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3D SSY Estimate of EPFM Constraint Parameter under Biaxial Loading for Sensor Structure Design ?

机译:双轴载荷下EPFM约束参数的3D SSY估计用于传感器结构设计?

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Conventional sensor structure design and related fracture mechanics analysis are based on the single J -integral parameter approach of elastic-plastic fracture mechanics (EPFM). Under low crack constraint cases, the EPFM one-parameter approach generally gives a stress overestimate, which results in a great cost waste of labor and sensor components. The J-A two-parameter approach overcomes this limitation. To enable the extensive application of the J-A approach on theoretical research and sensor engineering problem, under small scale yielding (SSY) conditions, the authors developed an estimate method to conveniently and quickly obtain the constraint (second) parameter A values directly from T -stress. Practical engineering application of sensor structure analysis and design focuses on three-dimensional (3D) structures with biaxial external loading, while the estimate method was developed based on two-dimensional (2D) plain strain condition with uniaxial loading. In the current work, the estimate method was successfully extended to a 3D structure with biaxial loading cases, which is appropriate for practical sensor design. The estimate method extension and validation process was implemented through a thin 3D single edge cracked plate (SECP) specimen. The process implementation was completed in two specified planes of 3D SECP along model thickness. A wide range of material and geometrical properties were applied for the extension and validation process, with material hardening exponent value 3, 5 and 10, and crack length ratio 0.1, 0.3 and 0.7.
机译:常规的传感器结构设计和相关的断裂力学分析是基于弹塑性断裂力学(EPFM)的单个J积分参数方法。在低裂纹约束情况下,EPFM单参数方法通常会过高估计应力,从而导致劳动和传感器组件的大量成本浪费。 J-A两参数方法克服了此限制。为了使JA方法能够在理论研究和传感器工程问题上得到广泛应用,在小规模屈服(SSY)条件下,作者开发了一种估计方法,可以直接从T应力方便快捷地获得约束(第二)参数A值。 。传感器结构分析和设计的实际工程应用集中在具有双轴外部载荷的三维(3D)结构上,而估计方法是基于具有单轴载荷的二维(2D)平面应变条件开发的。在当前的工作中,估计方法已成功扩展到具有双轴加载情况的3D结构,这适合于实际的传感器设计。估计方法的扩展和验证过程是通过薄3D单边裂纹板(SECP)标本实现的。沿模型厚度,在两个指定的3D SECP平面中完成了该过程的实现。扩展和验证过程应用了广泛的材料和几何特性,材料硬化指数分别为3、5和10,裂纹长度比为0.1、0.3和0.7。

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