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Evaluation of Stress and Strain Measurement Accuracy in Hydraulic Bulge Test with the Aid of Finite-element Analysis

机译:借助有限元分析评价液压凸出试验中应力和应变测量精度

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Numerical simulations of the hydraulic bulge test are carried out by the implicit static finite-element method. The sheet specimen is characterized as a rate-independent elastoplastic material with a power-law hardening rule. The stress and strain relationship of the specimen is evaluated from the internal pressure and nodal coordinates obtained in the finite-element simulation of the hydraulic bulge test. Varying the gauge lengths of the spherometer and extensometer and the ratio of the initial thickness to the diameter of the specimen, their influences on the estimated stress and strain are investigated. By comparing the estimated stress-strain relationship with that of exact input data, the stress and strain measurement accuracy is assessed. Furthermore, the stress state at the apex is examined for orthotropic specimens and is found to deviate by 1–5% from the equi-biaxial stress state.
机译:通过隐式静态有限元方法进行液压凸出试验的数值模拟。片样标本表征为具有动力法硬化规则的速率无关的弹塑性材料。试样的应力和应变关系由在液压凸起试验的有限元模拟中获得的内部压力和节点坐标进行评价。研究了球仪和扩展仪的规格长度和初始厚度与样本直径的比率,研究了它们对估计应力和菌株的影响。通过将估计的应力 - 应变关系与精确输入数据的比较,评估应力和应变测量精度。此外,针对正交样品检查顶点处的应力状态,发现从平等双轴应力状态偏离1-5%。

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