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Precision Joint Modeling for Quasi-Static and Dynamic Response.

Precision Joint Modeling for Quasi-Static and Dynamic Response.


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About the Book

This thesis presents a realistic, physically motivated joint model. The model is intended to allow for the investigation of friction interface characteristics on the quasi-static and dynamic response of precision deployable structures. Observed quasi-static and dynamic responses in precision deployable structures show potentially capability-limiting characteristics. Micro-lurch, and creep in these structures might impact the deployment repeatability, while spontaneous transient dynamics might impact scientific measurements. Pre-sliding friction interfaces are investigated in this thesis for component level and system level responses. The joint model is formulated in a manner that meaningfully combines previous work in friction mechanics and self-organized criticality. Consideration of the joint geometry successfully links multiple degrees of freedom within and exterior to the joint. Non-dimensional parameters that govern the joint mechanics are derived for the simplified investigation of a large design space. Anticipated hysteretic response of the joint is maintained, while the potential for additional non-linear behavior is observed. The joint is incorporated in to a truss system for investigation of quasi-static and dynamic system-level response characteristics. The system is dominated by linear response as anticipated, but the non-linear response of the system shows indications of creep and micro-lurch. The non-linear dynamic response of the system also indicates an energy transfer mechanism between the friction interface elements and the truss, through the joint.


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Product Details
  • ISBN-13: 9781243631930
  • Publisher: Proquest, Umi Dissertation Publishing
  • Publisher Imprint: Proquest, Umi Dissertation Publishing
  • Height: 254 mm
  • Weight: 331 gr
  • ISBN-10: 1243631937
  • Publisher Date: 01 Sep 2011
  • Binding: Paperback
  • Spine Width: 11 mm
  • Width: 203 mm


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Precision Joint Modeling for Quasi-Static and Dynamic Response.
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