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首页> 外文期刊>International Journal of Fatigue >A Meso-scale Damage Evolution Model For Cyclic Fatigue Of Viscoplastic Materials
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A Meso-scale Damage Evolution Model For Cyclic Fatigue Of Viscoplastic Materials

机译:粘塑性材料循环疲劳的细观损伤演化模型

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摘要

This study presents an approach to predict the degree of material degradation and the resulting changes in elastic, plastic and creep constitutive properties of viscoplastic materials, during cyclic loading in micro-scale applications. The objective of the study is to address the initiation and growth of homogeneous meso-scale damage, in the form of distributions of micro-cracks and micro-voids, due to cyclic, plastic (rate-independent inelastic) and creep (rate-dependent inelastic) deformations in viscoplastic materials and to evaluate the resulting changes in the effective meso-scale elastic, plastic and creep constitutive properties. An energy partitioning damage evolution (EPDE) model is proposed to describe the viscoplastic damage evolution. Development of the EPDE model constants is then demonstrated for a Pb-free solder, based on cyclic fatigue test data. Application of the EPDE model is demonstrated for solder joint fatigue during thermal cycling of a ball grid array (BGA) electronic assembly. A 3D viscoplastic finite element analysis is conducted, and damage evolution is modeled using a successive initiation (SI) technique reported earlier by the authors. In this approach, the local (meso-scale) material properties are progressively degraded and highly damaged sections of the macro-scale structure are ultimately eliminated, using the EPDE model. Prediction of damage initiation and propagation is presented both with and without property updating, for comparison purposes. The analysis shows that the EPDE model can realistically capture the softening observed during cyclic loading.
机译:这项研究提出了一种方法,可以预测在微型应用中的循环加载过程中粘塑性材料的材料降解程度以及由此产生的粘弹性,塑性和蠕变本构特性的变化。该研究的目的是解决由于循环,塑性(与速率无关的非弹性)和蠕变(与速率有关的)引起的均匀细观损伤的发生和增长,形式为微裂纹和微孔的分布塑性材料的非弹性变形),并评估有效介观尺度的弹性,塑性和蠕变本构性质的变化。提出了能量分配损伤演化模型(EPDE)来描述粘塑性损伤演化。然后根据循环疲劳测试数据证明了无铅焊料的EPDE模型常数的发展。演示了EPDE模型的应用对于球栅阵列(BGA)电子组件热循环过程中焊点疲劳的影响。作者进行了3D粘塑性有限元分析,并使用作者先前报道的连续起爆(SI)技术对损伤演化进行了建模。在这种方法中,使用EPDE模型可以逐渐降低局部(中尺度)材料的性能,并最终消除宏观结构中高度受损的部分。为了比较起见,在有和没有属性更新的情况下,都给出了损坏发生和传播的预测。分析表明,EPDE模型可以真实地捕获循环加载过程中观察到的软化。

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