改进了高温蠕变变形中初始加载应变的计算方法

Woo-Gon Kim, H. Lee, Jae-Young Park, Seon-Jin Kim, Yong-Wan Kim
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引用次数: 0

摘要

对于617合金的设计应用,应在特定温度下建立等时应力-应变曲线。ISSCs可以使用杨氏模量、平均拉伸硬化规则和蠕变应变定律来构建。为了开发ISSCs,有必要确定由弹性、塑性和蠕变应变组成的总应变。为了确定总应变,详细描述了RCC-MR代码和Blackburn的方法。此外,为了更实际地确定617合金的拉伸弹塑性应变分量,在这两种方法的基础上,提出并应用了一种新的方法。结果表明,在弹性状态下,这三种方法在拉伸曲线上是相同的,在塑性状态下,Blackburn方程在应力-应变曲线上比RCC-MR规范更高。两种方法在分析曲线上显示出一些差异,但一种新方法似乎更好,因为它介于两种方法之间。然而,尽管塑性状态存在差异,但建议这三种方法可以用于计算617合金的弹塑性应变。这样做的原因是蠕变应力条件,通常在合金617的800°C, 850°C, 900°C和950°C下测试,对应于较低的弹性状态而不是塑性状态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Notice of RetractionImproved methodology for calculating initial loading strains in high-temperature creep deformation
For a design application of Alloy 617, the isochronous stress-strain curves (ISSC) should be constructed at a specified temperature. The ISSCs can be constructed using Young's modulus, average tensile hardening rule, and creep strain laws. To develop the ISSCs, it is necessary to determine the total strain composed of the elastic, plastic, and creep strains. To determine the total strain, the RCC-MR code and Blackburn's methods are described in detail. In addition, to practically determine the tensile elastic and plastic strain components of Alloy 617, a new method is proposed and applied in addition to these two methods. Results show that in the elastic regime, these three methods were identical in the tensile curves, and in the plastic regime, the Blackburn's equation was higher in the stress-strain curves than the RCC-MR code. Two methods revealed some differences in the analyzed curves, but a new method seemed to be better because it lay midway between the two methods. However, in spite of this difference in the plastic regime, it is suggested that these three methods can be utilized to calculate the elastic and plastic strain of Alloy 617. The reason for this is that the creep stress conditions, which are generally tested at 800°C, 850°C, 900°C, and 950°C of Alloy 617, correspond to a lower elastic regime rather than the plastic regime.
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