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Elasto-Viscoplastic Material Model of a Directly-Cast Low-Carbon Steel at High Temperatures

机译:高温直接铸造低碳钢的弹粘材料模型

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摘要

A model-based process control of material production processes demands realistic material models describing the local evolution of the thermal and mechanical state variables, i.e., temperature, stress, strain, or plastic strain, for the relevant microstructure state. In the present work, a material model for the specific microstructure in a continuously cast strand shell, viable for reproducing cyclic viscoplastic effects, was developed for a 0.17 wt.% C steel. Experimental data was generated using directly-cast samples and a well-controllable testing facility to apply representative loading conditions. Displacement- and force-controlled experiments in the temperature range of 700–1100 °C were conducted, with a special focus on the relevant strain rates documented for the straightening operation. A temperature-dependent constitutive material model combining elastic, plastic, and viscoplastic effects was parameterized to fit the whole set of experimentally-determined material response curves. In order to account for the cyclic plastic material response, a combination of isotropic and kinematic hardening was considered. The material model sets a new standard for the material description of a continuously cast strand shell, and it can be applied in elaborate continuous casting simulations.
机译:基于模型的材料生产过程的过程控制需要逼真的材料模型,这些模型描述热和机械状态变量(即相关的微结构状态)的局部演变,即温度,应力,应变或塑性应变。在本工作中,针对0.17 wt。%的C钢,开发了可用于再现循环粘塑性效应的连续铸造线坯壳中特定微观结构的材料模型。实验数据是使用直接浇铸的样品和可控的测试设备生成的,以应用代表性的加载条件。在700-1100°C的温度范围内进行了位移和力控制的实验,特别关注了矫直操作中记录的相关应变率。结合弹性,塑性和粘塑性效应的温度相关本构材料模型被参数化,以拟合整个实验确定的材料响应曲线。为了考虑循环塑性材料的响应,考虑了各向同性和运动学硬化的组合。该材料模型为连铸坯壳的材料描述设定了新的标准,并且可以在精心的连铸模拟中应用。

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