Development of enhanced force models to analyze the nonlinear hysteresis response of miniaturized Pneumatic artificial muscles

Shakila Zabihollah, S. Moezi, R. Sedaghati
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Abstract

Miniaturized pneumatic artificial muscles (MPAMs), designed to replicate natural muscle actuation, offer unique attributes such as a high power-to-weight ratio, flexibility, easy integration, and compactness, making them favorable for many applications. The present paper aims at the development of an accurate semi-analytical force model considering the effect of the bladder material and friction terms to predict the nonlinear force-deformation response of MPAMs during contraction and expansion cycles. Existing force models for MPAMs exhibit limitations to accurately capturing the force-deformation behaviors due to several simplification factors. This study enhances these models by integrating correction terms to accurately address the nonlinearity and frictional effects exhibited by MPAMs. An analysis of the hysteresis loops resulting from the cyclic loading and unloading of MPAMs under specific pressures is undertaken to compare different methodologies in order to determine the most accurate correction terms. To investigate the nonlinear behavior of MPAMs, the stress-strain relationship of the bladder material and results from force-deformation expermnetal tests on the entire actuator are considered and for the effect of friction term, theoretical and empirical approaches are investigated. Results suggest that the theoretical force model based on analytical and empirical friction forces, respectively, slightly overestimates and underestimates the force experienced by MPAMs during contraction while slightly underestimate and overestimates during expansion, respectively. A comparative analysis between MPAMs featuring Ecoflex-50 silicone and Ecoflex30+PDMS mixture as bladder materials has also been conducted to further investigate the effect of bladder materials on their force and contraction outputs under inlet pressures ranging from 0 kPa to 300 kPa. It is shown that the MPAM feauting Ecoflex-50 bladder, exhibits lower dead-band pressure and an overall reduced blocked force in comparison to MPAM with bladder made of Ecoflex30+PDMS while exhibiting a substantially enhanced free contraction capacity.
开发用于分析微型气动人工肌肉非线性滞后响应的增强力模型
微型气动人工肌肉(MPAMs)旨在复制自然肌肉驱动,具有功率重量比高、灵活性强、易于集成和结构紧凑等独特属性,因此有利于多种应用。本文旨在开发一种精确的半分析力模型,其中考虑了囊袋材料和摩擦项的影响,以预测 MPAM 在收缩和膨胀周期中的非线性力-变形响应。由于一些简化因素,现有的 MPAM 受力模型在准确捕捉受力变形行为方面存在局限性。本研究通过整合修正项来增强这些模型,从而准确地解决 MPAM 的非线性和摩擦效应问题。通过分析 MPAM 在特定压力下循环加载和卸载所产生的滞后环,比较不同的方法,以确定最准确的修正项。为研究 MPAM 的非线性行为,考虑了囊袋材料的应力-应变关系和整个致动器的力-变形实验结果,并研究了理论和经验方法对摩擦项的影响。结果表明,基于分析摩擦力和经验摩擦力的理论力模型分别略微高估和低估了 MPAM 在收缩时所受的力,而略微低估和高估了 MPAM 在膨胀时所受的力。此外,还对采用 Ecoflex-50 硅胶和 Ecoflex30+PDMS 混合物作为胶囊材料的 MPAM 进行了比较分析,以进一步研究在 0 kPa 至 300 kPa 的入口压力下,胶囊材料对其力和收缩输出的影响。结果表明,与使用 Ecoflex30+PDMS 胶囊的 MPAM 相比,使用 Ecoflex-50 胶囊的 MPAM 死区压力更低,总体阻塞力更小,同时自由收缩能力大大增强。
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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