Design of a Flexure Mount for Optics in Dynamic and Cryogenic Environments

Design of a Flexure Mount for Optics in Dynamic and Cryogenic Environments

Paperback (17 Nov 2018)

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Publisher's Synopsis

The design of a flexure mount for a mirror operating in a cryogenic environment is presented. This structure represents a design effort recently submitted to NASA Ames for the support of the primary mirror of the Space Infrared Telescope Facility (SIRTF). The support structure must passively accommodate the differential thermal contraction between the glass mirror and the aluminium structure of the telescope during cryogenic cooldown. Further, it must support the one meter diameter, 116 kilogram (258 pound) primary mirror during a severe launch to orbit without exceeding the micro-yield of the material anywhere in the flexure mount. Procedures used to establish the maximum allowable radial stiffness of the flexural mount, based on the finite element program NASTRAN and the optical program FRINGE, are discussed. Early design concepts were evaluated using a parametric design program, and the development of that program is presented. Dynamic loading analyses performed with NASTRAN are discussed. Methods of combining modal responses resulting from a displacement response spectrum analysis are discussed, and a combination scheme called MRSS, modified root of sum of squares, is presented. Model combination schemes using MRSS, SRSS, and ABS are compared to the results of the modal frequency response analysis performed with NASTRAN. Pollard, Lloyd Wayne Unspecified Center CRYOGENIC TEMPERATURE; DYNAMIC LOADS; DYNAMIC STRUCTURAL ANALYSIS; FLEXING; HYBRID STRUCTURES; NASTRAN; SPACE INFRARED TELESCOPE FACILITY; STIFFNESS; STRUCTURAL DESIGN; SUPPORTS; COST ANALYSIS; FLEXIBLE BODIES; GIMBALS; SPACE TEMPERATURE...

Book information

ISBN: 9781731257536
Publisher: Amazon Digital Services LLC - KDP Print US
Imprint: Independently Published
Pub date:
Language: English
Number of pages: 138
Weight: 336g
Height: 279mm
Width: 216mm
Spine width: 8mm