激光粉末床熔合Ti6Al4V合金断裂约束效应的三维相场模拟

IF 4.7 2区 工程技术 Q1 MECHANICS
Yingmeng Xiao , Jingyu Sun , Filippo Berto , Guian Qian
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引用次数: 0

摘要

约束对断裂韧性的影响是评估工程结构完整性的关键问题。断裂的脆性相场模型(PFM)已推广到弹塑性固体。本研究旨在加深对增材制造Ti6Al4V合金断裂行为的约束效应的理解。采用实验和数值方法研究了不同裂纹长度和厚度的三维致密拉伸试样的断裂行为。结果表明,相场模型是评价三维裂纹金属材料在I型载荷作用下断裂约束效应的有效工具。采用单一参数集,弹塑性PFM可以准确地捕捉不同约束水平下试件的峰值荷载和峰后软化行为。虽然弹性PFM可以充分评估弹塑性材料的峰值载荷,但它缺乏复制材料软化曲线的能力。加载对面内约束的影响大于面外约束,在相同加载条件下,面内约束越小,试样断裂韧性越高,裂纹扩展时间越长。此外,PFM可以捕捉裂纹尖端的颈缩效应和裂纹扩展曲线,特别是弹塑性PFM可以准确有效地预测试件表面裂纹的形核、扩展甚至分支。这项工作有助于确定三维弹塑性材料在不同约束水平下的断裂韧性,并证明了未来使用PFM研究复杂结构断裂行为的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Three-dimensional phase-field modeling of the fracture constraint effects in Ti6Al4V alloy fabricated by laser powder bed fusion
The effect of constraint on fracture toughness is a critical issue in assessing the integrity of engineering structures. The brittle phase-field model (PFM) for fracture has been extended to the elastic–plastic solids. This study aims to enhance the understanding of constraint effects on the fracture behavior of an additively manufactured Ti6Al4V alloy. The fracture behavior of three-dimensional (3D) compact tension (CT) specimens with varying crack lengths and thicknesses is investigated experimentally and numerically. The results demonstrate that phase-field modeling is an effective tool for evaluating the fracture constraint effects of 3D cracked metalic material under mode I loading. With a single set of parameters, the elastic–plastic PFM accurately captures both the peak load and the post-peak softening behavior of specimens subjected to different constraint levels. While the elastic PFM can adequately assess peak loads in elastic–plastic materials, it lacks the capability to replicate the softening curve of the material. Loading affects in-plane constraints more than out-of-plane constraints, and the smaller the in-plane constraints, the higher the specimen fracture toughness and the longer the crack extension under the same loading conditions. In addition, the PFM can capture the necking effect at the crack tip and the crack propagation profiles, in particular, crack nucleation, propagation and even branching on the specimen surface can be accurately and effectively predicted by the elastic–plastic PFM. This work is beneficial in determining the fracture toughness of 3D elastic–plastic materials under different levels of constraint and demonstrates the feasibility of using PFM to study the fracture behavior of complex structures in the future.
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来源期刊
CiteScore
8.70
自引率
13.00%
发文量
606
审稿时长
74 days
期刊介绍: EFM covers a broad range of topics in fracture mechanics to be of interest and use to both researchers and practitioners. Contributions are welcome which address the fracture behavior of conventional engineering material systems as well as newly emerging material systems. Contributions on developments in the areas of mechanics and materials science strongly related to fracture mechanics are also welcome. Papers on fatigue are welcome if they treat the fatigue process using the methods of fracture mechanics.
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