4.7 Article

Optimal design of responsive structures

出版社

SPRINGER
DOI: 10.1007/s00158-022-03200-5

关键词

Responsive materials; Shape-memory alloys; Liquid crystal elastomers; Topology optimization; Sensitivity

资金

  1. U.S. National Science Foundation through Collaborative Research: Optimal Design of Responsive Materials and Structures (Caltech) [DMS:2009289]
  2. U.S. National Science Foundation through Collaborative Research: Optimal Design of Responsive Materials and Structures (LSU) [DMS:2009303]
  3. U.S. National Science Foundation through Collaborative Research: Optimal Design of Responsive Materials and Structures (McMaster University) [MS:2009303]

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With recent advances in responsive materials and fabrication techniques, integrated functional structures composed of structural and active materials can now be constructed. This study investigates the robust design of such structures through topology optimization, exploring different objective functions and their resulting designs.
With recent advances in both responsive materials and fabrication techniques, it is now possible to construct integrated functional structures, composed of both structural and active materials. We investigate the robust design of such structures through topology optimization. By applying a typical interpolation scheme and filtering technique, we prove existence of an optimal design to a class of objective functions which depend on the compliances of the stimulated and unstimulated states. In particular, we consider the actuation work and the blocking load as objectives, both of which may be written in terms of compliances. We study numerical results for the design of a 2D rectangular lifting actuator for both of these objectives, and discuss some intuition behind the features of the converged designs. We formulate the optimal design of these integrated responsive structures with the introduction of voids or holes in the domain, and show that our existence result holds in this setting. We again consider the design of the 2D lifting actuator now with voids. Finally, we investigate the optimal design of an integrated 3D torsional actuator for maximum blocking torque.

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