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Self-driven tunneling crack arrays-a 3D-fracture mechanics bifurcation analysis

机译:自驱动隧穿裂纹阵列——3D断裂力学分岔分析

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Tunneling cracks driven by drying in a ceramic precursor confined between two glass plates represent a simple type of three-dimensional (3D) crack pattern. They arrange themselves via mutual unloading which causes some cracks to stop whereby the remaining ones get the right spacing for further propagation. By extending a 2D-model of self-driven propagation of crack arrays, a fracture mechanical bifurcation analysis for 3D-crack patterns based on calculating the post-critical contour of the alternating bifurcation mode has been developed. Shrinkage due to drying is replaced here by a simplified thermo-mechani-cal model based on an effective heat flow whose related temperature field and thermal stresses drive crack propagation. By means of the finite element method, the propagation velocity and the minimum spacing between the steady-state parallel tunnelling cracks are determined. Comparison of theory and experiment suggests that propagation may be non-stationary in these experiments. The observed relation between crack spacing and layer thickness, p approx e~(2/3), follows from a scaling analysis.
机译:在限制在两个玻璃板之间的陶瓷前体中干燥引起的隧穿裂纹代表了一种简单的三维(3D)裂纹图案。它们通过相互卸载来排列自己,这导致一些裂缝停止,从而使其余裂缝获得正确的间距以进一步传播。通过扩展裂纹阵列自驱动传播的2D模型,开发了基于计算交替分叉模式的临界后轮廓的3D裂纹模式的断裂机械分叉分析。在此,基于有效热流的简化热力学模型代替了干燥引起的收缩,该模型具有相关的温度场和热应力来驱动裂纹扩展。通过有限元方法,确定了稳态平行隧穿裂纹之间的传播速度和最小间距。理论和实验的比较表明,在这些实验中传播可能是不稳定的。裂纹间距与层厚之间的关系p约为e〜(2/3),来自比例分析。

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