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Modeling of thermal stresses in low alloy steels

机译:低合金钢热应力建模

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Computing the evolution of thermal stresses accurately requires appropriate constitutive relations. This includes both the thermal and mechanical aspects, as temperature is the driver to thermal stresses. The paradigm of Integrated Computational Materials Engineering (ICME) aims at being able to quantitatively relate process-structure-property of a material. The article describes physics based models, denoted bridging elements, which are one step towards the vision of ICME. They couple material structure with heat capacity, heat conductivity, thermal and transformation strains and elastic properties for hypo-eutectoid steels. The models can account for the chemical composition of the steel and its processing, i.e. thermomechanical history, giving the evolution of the microstructure and the corresponding properties.
机译:计算热应力的进化准确地需要适当的组成型关系。这包括热和机械方面,随着温度是热应力的驾驶员。综合计算材料工程(ICME)的范例旨在能够定量地涉及材料的过程结构性质。本文介绍了基于物理学的模型,表示桥接元件,这是迈向ICME愿景的一步。它们将材料结构与热容量,导热性,热和转化菌株以及用于效率胶囊钢的弹性性能。该模型可以考虑钢的化学成分及其加工,即热机械史,赋予微观结构的演变和相应的性质。

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