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Finite element and analytical models for twisted and coiled actuator

  • Harbin Institute of Technology
  • Colorado State University

Research output: Contribution to journalArticlepeer-review

Abstract

Twisted and coiled actuator (TCA) is a class of recently discovered artificial muscle, which is usually made by twisting and coiling polymer fibers into spring-like structures. It has been widely studied since discovery due to its impressive output characteristics and bright prospects. However, its mathematical models describing the actuation in response to the temperature are still not fully developed. It is known that the large tensile stroke is resulted from the untwisting of the twisted fiber when heated. Thus, the recovered torque during untwisting is a key parameter in the mathematical model. This paper presents a simplified model for the recovered torque of TCA. Finite element method is used for evaluating the thermal stress of the twisted fiber. Based on the results of the finite element analyses, the constitutive equations of twisted fibers are simplified to develop an analytic model of the recovered torque. Finally, the model of the recovered torque is used to predict the deformation of TCA under varying temperatures and validated against experimental results. This work will enhance our understanding of the deformation mechanism of TCAs, which will pave the way for the closed-loop position control.

Original languageEnglish
Article number015701
JournalMaterials Research Express
Volume5
Issue number1
DOIs
StatePublished - Jan 2018

Keywords

  • analytical model
  • artificial muscle
  • finite element analysis
  • simplified model

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