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A Hyper-Elastic Creep Approach and Characterization Analysis for Rubber Vibration Systems

机译:橡胶振动系统的超弹性蠕变方法和特性分析

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摘要

Rubber materials are extensively utilized for vibration mitigation. Creep is one of the most important physical properties in rubber engineering applications, which may induce failure issues. The purpose of this paper is to provide an engineering approach to evaluate creep performance of rubber systems. Using a combination of hyper-elastic strain energy potential and time-dependent creep damage function, new creep constitutive models were developed. Three different time-decay creep functions were provided and compared. The developed constitutive model was incorporated with finite element analysis by user subroutine and its engineering potential for predicting the creep response of rubber vibration devices was validated. Quasi-static and creep experiments were conducted to verify numerical solutions. The time-dependent, temperature-related, and loading-induced creep behaviors (e.g., stress distribution, creep rate, and creep degree) were explored. Additionally, the time–temperature superposition principle was shown. The present work may enlighten the understanding of the creep mechanism of rubbers and provide a theoretical basis for engineering applications.
机译:橡胶材料被广泛用于减轻振动。蠕变是橡胶工程应用中最重要的物理特性之一,它可能会引起故障问题。本文的目的是提供一种评估橡胶系统蠕变性能的工程方法。结合超弹性应变能势和随时间变化的蠕变损伤函数,开发了新的蠕变本构模型。提供并比较了三种不同的时变蠕变函数。通过用户子例程将开发的本构模型与有限元分析相结合,并验证了其在预测橡胶振动装置的蠕变响应方面的工程潜力。进行了准静态和蠕变实验以验证数值解。探索了与时间有关,与温度有关和由载荷引起的蠕变行为(例如应力分布,蠕变速率和蠕变度)。此外,还展示了时间-温度叠加原理。本文的工作可能会启发人们对橡胶蠕变机理的理解,并为工程应用提供理论依据。

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