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Use of the Wilshire Equations to Correlate and Extrapolate Creep Data of HR6W and Sanicro 25

机译:使用Wilshire方程对HR6W和Sanicro 25的蠕变数据进行关联和外推

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摘要

Advanced power plant alloys must endure high temperatures and pressures for durations at which creep data are often not available, necessitating the extrapolation of creep life. Many methods have been proposed to extrapolate creep life, and one of recent significance is a set of equations known as the Wilshire equations. With this method, multiple approaches can be used to determine creep activation energy, increase the goodness of fit of available experimental data, and improve the confidence level of calculating long-term creep strength at times well beyond the available experimental data. In this article, the Wilshire equation is used to extrapolate the creep life of HR6W and Sanicro 25, and different methods to determine creep activation energy, region splitting, the use of short-duration test data, and the omission of very-short-term data are investigated to determine their effect on correlation and calculations. It was found that using a known value of the activation energy of lattice self-diffusion, rather than calculating QC* from each data set, is both the simplest and most viable method to determine QC*. Region-splitting improved rupture time calculations for both alloys. Extrapolating creep life from short-term data for these alloys was found to be reasonable.
机译:先进的发电厂合金必须承受高温和高压的持续时间,在此期间,通常无法获得蠕变数据,因此需要推断蠕变寿命。已经提出了许多方法来推断蠕变寿命,并且最近的意义之一是一组被称为威尔希尔方程的方程。使用这种方法,可以使用多种方法来确定蠕变激活能,提高可用实验数据的拟合度,并提高有时远超过可用实验数据的计算长期蠕变强度的置信度。在本文中,将使用威尔希尔方程式推断HR6W和Sanicro 25的蠕变寿命,并使用不同的方法来确定蠕变激活能,区域分裂,使用短时测试数据以及省略非常短期的方法。研究数据以确定它们对相关性和计算的影响。发现使用已知的晶格自扩散激活能值,而不是计算 Q C * 是确定 Q C * 。两种合金的区域分裂改进了断裂时间的计算。从这些合金的短期数据推断出蠕变寿命是合理的。

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