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3D打印软机器人微系统的可寻址声学驱动

Addressable Acoustic Actuation of 3D Printed Soft Robotic Microsystems.

作者信息

Kaynak Murat, Dirix Pietro, Sakar Mahmut Selman

机构信息

Institute of Mechanical Engineering Ecole Polytechnique Fédérale de Lausanne Lausanne CH-1015 Switzerland.

出版信息

Adv Sci (Weinh). 2020 Sep 21;7(20):2001120. doi: 10.1002/advs.202001120. eCollection 2020 Oct.

Abstract

A design, manufacturing, and control methodology is presented for the transduction of ultrasound into frequency-selective actuation of multibody hydrogel mechanical systems. The modular design of compliant mechanisms is compatible with direct laser writing and the multiple degrees of freedom actuation scheme does not require incorporation of any specific material such as air bubbles. These features pave the way for the development of active scaffolds and soft robotic microsystems from biomaterials with tailored performance and functionality. Finite element analysis and computational fluid dynamics are used to quantitatively predict the performance of acoustically powered hydrogels immersed in fluid and guide the design process. The outcome is the remotely controlled operation of a repertoire of untethered biomanipulation tools including monolithic compound micromachinery with multiple pumps connected to various functional devices. The potential of the presented technology for minimally invasive diagnosis and targeted therapy is demonstrated by a soft microrobot that can on-demand collect, encapsulate, and process microscopic samples.

摘要

本文提出了一种设计、制造和控制方法,用于将超声转换为多体水凝胶机械系统的频率选择性驱动。柔顺机构的模块化设计与直接激光写入兼容,多自由度驱动方案不需要加入任何特定材料,如气泡。这些特性为开发具有定制性能和功能的生物材料活性支架和软机器人微系统铺平了道路。有限元分析和计算流体动力学用于定量预测浸入流体中的声学驱动水凝胶的性能,并指导设计过程。其成果是一系列无系绳生物操作工具的远程控制操作,包括连接到各种功能设备的多个泵的整体复合微机械。一种能够按需收集、封装和处理微观样本的软微型机器人展示了所提出技术在微创诊断和靶向治疗方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68ad/7578873/d38bba12092d/ADVS-7-2001120-g001.jpg

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