热致晶体
材料科学
液晶
执行机构
悬臂梁
材料设计
超弹性材料
过程(计算)
弹性体
机械工程
计算机科学
复合材料
有限元法
液晶
结构工程
人工智能
工程类
操作系统
光电子学
作者
Ryan Alexander Epp Neufeld,Hamed Shahsavan,Boxin Zhao,Nasser Mohieddin Abukhdeir
出处
期刊:Liquid Crystals
[Taylor & Francis]
日期:2017-11-20
卷期号:45 (7): 1010-1022
被引量:14
标识
DOI:10.1080/02678292.2017.1404152
摘要
Liquid crystal elastomers (LCEs) are a class of soft functional materials which exhibit complex mechanical responses to external stimuli. Their promise for technological applications is difficult to realise in practice due to the complexity of design, fabrication and performance quantification of these materials. In order to address these issues, simulation-based methods are necessary to both enhance and accelerate the design process, compared to traditional experimentation alone. This work presents such an approach using a hyperelastic solid mechanics model and experimental measurement of material parameters for a thermotropic LCE. The simulation method is validated using existing experimental data of the thermomechanical response of an LCE-based cantilever resulting from a hybrid-aligned nematic texture imposed during crosslinking. The validated method is then used to perform a proof-of-concept design process of an LCE multilegged gripper in order to determine optimal design parameters for gripper performance. The simulation method and results presented in this work represent a significant step towards simulation-based design of LCE materials, which has the potential to overcome the complexity and cost of the LCE design process.
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