首页> 外文期刊>Journal of Elastomers & Plastics >Modeling hyperviscoelastic behavior of elastomeric materials (HDPE/POE blend) at different dynamic biaxial and uniaxial tensile strain rates by a new dynamic tensile-loading mechanism
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Modeling hyperviscoelastic behavior of elastomeric materials (HDPE/POE blend) at different dynamic biaxial and uniaxial tensile strain rates by a new dynamic tensile-loading mechanism

机译:采用新型动态拉伸装载机制,采用不同动态双轴和单轴拉伸应变率的弹性体材料(HDPE / POE混合物)的高硅霜铸造行为

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This article presents a new model developed to investigate hyperviscoelastic behavior of elastomeric materials/polyolefin elastomers (HDPE/POE blend) under dynamic biaxial and uniaxial tensile loading. Various strain energy functions (SEF) have been used in this model, and their capability to predict hyperelastic behavior of the aforementioned materials was validated by experimental data. In the experimental part, a new dynamic tensile-loading mechanism was designed and developed to be mounted on a drop-weight impact-testing machine. As a novelty, this mechanism has the ability to perform either uniaxial or biaxial dynamic tensile tests for any type of material, especially for investigating the hyperviscoelastic behavior of materials like elastomers at various strain rates. In addition, a new hyperviscoelastic model has been developed for elastomeric material, which can predict the behavior of the material well at different strain rates. By increasing the strain rate in the dynamic biaxial and uniaxial loading, Pucci-Saccomandi and Yeoh SEF predicted the dynamic behavior of material well due to its lower root mean square error. In fact, in this case, these functions are more capable than Mooney-Rivlin, Neo-Hookean, and polynomial SEF in predicting the effect of the strain rates. In addition, the results show that Yeoh SEF performs much better than the other SEFs in predicting the material behavior in cases of dynamic biaxial and uniaxial tensile strain. The results also indicated that the newly designed mechanism was capable of performing dynamic tensile loading and extracting its accurate results and could reduce the cost of testing compared to other methods.
机译:本文提出了一种开发的新模型,以研究动态双轴和单轴拉伸负荷下的弹性体材料/聚烯烃弹性体(HDPE / POE共混物)的高硅氧化物行为。在该模型中使用了各种应变能功能(SEF),并且其能够通过实验数据验证了预测上述材料的超弹性行为的能力。在实验部件中,设计了一种新的动态拉伸装载机构,并开发成用于安装在滴重型的冲击试验机上。作为一种新颖性,这种机制能够对任何类型的材料进行单轴或双轴动态拉伸试验,特别是用于以各种应变率研究弹性体等材料的高硅基弹性行为。此外,已经为弹性体材料开发了一种新的超高速Coelastic模型,其可以以不同的应变率预测材料的行为。通过提高动态双轴和单轴载荷中的应变率,PUCCI-SACComandi和Yeoh SEF由于其较低的根均方误差预测了材料的动态行为。实际上,在这种情况下,这些功能比Mooney-rivlin,新妓女和多项式SEF更有能力,以预测应变率的效果。此外,结果表明,yeoh SEF比在动态双轴和单轴拉伸菌菌菌情况下预测材料行为的其他SEF更好。结果还表明,新设计的机理能够进行动态拉伸载荷并提取其准确的结果,并与其他方法相比降低测试成本。

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