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Anisotropic plasticity model coupled with Lode angle dependent strain-induced transformation kinetics law

机译:各向异性塑性模型,与依赖于倾角的应变诱发转变动力学定律耦合

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A phenomenological macroscopic plasticity model is developed for steels that exhibit strain-induced austenite-to-martensite transformation. The model makes use of a stress-state dependent transformation kinetics law that accounts for both the effects of the stress triaxiality and the Lode angle on the rate of transformation. The macroscopic strain hardening is due to nonlinear kinematic hardening as well as isotropic hardening. The latter contribution is assumed to depend on the dislocation density as well as the current martensite volume fraction. The constitutive equations are embedded in the framework of finite strain isothermal rate-independent anisotropic plasticity. Experimental data for an anisotropic austenitic stainless steel 301 IN is presented for uniaxial tension, uniaxial compression, transverse plane strain tension and pure shear. The model parameters are identified using a combined analytical-numerical approach. Numerical simulations are performed of all calibration experiments and excellent agreement is observed. Moreover, we make use of experimental data from ten combined tension and shear experiments to validate the proposed constitutive model. In addition, punch and notched tension tests are performed to evaluate the model performance in structural applications with heterogeneous stress and strain fields.
机译:对于表现出应变诱导的奥氏体到马氏体相变的钢,建立了现象学的宏观可塑性模型。该模型利用了应力状态相关的转变动力学定律,该定律考虑了应力三轴性和洛德角对转变速率的影响。宏观应变硬化归因于非线性运动硬化以及各向同性硬化。假定后者的贡献取决于位错密度以及当前的马氏体体积分数。本构方程被嵌入到与应变无关的有限应变等温各向异性塑性中。给出了各向异性奥氏体不锈钢301 IN的单轴拉伸,单轴压缩,横向平面应变拉伸和纯剪切的实验数据。使用组合的分析数值方法识别模型参数。所有校准实验均进行了数值模拟,并且观察到了极好的一致性。此外,我们利用十个组合拉伸和剪切实验的实验数据来验证所提出的本构模型。此外,还进行了冲孔和缺口拉伸试验,以评估结构应用中具有非均匀应力和应变场的模型性能。

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