Claims
- 1. An optical subassembly with boresight stability, comprising:
a chassis having a planar section; an optical bench mounted to said planar section, wherein said optical bench has a plurality of optical elements mounted thereon, and wherein said optical elements have a common optical axis; and a beam expander device rigidly mounted and isolated from said optical bench, wherein said beam expander is coincident with said optical axis.
- 2. The optical subassembly with boresight stability according to claim 1, wherein said subassembly is mounted within a higher assembly and said beam expander is mounted to a supporting structure of said higher assembly.
- 3. The optical subassembly with boresight stability according to claim 1, further comprising a first rigid support section and a second rigid support section coupled perpendicular to said planar section, and wherein said beam expander is mounted to said first rigid support section.
- 4. The optical subassembly with boresight stability according to claim 3, further comprising supporting structures mounted to said first rigid support section, wherein said supporting structures are selected from the group comprising:
reinforcing plates and angular braces.
- 5. The optical subassembly with boresight stability according to claim 3, wherein said first rigid support section is thicker in diameter than said second support section.
- 6. The optical subassembly with boresight stability according to claim 1, wherein said beam expander device is displaced from thermal sources.
- 7. The optical subassembly with boresight stability according to claim 1, further comprising a laser source coincident with said optical axis and transmitting a laser beam to said optical elements and said beam expander.
- 8. An optical mounting assembly with boresight stability, comprising:
an integral chassis and optical bench, having a substantially planar section coupled between a first substantially perpendicular section and a second substantially perpendicular section; a plurality of optical components mounted to said planar section, wherein said optical components have an optical axis; and a beam expander isolated from said integral chassis, wherein said beam expander is positioned coincident with said optical axis.
- 9. The optical mounting assembly according to claim 8, wherein said beam expander is mounted to said first substantially perpendicular section and further comprising supporting structures mounted to said first rigid vertical section, wherein said supporting structures are selected from the group comprising: reinforcing plates and angular braces.
- 10. The optical mounting assembly according to claim 8, wherein said beam expander is mounted to said first substantially perpendicular section wherein said first substantially perpendicular section is thicker than said second substantially perpendicular section.
- 11. The optical mounting assembly according to claim 8, wherein said mounting assembly is subassembly mounted within a higher assembly and said beam expander is mounted to a supporting structure of said higher assembly.
- 12. The optical mounting assembly according to claim 8, wherein said beam expander device is selected from the group comprising: a beam expander telescope, a reflective device having a curved optical mirror with a central opening and a second mirror located substantially along an axis of said central opening, and an off-axis beam expander.
- 13. The optical mounting assembly according to claim 8, wherein said beam expander is placed away from thermal sources.
- 14. The optical mounting assembly according to claim 8, further comprising a laser source transmitting a laser beam to said optical elements and said beam expander.
- 15. The optical boresight assembly according to claim 8, wherein a boresight error is θ2, an input beam tilt equals θ1, and a beam expander telescope magnification ratio is MR, and wherein said boresight error is reduced according to the formula: θ2=θ1/MR.
- 16. An optical mount with improved boresight stability, comprising:
a laser source emitting a laser beam; an optical housing, having a substantially planar section coupled between a first rigid perpendicular section and a second perpendicular section; a plurality of optical components mounted to said planar section, wherein said optical components have an optical axis, and wherein said laser beam is transmitted substantially along said optical axis; and a beam expander attached to said first rigid perpendicular section, wherein said beam expander is interposed along said optical axis and outputs said laser beam with a larger diameter, and wherein said beam expander is isolated from movements of said housing.
- 17. The optical mount with improved boresight stability according to claim 16, wherein said planar section is an optical bench, and wherein said optical components are mounted to said optical bench and said optical bench mounts to said housing.
- 18. The optical mount with boresight stability according to claim 16, wherein said first rigid perpendicular section is thicker than said second rigid perpendicular section.
- 19. The optical mount with boresight stability according to claim 16, further comprising supporting structures mounted to said first rigid perpendicular section, wherein said supporting structures are selected from the group comprising: reinforcing plates and angular braces.
- 20. The optical mount with boresight stability according to claim 16, further comprising a reference feature, wherein said beam expander is proximate said reference feature.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application claims priority under 35 USC 119(e) to U.S. Provisional Patent Application No. 60/312,485 entitled “Improved Boresight Stability On An Optical Bench,” filed on Aug. 15, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60312485 |
Aug 2001 |
US |