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4D printed tunable mechanical metamaterials with shape memory operations

机译:4D打印可调调谐机械超材料,具有形状记忆操作

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The aim of this paper is to introduce tunable continuous-stable metamaterials with reversible thermo-mechanical memory operations by four-dimensional (4D) printing technology. They are developed based on an understanding on glassy-rubbery behaviors of shape memory polymers and hot/cold programming derived from experiments and theory. Fused decomposition modeling as a well-known 3D printing technology is implemented to fabricate mechanical metamaterials. They are experimentally tested revealing elastic-plastic and hyper-elastic behaviors in low and high temperatures at a large deformation range. A computational design tool is developed by implementing a 3D phenomenological constitutive model coupled with a geometrically nonlinear finite element method. Governing equations are then solved by an elastic-predictor plastic-corrector return map procedure along with the Newton-Raphson and Riks techniques to trace nonlinear equilibrium path. A tunable reversible mechanical metamaterial unit with bi-stable memory operations is printed and tested experimentally and numerically. By a combination of cold and hot programming, the unit shows potential applications in mimicking electronic memory devices like tactile displays and designing surface adaptive structures. Another design of the unit shows potentials to serve in designing self-deployable bio-medical stents. Experiments are also conducted to demonstrate potential applications of cold programming for introducing recoverable rolling-up chiral metamaterials and load-resistance supportive auxetics.
机译:本文的目的是通过四维(4D)印刷技术引入可调谐连续稳定的超材料,具有可逆的热机械存储器操作。基于对玻璃橡胶行为的形状记忆聚合物和源自实验和理论的热/冷编程的理解开发。融合分解建模作为众所周知的3D打印技术,以制造机械超材料。它们在实验测试中显示出在大变形范围内的低温和高温下的弹性塑料和超弹性行为。通过实现与几何非线性有限元方法耦合的3D现象学结构型模型来开发计算设计工具。然后通过弹性预测器塑料校正器返回地图程序以及牛顿 - 拉文和RIK技术来解决控制方程,以跟踪非线性平衡路径。通过双稳定存储器操作可调谐可逆机械超材料单元,并在实验上和数值上进行打印和测试。通过冷热编程的组合,本机显示了模拟触觉显示器和设计表面自适应结构等电子存储器件中的潜在应用。该单元的另一个设计显示了在设计自我部署的生物医疗支架时服务的潜力。还进行了实验,以证明冷编编程用于引入可回收的滚动手性超材料和负载电阻支持辅助的潜在应用。

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