Claims
- 1. An optical sensor comprising:
a light generator layer having top and bottom surfaces; opaque layers positioned over the top and bottom surfaces; and an optical coupling member operatively coupled to the light generator layer.
- 2. An optical sensor according to claim 1, wherein the light generator layer includes:
an optically transparent material having major surfaces; and reflective layers positioned over the major surfaces.
- 3. An optical sensor according to claim 2, wherein the optically opaque material includes at least one of:—optically opaque plastics, structural fiber reinforced composites, metals, and silicone molding compounds.
- 4. An optical sensor according to claim 2, wherein the optically transparent material includes at least one of: optically clear plastics, and silicone-based molding compounds.
- 5. An optical sensor according to claim 2, wherein the optically transparent material includes a transparent planar member.
- 6. An optical sensor according to claim 2, wherein the optically transparent material comprises a gas.
- 7. An optical sensor according to claim 2, wherein the reflective layers include at least one of: optically reflective plastics such as mirrored polycarbonate, metal alloy films, and polished metals.
- 8. An optical sensor according to claim 2, wherein the optical coupling member includes at least one optical fiber.
- 9. An optical sensor according to claim 4, wherein the optically transparent material includes a flash augmentation materials, wherein the flash augmentation materials include at least one of suspended in particulate, filled bubbles, or microsphere encapsulation comprising at least one of phosphorescent minerals including barium sulfide, calcium sulfide, and strontium sulfide, phosphorous, combustible metals, and reflective metal alloys.
- 10. A sensor structure comprising:
a plurality of sensor members respectively oriented in corresponding planes, at least some of the planes being oriented to intersect; and coupling members operatively coupled to respective ones of the sensor members.
- 11. A sensor structure according to claim 10 wherein each of the sensor members further comprises:
a light generator layer having top and bottom surfaces; opaque layers positioned over the top and bottom surfaces; and wherein the coupling members are coupled to respective ones of the light generator layers.
- 12. A sensor structure according to claim 11, wherein the light generator layer includes:
an optically transparent material having major surfaces; and reflective layers positioned over the major surfaces.
- 13. A sensor structure according to claim 12, wherein the opaque layer include at least one of:
optically opaque plastics, structural fiber reinforced composites, metals, and silicone molding compounds.
- 14. A sensor structure according to claim 12, wherein the optically transparent material includes at least one of: optically clear plastics and silicone-based molding compounds.
- 15. A sensor structure according to claim 12, wherein the optically transparent material includes a transparent planar member.
- 16. A sensor structure according to claim 12, wherein the optically transparent material comprises a gas.
- 17. A sensor structure according to claim 12, wherein the reflective layers include at least one of: optically reflective plastics, metal alloy films, and polished metals.
- 18. A sensor according to claim 12, wherein the optically transparent material includes a flash augmentation materials, wherein the flash augmentation materials include at least one of suspended in particulate, filled bubbles, or microsphere encapsulation comprising at least one of phosphorescent minerals including barium sulfide, calcium sulfide, and strontium sulfide, phosphorous, combustible metals, and reflective metal alloys.
- 19. A sensor structure according to claim 12, wherein the coupling member includes at least one optical fiber.
- 20. A sensor structure according to claim 10, wherein the plurality of sensor members comprises at least six members.
- 21. A sensor structure according to claim 10, wherein at least two of the sensor members are oriented in respective planes that are oriented to intersect along a first line, and at least two other of the sensor members are oriented in respective planes that are orientated to intersect along a second line.
- 22. A sensor structure according to claim 21, wherein the second line is orthogonal to the first line.
- 23. A sensor structure according to claim 10, wherein the sensor members comprise electrical penetration sensors.
- 24. A method of determining the path of a projectile comprising:
detecting a first time of arrival of the projectile in a first plane; detecting a second time of arrival of the projectile in a second plane; detecting a third time of arrival of the projectile in a third plane oriented to intersect the second plane along a first line; detecting a fourth time of arrival of the projectile in a fourth plane; detecting a fifth time of arrival of the projectile in a fifth plane oriented to intersect the fourth plane along a second line orthogonal to the first line; detecting a sixth time of arrival of the projectile in a sixth plane; and determining the path and speed of the projectile based on the first through sixth times.
- 25. A method according to claim 24, further including:
detecting a seventh time of arrival of the projectile in a seventh plane; and wherein the determining includes determining the path and speed of the projectile based on the first through seventh times.
- 26. A method according to claim 24, wherein the determining the path and speed of the projectile further includes basing the determination on the orientation of the planes.
- 27. A method according to claim 25, wherein the determining the path and speed of the projectile further includes basing the determination on the orientation of the planes.
- 28. A method of determining the path of a projectile comprising:
detecting a first time of arrival of the projectile in a first plane; detecting a second time of arrival of the projectile in a second plane parallel to the first plane; detecting a third time of arrival of the projectile in a third plane parallel to the second plane; determining the speed of the projectile along a first direction based on the first through third times; and determining a velocity attenuation factor based on at least the first and third times.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. provisional application No. 60/343,724, filed on Oct. 25, 2001, which is hereby incorporated by reference in its entirety.
STATEMENT OF GOVERNMENTAL INTEREST
[0002] This invention was made with U.S. Government support under Navy contract no. N00024-98-D-8124. The U.S. Government has certain rights in the invention.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/34377 |
10/25/2002 |
WO |
|
Provisional Applications (1)
|
Number |
Date |
Country |
|
60343724 |
Oct 2001 |
US |