模块化设计
软机器人
微系统
计算机科学
过程(计算)
微流控
多体系统
有限元法
设计过程
工程设计过程
机械工程
材料科学
纳米技术
执行机构
工程类
人工智能
在制品
操作系统
物理
结构工程
量子力学
运营管理
作者
Murat Kaynak,Pietro Dirix,Mahmut Selman Sakar
标识
DOI:10.1002/advs.202001120
摘要
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.
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