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Constitutive Relation of Engineering Material Based on SIR Model and HAM

机译:基于SIR模型和HAM的工程材料本构关系

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摘要

As an epidemic mathematical model, the SIR model represents the transition of the Susceptible, Infected, and Recovered. The profound implication of the SIR model is viewed as the propagation and dynamic evolutionary process of the different internal components and the characteristics in a complex system subject to external effect. The uniaxial stress-strain curve of engineering material represents the basic constitutive relation, which also represents the damage propagation in the units of the damaged member. Hence, a novel dynamic stress-strain model is established based on the SIR model. The analytical solution and the approximate solution for the proposed model are represented according to the homotopy analysis method (HAM), and the relationship of the solution and the size effect and the strain rate is discussed. In addition, an experiment on the size effect of confined concrete is carried out and the solution of SIR model is suitable for simulation. The results show that the mechanical mechanism of the parameters of the uniaxial stress-strain model proposed in this paper reflects the actual characteristics of the materials. The solution of the SIR model can fully and accurately show the change of the mechanical performance and the influence of the size effect and the strain rate.
机译:作为流行病数学模型,SIR模型代表易感性,感染性和恢复性的转变。 SIR模型的深刻含义被视为不同内部组件以及受外部影响的复杂系统中特性的传播和动态演化过程。工程材料的单轴应力-应变曲线代表了基本的本构关系,也代表了以损伤构件为单位的损伤传播。因此,基于SIR模型建立了一种新型的动态应力-应变模型。根据同伦分析方法(HAM)表示了所提出模型的解析解和近似解,并讨论了该解与尺寸效应和应变率之间的关系。此外,还进行了承压混凝土尺寸效应的实验,SIR模型的求解适合于模拟。结果表明,本文提出的单轴应力应变模型参数的力学机理反映了材料的实际特性。 SIR模型的解可以完全准确地显示机械性能的变化以及尺寸效应和应变率的影响。

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