Claims
- 1. A damped flexure mechanism, comprising:a flexure member, said flexure member having a pair of legs interconnected at one end, each of said legs having means for mounting to an associated surface, each of said legs including at least one blade flexure, a cone-shaped area located in the interconnected ends of said legs, a ball located in said cone-shaped area, and means for damping mounted to each of said legs, said means comprising a damper consisting of a single constraining layer in series with a viscoelastic layer, said constraining layer extending around at least a portion of said viscoelastic layer.
- 2. The mechanism of claim 1, wherein a viscoelastic layer and a constraining layer is mounted on opposite sides of each said legs.
- 3. The mechanism of claim 1, wherein a visoelastic layer is constructed of an ultra pure viscoelastic damping polymer.
- 4. The mechanism of claim 3, wherein said viscoelastic layers has a thickness in the range of about 0.003 to about 0.006 inch.
- 5. The mechanism of claim 1, wherein said constraining layer is constructed of stainless steel.
- 6. The mechanism of claim 5, wherein said constraining layer has a thickness of about 0.004 to 0.04 inch.
- 7. A damped kinematic coupling, comprising:a damped flexure, said flexure having legs interconnected to define a V-shape, a cone-shaped cutaway located at a point of interconnection of said legs, a ball position in said cone-shape cutaway, and a constrained-layer damping arrangement mounted to each of said legs and consisting of a single constraining layer in series with a viscoelastic layer, said constraining layer extending around at least a portion of said viscoelastic layer.
- 8. The coupling of claim 7, additionally including at least one blade flexure in each leg.
- 9. The coupling of claim 7, additionally including means for connecting said legs to a point of use.
- 10. The coupling of claim 7, wherein a constrained-layer damping arrangement is located on opposite sides of each of said legs.
- 11. The coupling of claim 10, wherein each constrained-layer damping arrangement consists of a viscoelastic layer and a constraining layer.
- 12. The coupling of claim 11, wherein said constraining layer is located exterior of said viscoelastic layer.
- 13. A highly damped kinematic coupling for precision instruments, comprising:three damped flexures, each flexure including a plurality of legs, and a ball-cone joint, each flexure including at least one constrained-layer damping arrangement mounted to each of said legs, and each of said legs including means for mounting said flexure to an associated instrument, said at least one constrained-layer damping arrangement consists of a single constraining layer in series with a viscoelastic layer, said constraining layer extending around at least a portion of said viscoelastic layer.
- 14. The coupling of claim 13, wherein said legs of each of said flexures being interconnected to form a vee, said ball-cone joint being located at said thus formed vee.
- 15. The coupling of claim 13, wherein a constrained-layer damping arrangement is mounted of opposite sides of each of said legs.
- 16. The coupling of claim 13, additionally including at least one blade flexure in each leg.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
US Referenced Citations (8)
Non-Patent Literature Citations (2)
Entry |
T.A. Decker et al.; “Highly-damped exactly-constrained mounting of an x-ray telescope”; SPIE vol. 2445, Mar. 1995. |
Hale, Layton C. “Principles and Techniques for Designing Precision Machines” Doctor of Philosophy Thesis, Massachusetts, Institute of Technology, Feb. 1999. |