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Potential-based and non-potential-based cohesive zone formulations under mixed-mode separation and over-closure. Part Ⅰ: Theoretical analysis

机译:混合模式分离和过度闭合下的基于势和基于非势的内聚区公式。第一部分:理论分析

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摘要

This paper presents a thorough analysis of potential-based and non-potential-based cohesive zone models (CZMs) under conditions of mixed-mode separation and mixed-mode over-closure. Problems are identified with the well established potential-based Xu-Needleman (XN) model and a number of new potential-based and non-potential-based models are proposed. It is demonstrated that derivation of traction-separation relationships from a potential function can result in non-physical repulsive normal tractions and instantaneous negative incremental energy dissipation under displacement controlled monotonic mixed-mode separation when the work of tangential separation exceeds the work of normal separation. A modified potential-based (MP) model is proposed so that the zone in which repulsive normal tractions occur can be controlled. The MP model also provides an additional benefit of correct penalisation of mixed-mode over-closure, in contrast to the XN model. In order to fully eliminate the problem of repulsive normal tractions a non-potential-based CZM (NP1) is also proposed. This model is shown to provide physically realistic behaviour under conditions of displacement controlled mixed-mode separation and over-closure. Noting that the form of the traction-separation equations differ for mode Ⅰ and mode Ⅱ separation for the XN, MP and NP1 models, an additional non-potential-based model (NP2) is proposed so that near mode-independent behaviour can be achieved in displacement controlled separation, while correctly penalising over-closure. Following from the NP2 model, a non-potential-based model in which coupling is based on the separation magnitude is considered (SMC model). In the final part of the paper the performance of each model under traction controlled mixed-mode separation is investigated by numerically inverting the traction-separation equations. Separation paths for the XN model reveal a strong bias toward mode Ⅰ separation while the NP1 model exhibits a bias towards mode Ⅱ separation. Interestingly, the NP2 model exhibits a high degree of mode sensitivity under traction controlled conditions, in contrast to its near mode independence under displacement controlled conditions. It is demonstrated that incorrect weighting of the coupling terms in non-potential models can lead to the existence of a singularity under traction controlled conditions. Finally, it is demonstrated that the potential-based models fail to capture a gradual change from mode Ⅱ to mode Ⅰ work of separation, as reported experimentally for traction controlled interface separation. In a follow-on Part Ⅱ companion paper a number of case studies are simulated, demonstrating that the theoretical findings of the present paper have significant implications for the finite element prediction of interface debonding.
机译:本文对混合模式分离和混合模式过度闭合条件下的基于势和基于非势的内聚区模型(CZM)进行了全面的分析。已建立的基于势的Xu-Needleman(XN)模型可以识别问题,并提出了许多新的基于势和基于非势的模型。结果表明,当切向分离的功超过正切分离的功时,在位移控制的单调混合模分离下,从势函数推导分离关系可导致非物理排斥法向牵引和瞬时负增量能量耗散。提出了一种改进的基于势能(MP)的模型,以便可以控制发生排斥力的区域。与XN模型相比,MP模型还提供了混合模式过度闭合的正确惩罚的另一个好处。为了完全消除排斥法向牵引力的问题,还提出了一种基于非势能的CZM(NP1)。该模型显示在位移控制的混合模式分离和过度闭合的条件下提供了物理上逼真的行为。注意到对于XN,MP和NP1模型,模式Ⅰ和模式Ⅱ的牵引分离方程式形式不同,因此提出了一个附加的非基于势能的模型(NP2),从而可以实现与模式无关的行为排量控制的分离,同时适当地惩罚过度闭合。从NP2模型开始,考虑基于耦合幅度基于耦合的非电位模型(SMC模型)。在本文的最后部分,通过对牵引分离方程进行数值求逆,研究了每种模型在牵引控制混合模式分离下的性能。 XN模型的分离路径显示了对模式Ⅰ分离的强烈偏见,而NP1模型显示了对模式Ⅱ分离的偏见。有趣的是,NP2模型在牵引力控制条件下表现出高度的模式敏感性,而在位移控制条件下则具有近模式独立性。证明了在非势能模型中耦合项的不正确加权会导致在牵引力控制条件下存在奇异性。最后,证明了基于势能的模型无法捕获从模式Ⅱ到模式Ⅰ的分离工作的逐渐变化,这是针对牵引控制界面分离的实验报道。在第二部分的后续论文中,对许多案例进行了模拟,证明了本文的理论发现对界面剥离的有限元预测具有重要意义。

著录项

  • 来源
    《Journal of the Mechanics and Physics of Solids》 |2014年第2期|336-362|共27页
  • 作者单位

    Mechanical and Biomedical Engineering, College of Engineering and Informatics, National University of Ireland, Galway, Galway, Ireland, United Kingdom;

    Mechanical and Biomedical Engineering, College of Engineering and Informatics, National University of Ireland, Galway, Galway, Ireland, United Kingdom;

    SIMAP, Institut National Polytechnique de Grenoble, Grenoble, France;

    Department of Mechanical Engineering, University of California Santa Barbara, Santa Barbara, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cohesive Zone; Fracture; Contact mechanics;

    机译:粘性区;断裂;接触技工;

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