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Fracture of viscoelastic solids modeled with a modified phase field method

机译:修正相场法模拟粘弹性固体的断裂

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Fracture of viscoelastic solids plays an important role in many applications but it is not yet well understood. In addition to the time and rate dependent response of viscoelastic materials, fracture of these solids is governed by nonlinear processes at the fracture process zone and could also be accelerated by viscous energy dissipation. To this end, we propose a new phase field formulation in which fracture of viscoelastic solids is driven by both elastic and viscous components of the energy. The formulation requires a single additional parameter to quantify the portion of the viscous energy that contributes to fracture and is shown to be thermodynamically consistent. Viscoelastic material behavior, in the form of a Generalized Maxwell model, is obtained through a standard Prony-series type expansion. Fracture driven by viscous dissipation is studied on several important benchmark problems, including (i) a bar under creep, relaxation, strain rate and cyclic loadings, and (ii) two 3-point asphalt-beam bending problems that lead to crack propagation under mode I and mixed mode conditions. It is shown that at low strain rates viscous dissipation accelerates the fracture growth rate but essentially does not affect the crack path, while at high rates the effect of viscous dissipation is minor. (C) 2018 Elsevier B.V. All rights reserved.
机译:粘弹性固体的断裂在许多应用中起着重要的作用,但是还没有被很好地理解。除了粘弹性材料的时间和速率相关响应外,这些固体的断裂还受断裂过程区域的非线性过程控制,并且还可能因粘性能量耗散而加速。为此,我们提出了一种新的相场公式,其中粘弹性固体的断裂是由能量的弹性和粘性成分共同驱动的。该配方需要单个附加参数来量化有助于断裂的粘性能量部分,并显示出热力学一致性。通过标准的Prony系列类型扩展,可以得到广义Maxwell模型形式的粘弹性材料行为。对粘性耗散驱动的断裂进行了研究,研究了几个重要的基准问题,其中包括(i)蠕变,松弛,应变率和循环载荷下的钢筋,以及(ii)导致在模式下裂纹扩展的两个三点沥青梁弯曲问题我和混合模式条件。结果表明,在低应变速率下,粘性耗散会促进裂缝的生长,但基本上不影响裂纹路径,而在高应变速率下,粘性耗散的影响很小。 (C)2018 Elsevier B.V.保留所有权利。

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