一种多功能抓握操作的折纸夹持器的设计与优化

IF 6.1 Q1 AUTOMATION & CONTROL SYSTEMS Advanced intelligent systems (Weinheim an der Bergstrasse, Germany) Pub Date : 2024-10-31 DOI:10.1002/aisy.202400271
Hanwen Cao, Jianshu Zhou, Kai Chen, Qiguang He, Qi Dou, Yun-Hui Liu
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引用次数: 0

摘要

机器人抓取和操作需要处理具有不同形状、大小、数量、表面光滑度、脆弱性和刚度的大量物体的能力,这在没有事先了解物体特性的情况下是具有挑战性的。在此基础上,提出了一种适用于万能抓取的新型折纸夹持器。创新的结构无缝地将简单的单轴牵引运动转变为灵活而坚固的包络或捏抓,使其能够应对各种场景。折纸夹持器具有独特的优势,包括可扩展和可优化的设计,抓取顺应性和稳健性,提供材料的灵活性,并为具有挑战性的操作任务提供解决方案。对折纸夹持器的工作原理进行了表征和分析。提出了一种基于优化的反设计方法,以适应不同场景对夹持器性能的调整。通过全面的实验和评估,证明了该抓取器能够抓取各种具有不同特性的物体,包括超软、光滑、颗粒状和多物体,这是现有机器人抓取器面临的挑战。这项研究有望在食品工业、废物处理、精细易碎物品抓取和环境采样等领域实现变革性应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Design and Optimization of an Origami Gripper for Versatile Grasping and Manipulation

Robotic grasping and manipulation demand the ability to handle a multitude of objects with different shapes, sizes, quantities, surface smoothness, vulnerability, and stiffness, which is challenging without prior knowledge about object properties. Herein, a novel origami-inspired gripper for universal grasping is presented. The innovative structure seamlessly transforms a simple uniaxial pulling motion into a flexible and robust envelope or pinch grasp, enabling it to tackle various scenarios. The origami gripper offers distinctive advantages, including scalable and optimizable design, grasping compliance and robustness, providing material flexibility, and providing solutions to challenging manipulation tasks. The working principles of the origami gripper are characterized and analyzed. An optimization-based inverse design method is presented to adjust gripper properties for various scenarios. Through comprehensive experimentation and evaluation, the gripper's capabilities to grasp various objects with a wide range of distinctive properties, including ultrasoft, slippery, granular, and multiple objects, which is a challenge for the existing robotic grippers, are demonstrated. The research holds promise for transformative applications in areas such as the food industry, waste handling, fine and fragile objects grasping, and environmental sampling.

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来源期刊
CiteScore
1.30
自引率
0.00%
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审稿时长
4 weeks
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