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首页> 外文期刊>International Journal of Fracture >Mixed-mode fracture of ductile thin-sheet materials under combined in-plane and out-of-plane loading
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Mixed-mode fracture of ductile thin-sheet materials under combined in-plane and out-of-plane loading

机译:平面内和平面外组合载荷作用下韧性薄板材料的混合模式断裂

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摘要

Cracks in thin structures often are subjected to combined in-plane and out-of-plane loading conditions leading to complex mixed mode conditions in the crack tip region. When applied to ductile materials, large out-of-plane displacements make both experimentation and modeling difficult. In this work, the mixed-mode behavior of thin, ductile materials containing cracks undergoing combined in-plane tension (mode I) and out-of-plane shear (mode III) deformation is investigated experimentally. Mixed-mode fracture experiments are performed and full, three-dimensional (3D) surface deformations of thin-sheet specimens from aluminum alloy and steel are acquired using 3D digital image correlation. General characteristics of the fracture process are described and quantitative results are presented, including (a) the fracture surface, (b) crack path, (c) load-displacement response, (d) 3D full-field surface displacement and strain fields prior to crack growth, (e) radial and angular distributions of the crack-tip strain fields prior to crack growth and (f) singularity analysis of the crack-tip strains prior to crack growth. Results indicate that the introduction of a mode III component to the loading process (a) alters the crack tip fields relative to those measured during nominally mode I loading and (b) significantly increases the initial and stable critical crack-opening-displacement. The data on strain fields in both AL6061-T6 aluminum and GM6208 steel consistently show that for a given strain component, the normalized angular and radial strains at all load levels can be reasonably represented by a single functional form over the range of loading considered, confirming that the strain fields in highly ductile, thin-sheet material undergoing combined in-plane tension and out-of-plane shear loading can be expressed in terms of separable angular and radial functions. For both materials, the displacement and strain fields are (a) similar for both mixed-mode loading angles Φ = 30° and Φ = 60° and (b) different from the fields measured for Mode I loading angle Φ = 0°. Relative to the radial distribution, results indicate that the in-plane strain components do not uniformly exhibit the singularity trends implicit in the HRR theory.
机译:薄结构中的裂纹通常要经受面内和面外的合并载荷条件,从而导致裂纹尖端区域内出现复杂的混合模态。当应用于延性材料时,大的平面外位移使实验和建模都变得困难。在这项工作中,实验研究了包含裂纹的薄而易延展材料的混合模式行为,这些裂纹经历了平面内拉伸(模式I)和平面外剪切(模式III)变形。进行混合模式断裂实验,并使用3D数字图像相关性从铝合金和钢获得薄板试样的完整三维(3D)表面变形。描述了断裂过程的一般特征并给出了定量结果,包括(a)断裂表面,(b)裂纹路径,(c)载荷-位移响应,(d)3D全场表面位移和应变场裂纹扩展,(e)裂纹扩展之前的裂纹尖端应变场的径向和角度分布,以及(f)裂纹扩展之前的裂纹尖端应变的奇异性分析。结果表明,在加载过程中引入III型组分(a)相对于标称I型加载过程中测得的裂纹尖端场发生了改变,并且(b)显着增加了初始和稳定的临界裂纹张开位移。 AL6061-T6铝和GM6208钢的应变场数据一致表明,对于给定的应变分量,在考虑的载荷范围内,可以通过单一功能形式合理地表示所有载荷水平下的标准化角向和径向应变,这证实了可以用可分离的角函数和径向函数来表示高延展性,薄板材料经受平面内张力和平面外剪切载荷的应变场。对于这两种材料,位移和应变场(a)对于混合模式加载角Φ= 30°和Φ= 60°都是相似的,并且(b)与对于模式I加载角Φ= 0°测得的场不同。相对于径向分布,结果表明面内应变分量不能均匀地表现出HRR理论中隐含的奇异趋势。

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