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A Re-Evaluation of the Causes of Deformation in 1Cr-1Mo-0.25V Steel for Turbine Rotors and Shafts Based on iso-Thermal Plots of the Wilshire Equation and the Modelling of Batch to Batch Variation

机译:基于Wilshire方程的等温图和批次间差异建模重新评估用于涡轮转子和轴的1Cr-1Mo-0.25V钢的变形原因

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摘要

The aims of this paper were to: (a) demonstrate how iso-thermal plots of the Wilshire equation can be used to identify the correct structure of this equation (which in turn enables a meaningful description of the creep mechanism involved in deformation to be made); and (b) show how a generalized specification of batch to batch variation could produce less conservative predictions of the time to failure associated with a given degree of risk. Such predictions were obtained using maximum likelihood estimation of the parameters of a generalised F distribution. It was found that the original Wilshire-Scharning assumption of a constant activation energy for this materials is incorrect. Consequently, their interpretation of deformation being due only to dislocation creep with deteriorating microstructure at long duration test times appears to be ill founded, with the varying activation energy suggesting instead that deformation is due to grain boundary sliding accommodated by either dislocation and diffusional creep with dominance changing from the lattice to the grain boundaries as the temperature changes. Modelling batch to batch variation as a function of stress also resulted in a 50% extended safe life prediction (corresponding to a 1% chance of failure) at 873 K and 47 MPa.
机译:本文的目的是:(a)演示如何使用Wilshire方程的等温图来识别该方程的正确结构(这反过来可以对涉及变形的蠕变机理进行有意义的描述。 ); (b)显示了批次间差异的通用规范如何对与给定风险程度相关的失效时间产生不太保守的预测。这些预测是使用广义F分布参数的最大似然估计获得的。已经发现,最初的Wilshire-Scharning假设这种材料具有恒定的活化能是不正确的。因此,他们对变形的解释仅是由于在长时间的测试时间中仅由位错蠕变和微观结构恶化引起的,似乎是没有根据的,而变化的活化能表明,变形是由于位错和扩散蠕变以优势占据了晶界滑动而引起的。随着温度的变化从晶格到晶界的变化。将批次间的变化作为应力的函数模型还可以在873 K和47 MPa下获得50%的延长的安全寿命预测(对应于1%的失效机会)。

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