迈向可生长机器人:探索和整合柔性生物材料与电子学

Pat Pataranutaporn, Jaime Sanchez de la Vega, Abhik Chowdhury, Audrey Ng, Galina Mihaleva
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引用次数: 17

摘要

最近的研究方向表明,数字和生物系统的融合,研究人员设计和工程技术,共享许多方面的生物体。我们探索了“可生长机器人”的一步,这是一种机器人系统,它有能力在最小的外部系统帮助下,将其身体的一部分或整个自我生长成功能形状。我们建议应用微生物纤维素作为电力系统的生物外骨骼,具有可再生、自我修复和形状变化的特性。我们通过一个简单的漫游者原型来演示创造可生长机器人的过程,这个漫游者的灵感来自于美国宇航局的折叠折纸机制。最后,根据材料的性质分析了其潜在的应用前景,并提出了可生长和生物增强机器人技术的发展方向。
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Toward Growable Robot : Exploring and Integrating Flexible – Biological Matter with Electronics
The direction of recent research suggests the convergence of digital and biological systems, where researchers designed and engineered technology that share many of the aspects of living organisms. We explore a step towards “growable robotics”, a type of robotic system that has the ability to self-grow either a part of or its whole body into a functional shape with minimal help from the external system. We propose the application of microbial cellulose, as a biological exoskeleton of the electrical system with renewable, self-healing, and shape changing properties. We demonstrate the process of creating the growable robot by prototyping a simple rover inspired by NASA folded origami mechanisms. Finally, we analyze the potential applications based on the properties of the material and suggest the future directions in growable and biological augmented robotics.
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