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Constitutive Modeling of High Temperature Uniaxial Creep-Fatigue and Creep-Ratcheting Responses of Alloy 617

机译:617合金高温单轴蠕变疲劳和蠕变-跳动响应的本构模型

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Inconel Alloy 617 is a high temperature creep and corrosion resistant alloy and is a leading candidate for use in Intermediate Heat Exchangers (IHX) of the Next Generation Nuclear Plants (NGNP). The IHX of the NGNP is expected to experience operating temperatures in the range of 800°-950°C, which is in the creep regime of Alloy 617. A broad set of uniaxial, low-cycle fatigue, fatigue-creep, ratcheting, and ratcheting-creep experiments are conducted in order to study the fatigue and ratcheting responses, and their interactions with the creep response at high temperatures. A unified constitutive model developed at North Carolina State University is used to simulate these experimental responses. The model is developed based on the Chaboche viscoplastic model framework. It includes cyclic hardening/softening, strain rate dependence, strain range dependence, static and dynamic recovery modeling features. For simulation of the alloy 617 responses, new techniques of model parameter determination are developed for optimized simulations. This paper compares the experimental responses and model simulations for demonstrating the strengths and shortcomings of the model.
机译:Inconel 617合金是一种耐高温蠕变和腐蚀的合金,是下一代核电站(NGNP)的中间换热器(IHX)的主要候选材料。 NGNP的IHX预计将承受800°-950°C的工作温度,处于617合金的蠕变状态。为了研究疲劳和棘轮响应以及它们与高温下的蠕变响应之间的相互作用,进行了棘轮-蠕变实验。北卡罗莱纳州立大学开发的统一本构模型用于模拟这些实验响应。该模型是基于Chaboche粘塑性模型框架开发的。它包括循环硬化/软化,应变率依赖性,应变范围依赖性,静态和动态恢复建模功能。为了模拟617合金的响应,开发了模型参数确定的新技术以优化模拟。本文比较了实验响应和模型仿真,以证明模型的优缺点。

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