Soft robotics for physical simulators, artificial organs and implantable assistive devices

IF 5 Q1 ENGINEERING, BIOMEDICAL Progress in biomedical engineering (Bristol, England) Pub Date : 2023-01-23 DOI:10.1088/2516-1091/acb57a
Debora Zrinscak, Lucrezia Lorenzon, M. Maselli, M. Cianchetti
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引用次数: 1

Abstract

In recent years, soft robotics technologies enabled the development of a new generation of biomedical devices. The combination of elastomeric materials with tunable properties and muscle-like motions paved the way toward more realistic phantoms and innovative soft active implants as artificial organs or assistive mechanisms. This review collects the most relevant studies in the field, giving some insights about their distribution in the past 10 years, their level of development and opening a discussion about the most commonly employed materials and actuating technologies. The reported results show some promising trends, highlighting that the soft robotics approach can help replicate specific material characteristics in the case of static or passive organs but also reproduce peculiar natural motion patterns for the realization of dynamic phantoms or implants. At the same time, some important challenges still need to be addressed. However, by joining forces with other research fields and disciplines, it will be possible to get one step closer to the development of complex, active, self-sensing and deformable structures able to replicate as closely as possible the typical properties and functionalities of our natural body organs.
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用于物理模拟器、人造器官和植入式辅助装置的软机器人技术
近年来,软机器人技术推动了新一代生物医学设备的发展。具有可调特性的弹性体材料和肌肉状运动的结合为更逼真的模型和创新的软活性植入物作为人工器官或辅助机制铺平了道路。这篇综述收集了该领域最相关的研究,对它们在过去10年中的分布、发展水平提供了一些见解,并对最常用的材料和驱动技术展开了讨论。报告的结果显示了一些有希望的趋势,强调了软机器人方法可以帮助在静态或被动器官的情况下复制特定的材料特性,但也可以复制特殊的自然运动模式,以实现动态模型或植入物。与此同时,一些重要挑战仍然需要解决。然而,通过与其他研究领域和学科的合作,将有可能离开发复杂、主动、自感和可变形的结构更近一步,这些结构能够尽可能地复制我们自然身体器官的典型特性和功能。
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