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首页> 外文期刊>Journal of Engineering Mechanics >Temperature-Dependent Viscoelastic Model for Asphalt-Concrete Implemented within a Novel Nonlocal Damage Framework
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Temperature-Dependent Viscoelastic Model for Asphalt-Concrete Implemented within a Novel Nonlocal Damage Framework

机译:新型非局部损伤框架内实施的沥青混凝土温度依赖粘弹性模型

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摘要

A viscoelastic constitutive model for an asphalt-concrete (AC) material that accounts for temperature and material degradation effects is proposed. The model is implemented within a finite-element framework and consists of a new nonlocal damage regularization approach that is based on a nondimensional equivalent stress measure. The viscoelastic model is introduced as a generalized Maxwell model with the shear modulus described in terms of Prony series. Damage behavior is described in rate form with an anisotropic damage accumulation law for tension, compression, and shear loadings. Prediction of the AC response is obtained by solving the nonlinear system, which includes an equilibrium equation that is coupled to a nonlocal damage equation. The latter introduces a length scale in the problem that renders the damage results mesh-independent. The system is solved implicitly until convergence using a robust staggered scheme. A rigorous material calibration is carried out for both viscoelastic and damage material parameters using optimization techniques. The proposed material model is validated by comparison to published experimental tests conducted on a range of temperatures from-20°C to 0°C. In particular, an Arrhenius-type relation is introduced to describe the dependence of material damage on temperature. Good agreement between predicted and experimental results shows that the proposed model is suitable for describing the thermoviscoelastic damage behavior of common AC.
机译:提出了一种粘合粘弹性组成型模型,用于占温度和材料降解效果的沥青混凝土(AC)材料。该模型是在有限元框架内实现的,并且由新的非函数损伤正则化方法组成,该方法基于非跨度等效应力测量。粘弹性模型作为广义麦克斯韦模型引入,具有柱系列的剪切模量。损坏行为以速率形式描述,具有张力,压缩和剪切载荷的各向异性损伤累积规律。通过求解非线性系统来获得对AC响应的预测,该非线性系统包括耦合到非识别损伤方程的平衡方程。后者在问题上引入了一个长度尺度,使损坏结果与网格无关。系统隐含地解决,直到使用稳健交错方案收敛。使用优化技术对粘弹性和损坏材料参数进行严格的材料校准。通过与在-20℃至0℃的温度范围内进行的公布的实验试验进行验证,验证所提出的材料模型。特别地,引入了Arrhenius类型的关系来描述材料损伤对温度的依赖性。预测和实验结果之间的良好一致性表明,所提出的模型适用于描述普通AC的热滤池损伤行为。

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