ANCF-based dynamic modeling of variable curvature soft pneumatic actuators with experimental verifications

Guoying Gu, Yu Rong
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Abstract

Accurate and computationally efficient models of soft pneumatic actuators are crucial for utilizing their compliance in various fields. However, existing research primarily relies on the piecewise constant curvature (PCC) assumption or the quasi-static assumption, only valid in limited situations. In this paper, we present a dynamic model based on absolute nodal coordinate formulation (ANCF) that simultaneously accounts for variable curvature deformation and dynamic properties. To this end, deformed configurations of soft pneumatic actuators are firstly discretized into ANCF-based beam elements. Based on this parameterization method, the dynamic model is derived by the principle of virtual work. After identifying model parameters, Newmark algorithm is utilized to solve the dynamic model in real-time, averagely consuming 6.76 s of a 10 s simulation. The derived dynamic model is experimental verified using a soft pneumatic actuator. The experimental results demonstrate that the maximum simulation errors of the tip remain below 2.5 % of the actuator’s length when the actuator is subjected to various pressure and tip loads. In addition, the overshoot behavior and period of vibration in the oscillations are also predicted by the dynamic model. Moreover, the dynamic model exhibits an average 46.53 % reduction in simulation error compared with the static ANCF-based model. Overall, this work paves the way to a deeper insight to dynamic motion analysis of soft pneumatic actuators.
基于 ANCF 的变曲率软气动执行器动态建模与实验验证
要在各种领域利用软气动执行器的顺应性,准确且计算简便的软气动执行器模型至关重要。然而,现有研究主要依赖于片状恒定曲率 (PCC) 假设或准静态假设,这仅在有限的情况下有效。在本文中,我们提出了一种基于绝对节点坐标公式(ANCF)的动态模型,该模型同时考虑了可变曲率变形和动态特性。为此,我们首先将软气动执行器的变形结构离散化为基于 ANCF 的梁元素。在这种参数化方法的基础上,利用虚功原理推导出动态模型。确定模型参数后,利用 Newmark 算法对动态模型进行实时求解,10 秒的仿真平均耗时 6.76 秒。利用软气动执行器对推导出的动态模型进行了实验验证。实验结果表明,当推杆承受各种压力和顶端负载时,顶端的最大模拟误差仍低于推杆长度的 2.5%。此外,动态模型还预测了振动中的过冲行为和振动周期。此外,与基于 ANCF 的静态模型相比,动态模型的模拟误差平均减少了 46.53%。总之,这项工作为深入了解软气动执行器的动态运动分析铺平了道路。
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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