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An Analytical Approach in Prediction of Necking and Suitable Load Path in Tube Hydroforming by Using the Strain Gradient

机译:用应变梯度预测管型颈癌颈缩式和合适负载路径的分析方法

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A theoretical forming limit stress diagram (FLSD) for necking prediction which is based on the strain gradient theory of plasticity in conjunction with the M-K approach was represented and used in tube hydroforming. This approach introduces an internal length scale into conventional constitutive equations and takes into account the effects of deformation inhomogeneity and material softening. The nonlinear second-order ordinary differential equation of the thickness of tube has been solved by collocation method. It has been shown that this method overcomes the imperfection sensitivity encountered in the conventional M-K method. The predicted FLSD has been compared with published experimental hydroforming stress limit diagram and good agreement was found between them. The purpose of this work is the implementation of the forming limit stress diagram determined by the proposed methodology to obtain suitable load path in tube hydroforming. As a case study, the FE model for bulge forming of straight tube has been constructed and verified with published experimental data. Ultimately suitable load path has been obtained by applying Adaptive Simulation Method in ANSYS Parametric Design Language (APDL).
机译:基于与M-k方法结合塑性的应变梯度理论的缩颈预测的理论形成极限应力图(FLSD)用来用来管液压成形。该方法将内部长度刻度引入传统的本构体方程,并考虑了变形不均匀性和材料软化的影响。管厚度的非线性二阶常微分方程已经通过搭配方法解决了。已经表明该方法克服了传统M-K方法中遇到的缺陷敏感性。预测的FLSD已与已发表的实验性液压成形压力限制图进行了比较,并且在它们之间发现了良好的协议。该工作的目的是通过所提出的方法确定的形成极限应力图来获得管液中的合适的负载路径。如案例研究,通过公开的实验数据构建和验证了直管凸起的FE模型。最终通过在ANSYS参数设计语言(APDL)中应用自适应仿真方法获得了合适的负载路径。

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