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多层硅酮复合材料非线性弹性应力-应变行为的建模与验证。

Modelling and validation of the non-linear elastic stress-strain behaviour of multi-layer silicone composites.

机构信息

Univ. Grenoble Alpes, CNRS, Grenoble INP, LEGI, 38000 Grenoble, France.

Department of Engineering, La Salle, Universitat Ramon Llull, Spain.

出版信息

J Mech Behav Biomed Mater. 2023 Mar;139:105690. doi: 10.1016/j.jmbbm.2023.105690. Epub 2023 Jan 25.

DOI:10.1016/j.jmbbm.2023.105690
PMID:36716579
Abstract

Multi-layer silicone composites are commonly used to mold deformable silicone vocal folds replicas. Nevertheless, so far the stress-strain characterisation of such composite specimens is limited to their effective Young's modulus (up to 40 kPa) characterising the elastic low-strain range, i.e. up to about 0.3. Therefore, in this work, the characterisation is extended to account for the non-linear strain range. Stress-strain curves on 6 single-layer and 34 multi-layer silicone specimens, with different layer stacking (serial, parallel, combined or arbitrary), are measured at room temperature using uni-axial tensile tests for strains up to 1.36, which amounts to about 4.5 times the extent of the linear low-strain range. Cubic polynomial and exponential two-parameter relationships are shown to provide accurate continuous fits (coefficient of determination R≥99%) of the measured stress-strain data. It is then shown that the parameters can be a priori modelled as a constant or as a linear function of the effective low-strain Young's modulus for strains up to 1.55, i.e. 5 times the low-strain range. These a priori modelled parameter are confirmed by approximations of the best fit parameters for all assessed specimens as a function of the low-strain Young's modulus. Thus, the continuous stress-strain behaviour up to 1.55 can be predicted analytically from the effective low-strain Young's modulus either using the modelled parameters (R≥85%) or the approximations of the best fit parameter sets (R≥94%). Accurate stress-strain predictions are particularly useful for the design of composites with different composition and stacking. In addition, analytical expressions of the linear high-strain Young's modulus and the linear high-strain onset, again as a function of the effective low-strain Young's modulus, are formulated as well.

摘要

多层硅橡胶复合材料常用于模压可变形硅橡胶声带复制品。然而,到目前为止,这种复合材料试件的应力-应变特性仅限于其有效杨氏模量(高达 40kPa),这一范围可以表征弹性的低应变范围,即最大应变约为 0.3。因此,在这项工作中,对其非线弹性应变范围的特性进行了扩展。在室温下,通过单轴拉伸试验对 6 个单层和 34 个多层硅橡胶试件(不同的层叠方式,包括串联、并联、组合或任意方式)进行了应力-应变曲线测量,应变达到 1.36,大约是线性低应变范围的 4.5 倍。研究表明,三次多项式和指数双参数关系可以提供精确的连续拟合(决定系数 R≥99%),拟合测量的应力-应变数据。然后,研究表明,对于高达 1.55 倍低应变范围的应变,参数可以预先设定为常数或有效低应变杨氏模量的线性函数。这些预先设定的参数通过对所有评估试件的最佳拟合参数的近似,作为低应变杨氏模量的函数,得到了确认。因此,在高达 1.55 倍的低应变范围内,可以使用有效低应变杨氏模量来预测连续的应力-应变行为,使用预先设定的参数(R≥85%)或最佳拟合参数集的近似值(R≥94%)都可以实现。准确的应力-应变预测对于具有不同成分和堆叠的复合材料的设计特别有用。此外,还提出了线性高应变杨氏模量和线性高应变起始的解析表达式,同样作为有效低应变杨氏模量的函数。

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