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TRADE SPACE EXPLORATION OF A MAGNETICALLY ACTUATED MIURA-ORI STRUCTURE

机译:磁致动MIURA-ORI结构的贸易空间探索

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Origami folding patterns are finding use in novel applications where actual device response depends on current, possibly intermediate, shapes on the path toward the final target shape. This works investigates one origami pattern, developing metrics for performance that incorporate traditional shape approximation and actuator efficiency, while adding proxy measures of adherence to the target folding path. Magnetically actuated Miura-Ori structures were develop using an initially heuristic strategy involving experiment, observation, and computation before being studied using trade space optimization/visualization. Constructed from PDMS substrates, notched to promote the crease pattern, and neodymium magnets, four initial configurations were chosen based on heuristic arguments that (1) maximized the amount of magnetic torque applied to the creases and (2) reduced the number of magnets needed to affect all creases in the pattern. Experiments were conducted, and calculations performed, on prototypes from each configuration to determine their degree of closure for a fixed maximum field strength, their ability to follow the ideal Miura-Ori folding pattern, and the amount of work theoretically performed by each magnet on each crease. Each configuration was further optimized theoretically using the Army Trade Space Visualization (ATSV) software. A final prototype was constructed following the weighted sum scoring of the four now optimized configurations. Somewhat surprisingly, trade space optimization showed that the configuration with the highest number of actuators was theoretically the least effective per magnet at delivering torque to each crease. Unsurprisingly, optimization was successful at increasing the amount of work theoretically apportioned to each crease. Overall, though the winning configuration experimentally outperformed its initial, non-optimal counterparts, results showed that the choice of optimum configuration was heavily dependent on the weighting factors within the objective function. These results highlight the ability of the Miura-Ori to be actuated with external magnetic stimuli, the effectiveness of a hybrid heuristic - trade space design approach that focuses on the actuation mechanism, and the need to address path-dependent metrics in assessing performance in origami folding structures.
机译:折纸折叠模式正用于新颖的应用中,在这些应用中,实际的设备响应取决于最终目标形状的路径上的电流(可能是中间的)形状。这项工作研究了一种折纸模式,开发了将传统形状近似和执行器效率相结合的性能指标,同时增加了对目标折叠路径的依从性度量。磁驱动的Miura-Ori结构是使用最初的启发式策略开发的,该策略涉及实验,观察和计算,然后使用交易空间优化/可视化进行研究。由PDMS基底构造而成,带有缺口以促进折痕图案,并使用钕磁铁,根据启发式论点选择了四种初始配置:(1)最大化施加到折痕上的磁转矩,(2)减少所需的磁铁数量影响图案中的所有折痕。对每种配置的原型进行了实验并进行了计算,以确定它们在固定的最大磁场强度下的闭合程度,遵循理想Miura-Ori折叠模式的能力以及理论上每个磁体在每个磁体上执行的工作量折痕。理论上,每种配置都使用Army Trade Space Visualization(ATSV)软件进行了进一步优化。根据四个现在优化的配置的加权总和得分,构造了最终的原型。出乎意料的是,交易空间优化表明,执行器数量最多的配置在理论上是每个磁体在向每个折痕传递扭矩时效果最差。毫不奇怪,优化成功地增加了理论上分配给每个折痕的工作量。总体而言,尽管获胜配置在实验上胜过其最初的非最佳配置,但结果表明,最佳配置的选择在很大程度上取决于目标函数中的加权因子。这些结果凸显了Miura-Ori通过外部磁刺激进行驱动的能力,混合启发式-交易空间设计方法(以驱动机制为重点)的有效性以及解决折纸性能评估中依赖于路径的度量的需求折叠结构。

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