首页> 外文会议>ASME Pressure Vessels and Piping conference >A UNIFIED CONSTITUTIVE MODEL FOR HIGH TEMPERATURE MULTIAXIAL CREEP-FATIGUE AND RATCHETING RESPONSE SIMULATION OF ALLOY 617
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A UNIFIED CONSTITUTIVE MODEL FOR HIGH TEMPERATURE MULTIAXIAL CREEP-FATIGUE AND RATCHETING RESPONSE SIMULATION OF ALLOY 617

机译:合金617高温多轴蠕变疲劳响应的统一本构模型。

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The study is developing a unified constitutive model for Alloy 617 which is the prime candidate material considered for intermediate heat exchanger (IHX) of next generation nuclear power plant. Alloy 617 can experience long term exposure to elevated temperatures as high as 950°C, however, the ASME design code (Subsection NH) does not include design provisions for this temperature range. In addition, the Draft Alloy 617 Code Case specifies that the inelastic design analysis for temperatures above 649°C must be based on unified constitutive model. Therefore, this study focuses on developing a unified constitutive model to simulate high temperature uniaxial and multiaxial creep-fatigue and creep-ratcheting responses of Alloy 617. As multiaxial response simulation is a key factor for design-by-analysis of IHX, a set of biaxial tests with varying degrees of loading non-proportionality has been performed at different steady temperatures within 25°C-950°C, and with different strain rates and strain ranges. From the tests, it has been observed that temperature, strain rate, strain ranges and non-proportionality of loading path greatly influences the creep-fatigue and creep-ratcheting responses of Alloy 617. Thus, development of a unified constitutive model considering dependence of these parameters is required. The current Chaboche viscoplasticity model with static recovery term can simulate uniaxial responses very well but it overpredicts biaxial ratcheting responses. Hence, a modified Chaboche model has been developed to improve biaxial ratcheting simulations. Multiaxial modeling features of non-proportionality and ratcheting are investigated. These modeling features and improved response simulations are presented in the paper.
机译:该研究正在开发617合金的统一本构模型,该合金是下一代核电站的中间热交换器(IHX)所考虑的主要候选材料。 617合金可能会长期暴露在高达950°C的高温下,但是,ASME设计规范(NH小节)不包括该温度范围的设计规定。此外,《 617号合金规范案例》草案规定,对于649°C以上的温度,非弹性设计分析必须基于统一的本构模型。因此,本研究着重于开发一个统一的本构模型,以模拟617合金的高温单轴和多轴蠕变疲劳和蠕变棘轮响应。由于多轴响应仿真是IHX设计分析的关键因素,因此,一组在25°C-950°C内的不同稳定温度下,以不同的应变率和应变范围进行了不同程度的载荷非比例双轴试验。从测试中观察到,温度,应变速率,应变范围和加载路径的非比例性极大地影响了617合金的蠕变疲劳和蠕变棘轮响应。因此,考虑到这些因素的依赖性,建立了统一的本构模型参数是必需的。当前具有静态恢复项的Chaboche粘塑性模型可以很好地模拟单轴响应,但是它过度预测了双轴棘轮响应。因此,已开发出改进的Chaboche模型来改善双轴棘轮仿真。研究了非比例和棘轮的多轴建模特征。本文介绍了这些建模功能和改进的响应仿真。

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