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首页> 外文期刊>International Journal of Solids and Structures >A dynamic phase field model with no attenuation of wave speed for rapid fracture instability in hyperelastic materials
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A dynamic phase field model with no attenuation of wave speed for rapid fracture instability in hyperelastic materials

机译:一种动态相场模型,无波动衰减波速,以超细材料快速断裂不稳定

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Numerical experiments on phase field modeling of the fracture in pre-strained hyperelastic materials reveal that the classical mechanical-based dynamic phase field model is ineffective in the framework of non-linear deformation. The aspiration to gain insight into rapid fracture instability motivated us to develop a novel dynamic phase field model characterized by wave velocity invariance, enabling crack propagation at a velocity approach to the asymptotic limit. Given that the numerical treatment of rapid fractures involves extremely high spatiotemporal resolution, robust explicit dynamics and a tried-and-tested multi-level hybrid adaptive mesh algorithm are invoked. More crucially, an original adaptive distorted mesh removal scheme (ADMR) was developed to cope with the intractable finite element mesh distortion problem in large deformation fractures. The detailed numerical implementation for entire procedures is outlined, and its reliability is verified by two quasi-static fracture benchmarks. Utilizing the proposed model and innovative algorithms, the arresting ultrahigh-speed crack oscillation and tip-splitting instabilities captured in the fracture experiments of brittle gels were successfully reproduced. The critical crack velocity at the onset of the instability is also identified, close to the experimental measurements. (C) 2020 Elsevier Ltd. All rights reserved.
机译:预束性超弹性材料中骨折的相现场模拟的数值实验表明,经典的基于机械的动态相场模型在非线性变形框架中无效。进入快速断裂不稳定性的愿望激励我们开发一种新的动态相场模型,其特征在于波速度不变性,使得能够以渐近极限的速度方法裂纹传播。鉴于快速骨折的数值治疗涉及极高的时空分辨率,强大的显式动力学和验证和测试的多级混合自适应网格算法。更令人遗症的是,开发了一种原始的自适应扭曲的网格去除方案(ADMR)以应对大变形骨折中的难以接触的有限元网畸变问题。概述了整个过程的详细数值实现,其可靠性由两个准静态骨折基准验证。利用所提出的模型和创新算法,成功再现了在脆性凝胶的断裂实验中捕获的阻止超高速度裂纹振荡和尖端分裂不含性。还识别出不稳定性发作的临界裂缝速度,接近实验测量。 (c)2020 elestvier有限公司保留所有权利。

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