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Design of 3D Printed Programmable Horseshoe Lattice Structures Based on a Phase-Evolution Model

机译:基于相位演进模型的3D印刷可编程马蹄形晶格结构设计

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摘要

By 3D printing lattice structure with active materials, the structures can exhibit shape and functional changes under external stimulus. However, the programmable shape changes of the 3D printed lattice structures are limited due to the complex geometries, nonlinear behaviors of the active materials, and the diverse external stimuli. In this work, we propose a design framework combining experiments, theoretical modeling, and finite element simulations for the controllable shape changes of the 3D printed horseshoe under thermal stimulus. The theoretical model is based on a phase evolution model that combines the geometrical nonlinearity and the material nonlinearity. Results show that the shapes with positive or negative Poisson's ratio and bending intermediate shapes can be programmed by tuning the geometrical parameters and the temperature distribution. This work provides a method to aid the design of 3D printed functional lattice structures and have potential applications in soft robotics, biomedicine, and energy absorbing fields.
机译:通过3D打印晶格结构具有活性材料,结构可以在外部刺激下表现出形状和功能变化。然而,由于复杂的几何形状,活性材料的非线性行为以及不同的外部刺激,所示的3D印刷晶格结构的可编程形状变化受到限制。在这项工作中,我们提出了一种与热刺激下3D印刷马蹄形的可控形状变化相结合实验,理论建模和有限元模拟的设计框架。理论模型基于相结合几何非线性和材料非线性的相位演化模型。结果表明,具有正面或负泊松比和弯曲中间形状的形状可以通过调谐几何参数和温度分布来编程。这项工作提供了一种帮助设计3D印刷功能晶格结构的方法,并在软机器人,生物医学和能量吸收领域具有潜在的应用。

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