Discrete element simulation of mechanics properties of single edge notched hydrogel-a new material for soft robot and sensor *

Tianyun Gao, Didi Li, Guoqing Jin, Haiyi Liang, Runhuai Yang
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引用次数: 1

Abstract

Hydrogels have been widely studied in the field of soft robots in recent years due to their good biocompatibility, controllable electrical properties and mechanical properties, and hydrogels are expected to be promising materials for manufacturing soft robots and sensors. Here, we focus on the simulation of the mechanical properties of hydrogels. A novel simulation model based on discrete element method (DEM) is presented to simulate the fracture properties of notched hydrogels. The method used particle model and wall model to simulate the hydrogel and the force applied to it. Elastic module, viscous module and bonding module were applied between each particle to simulate the real microstructure inside hydrogel. Here, we used regular arrangement particles to simulate the homogeneous hydrogel, and staggered arrangement particles to simulate the inhomogeneous hydrogel. A single edge notched tension specimen, as a typical specimen for testing fracture properties is used to simulate the real broken. The morphology of hydrogels during the single edge notched hydrogel was simulated in detail, and the force-displacement curve, stress-strain curve and strain energy was calculated from the method. The results of the simulation show that the fracture properties were quite different while the arrangement of the particle was changed and the irregular arrangement particles had a better fracture property which was consistent to the real experiment that the fracture property of inhomogeneous hydrogel was better than homogeneous hydrogel. The applicability, simplicity and flexibility of the new approach were demonstrated and the results show that the model has potential in study the movement and the mechanical response for the research of soft materials and robotics.
单刃缺口水凝胶力学性能的离散元模拟——一种用于软机器人和传感器的新材料*
近年来,由于水凝胶具有良好的生物相容性、可控的电学性能和力学性能,在软体机器人领域得到了广泛的研究,有望成为制造软体机器人和传感器的有前途的材料。在这里,我们着重于水凝胶力学性能的模拟。提出了一种基于离散元法(DEM)的缺口水凝胶断裂特性模拟模型。该方法采用颗粒模型和壁面模型对水凝胶及其受力进行模拟。采用弹性模组、粘性模组和粘接模组模拟水凝胶内部的真实微观结构。在这里,我们用规则排列的粒子来模拟均匀的水凝胶,用交错排列的粒子来模拟不均匀的水凝胶。采用单棱缺口拉伸试样作为断裂性能测试的典型试样,模拟真实断裂。详细模拟了单边缘缺口水凝胶过程中水凝胶的形态,计算了水凝胶的力-位移曲线、应力-应变曲线和应变能。模拟结果表明,改变颗粒的排列方式,颗粒的断裂性能会有很大的不同,不规则排列的颗粒具有更好的断裂性能,这与实际实验结果一致,即不均匀水凝胶的断裂性能优于均匀水凝胶。结果表明,该模型具有适用性、简洁性和灵活性,在柔性材料和机器人研究中具有研究运动和力学响应的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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