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Topology optimization and 3D printing of multimaterial magnetic actuators and displays

机译:多种材料磁性执行器和显示器的拓扑优化和3D打印

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摘要

Upcoming actuation systems will be required to perform multiple tightly coupled functions analogous to their natural counterparts; e.g., the ability to control displacements and high-resolution appearance simultaneously is necessary for mimicking the camouflage seen in cuttlefish. Creating integrated actuation systems is challenging owing to the combined complexity of generating high-dimensional designs and developing multifunctional materials and their associated fabrication processes. Here, we present a complete toolkit consisting of multiobjective topology optimization (for design synthesis) and multimaterial drop-on-demand three-dimensional printing for fabricating complex actuators (>106 design dimensions). The actuators consist of soft and rigid polymers and a magnetic nanoparticle/polymer composite that responds to a magnetic field. The topology optimizer assigns materials for individual voxels (volume elements) while simultaneously optimizing for physical deflection and high-resolution appearance. Unifying a topology optimization-based design strategy with a multimaterial fabrication process enables the creation of complex actuators and provides a promising route toward automated, goal-driven fabrication.
机译:即将到来的致动系统将需要执行多个紧密耦合的功能,类似于它们的自然对应功能;例如,必须具有同时控制位移和高分辨率外观的能力,才能模仿墨鱼中看到的伪装。由于生成高尺寸设计和开发多功能材料及其相关的制造过程的综合复杂性,因此创建集成的致动系统具有挑战性。在这里,我们提供了一个完整的工具包,其中包括多目标拓扑优化(用于设计综合)和多材料按需按需三维打印,以制造复杂的执行器(> 10 6 设计尺寸)。致动器由软质和硬质聚合物以及响应磁场的磁性纳米颗粒/聚合物复合材料组成。拓扑优化器为单个体素(体积元素)分配材料,同时针对物理变形和高分辨率外观进行优化。通过多材料制造过程统一基于拓扑优化的设计策略,可以创建复杂的执行器,并为实现自动化,目标驱动的制造提供了一条有希望的途径。

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