Research on Yeoh-Revised hyperelastic constitutive model considering the volume almost incompressible premise for rubber materials

Yuchun Kuang, Peng Fan, Z. Dong, Yiwei Han, Wei Lin
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Abstract

For the totally incompressible Yeoh (i.e., classic Yeoh) model predicts the equibiaxial tension (ET) stress lower, this paper proposes the totally incompressible Yeoh-Revised model to improve the prediction of ET stress. First, the fitting expression of the totally incompressible Yeoh-Revised constitutive model was derived under the presumption that fluororubber (FPM) and hydrogenated nitrile-butadiene rubber (HNBR) are isotropic and entirely incompressible. Meanwhile, the goodness-of-fit (R^2) statistic was used to assess the fitting outcomes of the three tension tests data (e.g., single tension (ST), ET and planar tension (PT)). Additionally, in order to fit the rubber materials tensile test data more accurately, we suggest a novel hyperelastic constitutive fitting method that takes into account the volume microscopic compressibility of rubber materials. The findings demonstrate that the totally incompressible Yeoh-Revised model's prediction of ET stress has marginally improved which neglecting the rubber materials’ volume microcompressibility, while the almost incompressible Yeoh-Revised model fits the ET stress significantly and accurately, and also enhances the forecast accuracy of overall R^2. Finally, the fitting formula of the almost incompressible constitutive model may be reduced to that of the totally incompressible model if the volume microcompressibility is disregarded, which is beneficial to more accurately forecast the experiment tests of rubber materials tension.
考虑体积几乎不可压缩前提的橡胶材料yeoh修正超弹性本构模型研究
针对完全不可压缩Yeoh(即经典Yeoh)模型对等双轴拉伸(ET)应力的预测较低的问题,本文提出了完全不可压缩Yeoh修正模型,以提高ET应力的预测精度。首先,在氟橡胶(FPM)和氢化丁腈橡胶(HNBR)均为各向同性且完全不可压缩的假设下,推导了完全不可压缩杨氏修正本构模型的拟合表达式。同时,采用拟合优度(R^2)统计量对单张力(ST)、ET、平面张力(PT)三种张力试验数据的拟合结果进行评价。此外,为了更准确地拟合橡胶材料的拉伸试验数据,我们提出了一种考虑橡胶材料体积微观可压缩性的超弹性本构拟合方法。结果表明:完全不可压缩yeoh -修正模型在忽略橡胶材料体积微压缩性的情况下,对ET应力的预测有轻微改善,而几乎不可压缩yeoh -修正模型对ET应力的拟合效果较好,并提高了整体R^2的预测精度。最后,在不考虑体积微压缩性的情况下,几乎不可压缩本构模型的拟合公式可以简化为完全不可压缩本构模型的拟合公式,有利于更准确地预测橡胶材料的拉伸实验试验结果。
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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