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Shape optimization of compliant pressure actuated cellular structures

机译:顺应压力致动蜂窝结构的形状优化

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摘要

Biologically inspired pressure actuated cellular structures can alter their shape through pressure variations. Previous work introduced a computational framework for pressure actuated cellular structures that is limited to two cell rows and central cell corner hinges. This article rigorously extends these results by taking into account an arbitrary number of cell rows, a more complicated cell kinematic that includes hinge eccentricities and varying side lengths as well as rotational and axial cell side springs. The nonlinear effects of arbitrary cell deformations are fully considered. Furthermore, the optimization is considerably improved by using a second-order approach. The presented framework enables the design of compliant pressure actuated cellular structures that can change their form from one shape to another within a set of one-dimensional C-1 continuous functions. Several examples are used to demonstrate the performance of the proposed framework.
机译:受生物启发的压力驱动的细胞结构可以通过压力变化来改变其形状。先前的工作介绍了用于压力驱动的细胞结构的计算框架,该计算框架仅限于两个细胞行和中央细胞角铰链。本文通过考虑任意数量的单元格,更复杂的单元运动学(包括铰链偏心率和不同的边长以及旋转的和轴向的单元侧弹簧)来严格扩展这些结果。充分考虑了任意单元变形的非线性影响。此外,通过使用二阶方法可以显着提高优化效果。提出的框架使得能够设计顺应性的压力致动细胞结构,该结构可以在一组一维C-1连续函数内将其形式从一种形状改变为另一种形状。使用几个示例来演示所提出框架的性能。

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