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Yield surface and complex loading path simulation of a duplex stainless steel using a bi-phase polycrystalline model

机译:双相多晶模型屈服表面和复合不锈钢的复合负载路径模拟

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In order to model the elasto-viscoplastic behaviour of an austenitic-ferritic stainless steel, the model initially developed by Cailletaud-Pilvin [1] [2] and used for modeling single-phase polycrystalline steel is extended in order to take into account the bi-phased character of a duplex steel. Two concentration laws and two local constitutive laws, based on the crystallographic slips and the dislocation densities, are thus simultaneously considered. The model parameters are identified by an inverse method. Simple tests among which tension test at constant strain rate and at different strain rates and uniaxial tension-compression test are used during the identification step. The predictive capabilities of the polycrystalline model are tested for non-proportional loading paths. It is shown that the model reproduces the over-hardening experimentally observed for this kind of loading paths. Then, yield surfaces are simulated during a uniaxial tension-compression test: it is shown that the distortion (i.e. plastic anisotropy induced by loading path) is correctly described.
机译:为了模拟奥氏体 - 铁素体不锈钢的弹性粘胶行为,延长了Cailletaud-pilvin [1] [2]最初开发的模型,并用于建模单相多晶钢,以考虑到BI双工钢的相对。因此,同时考虑基于晶体滑动和脱位密度的两个浓度法和两种局部构成法。模型参数通过逆方法识别。在识别步骤期间使用在恒定应变率和不同应变速率和单轴张力 - 压缩试验处的张力试验的简单测试。多晶模型的预测能力对于非比例加载路径测试。结果表明,该模型再现了对这种装载路径进行了实验观察的过硬化。然后,在单轴张力 - 压缩试验期间模拟屈服表面:示出了正确描述失真(即通过装载路径引起的塑性各向异性)。

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