is controlled to change height based on the relative height of the object in relation to the elevation of the aircraft.
- 29. The system of claim 21 wherein the display apparatus comprises a panel of light indicators including at least one row and at least one column, wherein said light indicators are controlled to light to indicate the location of the at least one object in azimuth and elevation in relation to a flight path of the aircraft.
- 30. The system of claim 29 wherein the light indicators are controlled to change color to indicate the risk of collision of the at least one object with the aircraft.
- 31. The system of claim 29 wherein the light indicators are controlled to change color to indicate the range of the at least one object to the aircraft.
- 32. The system of claim 29 wherein the light indicators comprise diodes operative to emit light of different colors.
- 33. Optical scanning apparatus controllable to project a plurality of different output scan patterns of a laser beam, said apparatus comprising:
a first rotationally operated optical element for directing a laser beam, incident to a surface thereof, therefrom with an intermediate scan pattern; and a second rotationally operated optical element for directing said laser beam with the intermediate scan pattern from the apparatus with a desired output scan pattern, said first and second optical elements adjustably rotationally operated in relation to each other to effect the desired output scan pattern of said plurality of different output scan patterns of the laser beam.
- 34. The apparatus of claim 33 wherein the first and second optical elements are adjustably rotationally operated in speed, direction and phase angle in relation to each other to effect the desired output scan pattern of said plurality of different output scan patterns.
- 35. The apparatus of claim 33 wherein each first and second optical element rotates about an axis at a nutation angle to an axis normal to a surface thereof.
- 36. The apparatus of claim 33 wherein the first optical element is a wobble mirror.
- 37. The apparatus of claim 36 including a scanner motor coupled to the wobble mirror and adjustably operated to rotate the wobble mirror in speed, direction and phase angle to effect the desired output scan pattern of the laser beam.
- 38. The apparatus of claim 37 wherein the wobble mirror is mounted directly to the scanner motor.
- 39. The apparatus of claim 33 wherein the second optical element is a wobble mirror.
- 40. The apparatus of claim 39 including a scanner motor coupled to the wobble mirror and adjustably operated to rotate the wobble mirror in speed, direction and phase angle to effect the desired output scan pattern of the laser beam.
- 41. The apparatus of claim 40 wherein the wobble mirror is mounted directly to the scanner motor.
- 42. The apparatus of claim 33 wherein the first optical element is an optical wedge.
- 43. The apparatus of claim 33 wherein the second optical element is an optical wedge.
- 44. The apparatus of claim 33 including a third rotationally operated optical element for azimuthally scanning the laser beam with the desired output scan pattern.
- 45. The apparatus of claim 33 the second optical element is also rotationally operated to scan azimuthally the laser beam with the desired output scan pattern.
- 46. The apparatus of claim 33 wherein the plurality of different output scan patterns comprise a sawtooth scan pattern, a large circular scan pattern and a small circular scan pattern.
- 47. A dithered scanning laser obstacle awareness system (LOAS) comprising:
a light source for generating a pulsed laser beam of light, a light detector; a laser beam expander; a plurality of first optical elements configured to direct a portion of said generated pulsed laser beam to said light detector, and to direct the pulsed laser beam along a path to said beam expander; a mirrored optical element disposed in the path of said pulsed laser beam between said plurality of first optical elements and said laser beam expander, said mirrored optical element rotationally operated about an axis thereof to effect a dithering of said pulsed laser beam before entering said laser beam expander wherein said dithered pulsed laser beam is expanded; at least one rotationally operated second optical element for directing said expanded and dithered pulsed laser beam from said system with a predetermined dithered pattern, said at least one rotationally operated second optical element also for receiving reflections of said pulsed laser beam from at least one object along said predetermined dithered pattern and directing said laser beam reflections to said laser beam expander wherein said laser beam reflections are focused; said mirrored optical element and plurality of first optical elements also configured to direct said focused laser beam reflections to said light detector for use in determining the location of said at least one object.
- 48. The system of claim 47 wherein the laser beam expander has a line of sight (LOS) axis; and wherein the mirrored optical element is rotationally operated to effect a dithering of the pulsed laser beam about the LOS axis of the beam expander.
- 49. The system of claim 47 wherein the mirrored optical element is rotationally operated to vary an approach angle of the pulsed laser beam to an entrance aperture of the laser beam expander.
- 50. The system of claim 49 wherein the approach angle is varied on the order of at least plus and minus one degree.
- 51. The system of claim 47 wherein the mirrored optical element has a mirrored surface of a size on the order of a width of the laser beam.
- 52. The system of claim 47 wherein the mirrored optical element is fabricated using micro electro-mechanical systems (MEMS) techniques.
- 53. The system of claim 47 wherein the mirrored optical element is rotationally operated at a frequency in the range of one to ten kilohertz.
- 54. A wide field scanning laser obstacle awareness system (LOAS) comprising:
a light source for generating a pulsed laser beam of light, a light detector; a scan head including a laser beam expander; a plurality of first optical elements configured to direct a portion of said generated pulsed laser beam to said light detector, and to direct the pulsed laser beam to said beam expander of said scan head wherein said pulsed laser beam is expanded; said scan head including at least one rotationally operated second optical element for directing said expanded pulsed laser beam from said scan head with a predetermined pattern, said at least one rotationally operated second optical element being rotated azimuthally by said scan head to scan the predetermined pattern over a wide azimuth field, said at least one rotationally operated second optical element also for receiving reflections of said pulsed laser beam from at least one object along said predetermined pattern and directing said laser beam reflections to said laser beam expander wherein said laser beam reflections are collected and returned to said plurality of first optical elements; and said plurality of first optical elements also configured to direct said collected laser beam reflections to said light detector for use in determining the location of said at least one object.
- 55. The system of claim 54 wherein the at least one rotationally operated second optical element being rotated in elevation by the scan head to scan the predetermined pattern over an elevation field.
- 56. The system of claim 54 wherein the scan head is remotely located from the plurality of first optical elements; and wherein an optical path to the remote scan head comprises a fiber optic cable.
- 57. The system of claim 54 including a plurality of scan heads; and an optical switch controllable to couple light between the plurality of first optical elements and a selected scan head of said plurality along a corresponding optical path.
- 58. The system of claim 57 wherein each of the scan heads is remotely located from the plurality of first optical elements; and wherein each of the corresponding optical paths of the remote scan heads comprises a fiber optic cable.
- 59. The system of claim 57 wherein the optical switch comprises a flip mirror operated to rotate about at least one axis.
- 60. The system of claim 57 wherein the optical switch is fabricated using MEMS techniques.
- 61. The system of claim 54 including a plurality of scan heads; and wherein light is distributed between the plurality of first optical elements and the plurality of scan heads along a corresponding plurality of optical paths.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The following patent applications include a specification and drawings common to the instant application:
[0002] U.S. patent application Ser. No. ______ (Docket No. 21220/04065); entitled “Combined LOAS and LIDAR System”; and
[0003] U.S. patent application Ser. No. ______ (Docket No. 21220/04074); entitled “System and Method Of Measuring Flow Velocity In Three Axes”,
[0004] both of which being filed on even date with and assigned to the same assignee as the instant application