首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >REVERSIBLE ACTUATION OF ORIGAMI INSPIRED COMPOSITES USING LIQUID CRYSTAL ELASTOMERS
【24h】

REVERSIBLE ACTUATION OF ORIGAMI INSPIRED COMPOSITES USING LIQUID CRYSTAL ELASTOMERS

机译:液态弹性体可逆激发折纸启发的复合材料

获取原文

摘要

Recent work has used self-folding origami inspired composites to produce complex, scalable, affordable, and lightweight morphing structures [1]. These characteristics are of interest for engineering applications, in fields including aerospace [2] and medical devices [3]. Due to these advantages, research on self-folding smart composites has grown, with a particular focus on the use of laminate manufacturing techniques that stack layers of heterogeneous materials to generate functional composites. Previous work used this approach to manufacture self-folding origami inspired robots [1]. A simple shape memory composite design consists of a smart material (e.g. a one-way shape memory polymer, or SMP) sandwiched between patterned rigid layers. These SMPs change their shape in response to an external stimulus (e.g. temperature). Upon heating above the phase transition temperature of the polymer (Tt), the SMP contracts, causing the laminate to fold. The SMPs used in self-folding laminate composites are unidirectional and thus the laminate is unable to recover its original state without application of external force. In this work, we study the use of thermal responsive liquid crystal elastomers (LCE) for reversible self-folding and actuation of origami inspired composites using laminate manufacturing. LCEs are smart materials that exhibit reversible deformation, good strain recoverability, and tailorable properties (i.e. phase transition temperature, strain, and orientation of deformation) [4-6]. We explore two composite hinge designs using laminate manufacturing process [1,7] with a Joule heating layer to enable self-folding: one where the LCE acts as a tensile actuator connected only on the edges of the rigid layer, which we call a tensional hinge, and a second where the LCE is attached along the patterned rigid layer hinge, which we call a flexural hinge. The angular displacements of these two hinge designs are estimated using geometric models that account for the contraction of the LCE upon heating, and compared against experimental measurements. The maximum blocked torque of the composite hinges is also measured experimentally. To demonstrate the use of LCE as an active layer for origami inspired composites, we also present a laminate crawler robot. The crawling locomotion is controlled with an electrical heating layer laminated on the LCE. These results demonstrate the possibility of using LCE to achieve rapid, reversible folding and to generate similar torques, as compared to previous work in origami inspired self-folding composite.
机译:最近的工作已经使用了自折叠折纸启发的复合材料来生产复杂,可伸缩,可负担且轻便的变形结构[1]。这些特性对于包括航空航天[2]和医疗设备[3]在内的工程应用而言是令人感兴趣的。由于这些优点,对自折叠智能复合材料的研究已经发展起来,尤其关注层压材料制造技术的使用,该技术可堆叠异质材料层以生成功能性复合材料。先前的工作使用这种方法来制造自动折叠的折纸机器人[1]。简单的形状记忆复合设计由夹在有图案的刚性层之间的智能材料(例如单向形状记忆聚合物或SMP)组成。这些SMP响应于外部刺激(例如温度)而改变其形状。在加热到聚合物的相变温度(Tt)以上时,SMP收缩,导致层压板折叠。自折叠层压复合材料中使用的SMP是单向的,因此如果不施加外力,层压材料将无法恢复其原始状态。在这项工作中,我们研究了使用热响应液晶弹性体(LCE)通过层压制造可逆地自动折叠和驱动折纸启发的复合材料的过程。 LCE是智能材料,具有可逆的变形,良好的应变恢复能力和可定制的特性(即相变温度,应变和变形方向)[4-6]。我们探索了使用层压板制造工艺[1,7]和焦耳加热层实现自折叠的两种复合铰链设计:一种是LCE用作仅在刚性层的边缘连接的拉伸致动器,我们称其为拉伸层。第二个是LCE,沿着图案化的刚性层铰链连接LCE,我们称之为挠性铰链。这两个铰链设计的角位移是使用几何模型估算的,该模型考虑了LCE在加热时的收缩,并与实验测量值进行了比较。复合铰链的最大堵转扭矩也可以通过实验测量。为了演示将LCE用作折纸启发的复合材料的活性层的用途,我们还介绍了一种层压履带机器人。爬行运动由层压在LCE上的电加热层控制。这些结果证明,与先前在折纸启发下的自折叠复合材料中的工作相比,使用LCE可以实现快速,可逆的折叠并产生类似的扭矩。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号