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Linear micropolar elastic crack-tip fields under mixed mode loading conditions

机译:混合模式加载条件下的线性微极弹性裂纹尖端场

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Micropolar elasticity laws provide a possibility to describe constitutive properties of materials for which internal length scales may become important. They are characterized by the presence of couple stresses and nonsymmetric Cauchy stress tensor. Beyond the classical displacement field, the kinematical variables are augmented by a so-called microrotation field and its gradient, the latter introducing an internal length scale in the theory. For an isotropic, linear micropolar elastic material, the near-tip asymptotic field solutions for mode I and mode II cracks are derived. It is shown that these solutions behave similar to those according to the so-called couple stress theory, which has been investigated by Huang et al. (1997a), or similar to those derived for cellular materials by Chen et al. (1998). In particular, the singular fields have an order of singularity r~(-1/2) and are governed by some amplitude factors, having the meaning of stress intensity factors as in the classical linear elastic theory. The effect of material parameters on the stress intensity factors is studied by applying the finite element method to calculate the values of the stress intensity factors for an edge-cracked specimen of finite width.
机译:微极性弹性定律为描述材料的本构特性提供了可能,对于这些材料,内部长度尺度可能变得很重要。它们的特征是存在偶应力和非对称柯西应力张量。除了经典的位移场之外,运动变量还通过所谓的微旋转场及其梯度来增加,后者在理论上引入了内部长度尺度。对于各向同性的线性微极性弹性材料,导出了I型和II型裂纹的近尖端渐近场解。结果表明,这些解决方案的行为与根据Huang等人研究的所谓的偶应力理论相似。 (1997a),或类似于Chen等人(Chen et al。) (1998)。特别地,奇异场具有奇数r〜(-1/2)的阶数,并且由一些振幅因子控制,如经典线性弹性理论中那样具有应力强度因子的含义。通过应用有限元方法计算有限宽度的边缘裂纹试样的应力强度因子的值,研究了材料参数对应力强度因子的影响。

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