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Co-design of magnetic soft robots with large deformation and contacts via material point method and topology optimization

Co-design of magnetic soft robots with large deformation and contacts via material point method and topology optimization

来源:Arxiv_logoArxiv
英文摘要

Magnetic soft robots embedded with hard magnetic particles enable untethered actuation via external magnetic fields, offering remote, rapid, and precise control, which is highly promising for biomedical applications. However, designing such systems is challenging due to the complex interplay of magneto-elastic dynamics, large deformation, solid contacts, time-varying stimuli, and posture-dependent loading. As a result, most existing research relies on heuristics and trial-and-error methods or focuses on the independent design of stimuli or structures under static conditions. We propose a topology optimization framework for magnetic soft robots that simultaneously designs structures, location-specific material magnetization and time-varying magnetic stimuli, accounting for large deformations, dynamic motion, and solid contacts. This is achieved by integrating generalized topology optimization with the magneto-elastic material point method, which supports GPU-accelerated parallel simulations and auto-differentiation for sensitivity analysis. We applied this framework to design magnetic robots for various tasks, including multi-task shape morphing and locomotion, in both 2D and 3D. The method autonomously generates optimized robotic systems to achieve target behaviors without requiring human intervention. Despite the nonlinear physics and large design space, it demonstrates high computational efficiency, completing all cases within minutes. The framework provides a computational foundation for the autonomous co-design of active soft materials in applications such as metasurfaces, drug delivery, and minimally invasive procedures.

Liwei Wang

10.1016/j.cma.2025.118205

工程设计、工程测绘生物科学研究方法、生物科学研究技术生物工程学

Liwei Wang.Co-design of magnetic soft robots with large deformation and contacts via material point method and topology optimization[EB/OL].(2025-07-02)[2025-07-17].https://arxiv.org/abs/2503.22767.点此复制

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