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An effective crack tip region finite element sub-model for fracture mechanics analysis

机译:用于断裂力学分析的有效裂纹尖端区域有限元子模型

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Purpose: To create an effective in engineering strength calculation three-dimensional submodel of the near crack tip region in solids for hi-fidelity analysis of their stress-strain state by the finite element method. Design/methodology/approach: To create a volume near the crack tip, regular threedimensional 20-node prismatic isoparametric elements and 15-node special elements with edge length of 12.5 μm with shifted nodes in order to simulate the singularity of stress at the crack tip were used. Using these two types of elements, a cylindrical fragment of diameter of 100 μm was built. In its base is a 16-vertex polygon, and its axis is the crack front line. In the radial direction the size of the elements was smoothly enlarged by creating of 5 circular layers of elements, and in the axial direction 8 layers were created. For convenience of the sub-model usage, the cylindrical fragment was completed by regular elements to a cubic form with edge size 400 μm. For the sub-model approbation, the full-scale three-dimensional models of standard specimens with cracks were built. The stress intensity factor K at normal tension was calculated assuming small scale yielding conditions in a plane between 4th and 5th layers of special elements on the basis of analysis of displacement fields near the crack tip. Findings: An effective three-dimensional sub-model of the near crack tip region is proposed. The sub-model was used to obtain the dependence of the stress intensity factor on the relative crack length at normal tension for four types of standard specimens. The obtained dependences show excellent correlation with known analytical solutions. Research limitations/implications: The concept of finite element meshing at threedimensional modelling of the near crack tip region for high-fidelity stress-strain state analysis was generalized. A sub-model of the near crack tip region was created and used to determine the stress intensity factor at normal tension of four types of standard specimens. It is shown that the proposed methodology is effective for precise analysis of the stressstrain state of solids with cracks within the framework of linear fracture mechanics. Practical implications: By applying the generalized approach and the proposed threedimensional sub-model of the near crack tip region, one can determine the stress-strain state of structure elements and machine parts when analysing their workability by the finite element method. Originality/value: An effective finite-element sub-model for the stress-strain state analysis in the vicinity of the crack tip within the framework of the linear fracture mechanics is proposed.
机译:目的:建立有效的工程强度计算三维模型的固体近裂纹尖端区域,以便通过有限元方法对它们的应力-应变状态进行高保真度分析。设计/方法/方法:要在裂纹尖端附近创建体积,请使用规则的三维20节点棱形等参元素和15节点特殊元素(边缘长度为12.5μm,节点偏移),以模拟裂纹尖端的应力奇异性被使用。使用这两种类型的元素,构建了直径为100μm的圆柱形碎片。在其底部是一个16顶点多边形,其轴是裂纹前线。在径向上,通过形成5个圆形的元件层,元件的尺寸被平滑地扩大,并且在轴向上,形成了8层。为了方便子模型的使用,圆柱形碎片由规则元素完成,以边长为400μm的立方形式完成。对于子模型验证,建立了带有裂纹的标准试样的全尺寸三维模型。在分析裂纹尖端附近的位移场的基础上,假设在第4层和第5层特殊元素之间的平面中存在小规模屈服条件,计算法向张力下的应力强度因子K。研究结果:提出了一种有效的裂纹尖端附近区域的三维子模型。该子模型用于获得四种标准试样的应力强度因子与法向拉伸时相对裂纹长度的相关性。所获得的依赖性显示出与已知分析解决方案的极好的相关性。研究局限性/意义:提出了在高裂纹应力应变状态分析附近裂纹尖端区域的三维建模中进行有限元网格划分的概念。创建了近裂纹尖端区域的子模型,并将其用于确定四种类型标准试样在法向张力下的应力强度因子。结果表明,所提出的方法可以有效地分析线性裂纹力学范围内具有裂纹的固体的应力应变状态。实际意义:通过应用广义方法和拟议的近裂纹尖端区域三维子模型,可以通过有限元方法分析结构元件和机械零件的可加工性,从而确定其应力应变状态。独创性/价值:提出了一种有效的有限元子模型,用于在线性断裂力学框架内的裂纹尖端附近进行应力-应变状态分析。

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