利用原位自由形态液体三维打印技术提升和延长软体机器人的生命周期

IF 26.1 1区 计算机科学 Q1 ROBOTICS
Elgar Kanhere, Théo Calais, Snehal Jain, Aby Raj Plamootil Mathai, Aaron Chooi, Thileepan Stalin, Vincent Sebastian Joseph, Pablo Valdivia y Alvarado
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引用次数: 0

摘要

软机器人硬件有着从医疗保健到探索非结构化环境的众多应用,其生命周期有限,导致产生废物和可持续性差。软机器人通过复杂的装配和拆卸工作流程将软组件或混合组件组合在一起,这使得损坏组件的修复变得复杂,阻碍了可升级性,并最终降低了它们的使用寿命。在这项工作中,开发了一种先进的基于挤压的增材制造工艺,即原位自由形态液体三维打印(iFL3DP),以促进软机器人的功能升级和维修。一种屈服应力水凝胶——一种可以在施加足够的压力之前保持其形状的材料——首先被直接打印到机器人表面,作为打印新部件的支撑。这项技术使先进部件的制造能够无缝集成到已经组装好的机器人上。这些组件可以结合多种材料和复杂的几何形状,包括悬垂和高纵横比形状,这对于通过铸造等传统方法制造和集成是相当具有挑战性的。该方法成功地应用于升级现有的软体机器人,增加了三个先进的功能:用于触觉反馈的须状传感器,抓取机构和多功能无源须阵列。这项研究展示了易于维修的特点,新的和旧的,大大延长了机器人的寿命。该工作流程具有促进软机器人可持续发展的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Upgrading and extending the life cycle of soft robots with in situ free-form liquid three-dimensional printing
Soft robotics hardware, with numerous applications ranging from health care to exploration of unstructured environments, suffers from limited life cycles, which lead to waste generation and poor sustainability. Soft robots combine soft or hybrid components via complex assembly and disassembly workflows, which complicate the repair of broken components, hinder upgradability, and ultimately reduce their life spans. In this work, an advanced extrusion-based additive manufacturing process, in situ free-form liquid three-dimensional printing (iFL3DP), was developed to facilitate functional upgrades and repairs in soft robots. A yield-stress hydrogel—a type of material that can maintain its shape until sufficient stress is applied—was first printed directly onto the robot surface, serving as a support for printing new components. This technique enabled the fabrication of advanced components with seamless integration onto already assembled robots. These components could combine multiple materials with intricate geometries, including overhangs and high–aspect ratio shapes, that are considerably challenging to manufacture and integrate via traditional methods such as casting. This approach was successfully applied to upgrade an existing soft robot by adding three advanced functionalities: whisker-like sensors for tactile feedback, a grasping mechanism, and a multifunctional passive whisker array. This study showcases the easy repairability of features, new and old, substantially extending the robot’s life span. This workflow has potential to enhance the sustainable development of soft robots.
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来源期刊
Science Robotics
Science Robotics Mathematics-Control and Optimization
CiteScore
30.60
自引率
2.80%
发文量
83
期刊介绍: Science Robotics publishes original, peer-reviewed, science- or engineering-based research articles that advance the field of robotics. The journal also features editor-commissioned Reviews. An international team of academic editors holds Science Robotics articles to the same high-quality standard that is the hallmark of the Science family of journals. Sub-topics include: actuators, advanced materials, artificial Intelligence, autonomous vehicles, bio-inspired design, exoskeletons, fabrication, field robotics, human-robot interaction, humanoids, industrial robotics, kinematics, machine learning, material science, medical technology, motion planning and control, micro- and nano-robotics, multi-robot control, sensors, service robotics, social and ethical issues, soft robotics, and space, planetary and undersea exploration.
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