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磁软致动器阵列系统的局部可寻址节能驱动

Locally Addressable Energy Efficient Actuation of Magnetic Soft Actuator Array Systems.

作者信息

Richter Michiel, Sikorski Jakub, Makushko Pavlo, Zabila Yevhen, Venkiteswaran Venkatasubramanian Kalpathy, Makarov Denys, Misra Sarthak

机构信息

Surgical Robotics Laboratory, Department of Biomechanical Engineering, University of Twente, Drienerlolaan 5, Enschede, 7500 AE, The Netherlands.

Surgical Robotics Laboratory, Department of Biomedical Engineering, University of Groningen and University, Medical Centre Groningen, Hanzeplein 1, Groningen, 9713 GZ, The Netherlands.

出版信息

Adv Sci (Weinh). 2023 Aug;10(24):e2302077. doi: 10.1002/advs.202302077. Epub 2023 Jun 17.

Abstract

Advances in magnetoresponsive composites and (electro-)magnetic actuators have led to development of magnetic soft machines (MSMs) as building blocks for small-scale robotic devices. Near-field MSMs offer energy efficiency and compactness by bringing the field source and effectors in close proximity. Current challenges of near-field MSM are limited programmability of effector motion, dimensionality, ability to perform collaborative tasks, and structural flexibility. Herein, a new class of near-field MSMs is demonstrated that combines microscale thickness flexible planar coils with magnetoresponsive polymer effectors. Ultrathin manufacturing and magnetic programming of effectors is used to tailor their response to the nonhomogeneous near-field distribution on the coil surface. The MSMs are demonstrated to lift, tilt, pull, or grasp in close proximity to each other. These ultrathin (80 µm) and lightweight (100 gm ) MSMs can operate at high frequency (25 Hz) and low energy consumption (0.5 W), required for the use of MSMs in portable electronics.

摘要

磁响应复合材料和(电)磁致动器的进展促使了磁性软机器(MSM)的发展,成为小型机器人设备的构建模块。近场MSM通过将场源和效应器紧密靠近,提供了能源效率和紧凑性。近场MSM目前面临的挑战包括效应器运动的可编程性有限、维度、执行协作任务的能力以及结构灵活性。在此,展示了一类新型的近场MSM,它将微尺度厚度的柔性平面线圈与磁响应聚合物效应器相结合。效应器的超薄制造和磁编程用于调整它们对线圈表面非均匀近场分布的响应。这些MSM被证明能够在彼此靠近的情况下进行提升、倾斜、拉动或抓取。这些超薄(80微米)且轻质(100克)的MSM可以在高频(25赫兹)和低能耗(0.5瓦)下运行,这是MSM在便携式电子产品中使用所必需的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c172/10460866/b6e898867581/ADVS-10-2302077-g003.jpg

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