Quantitative prediction of the aged state of Ni-base superalloys using PCA and tensor regression

被引:26
作者
Gorgannejad, S. [1 ]
Gahrooei, M. Reisi [2 ]
Paynabar, K. [2 ]
Neu, R. W. [1 ,3 ]
机构
[1] Georgia Inst Technol, George W Woodruff Sch Mech Engn, Atlanta, GA 30332 USA
[2] Georgia Inst Technol, H Milton Stewart Sch Ind & Syst Engn, Atlanta, GA 30332 USA
[3] Georgia Inst Technol, Sch Mat Sci & Engn, Atlanta, GA 30332 USA
关键词
Ni-base superalloys; Aging; Process-structure relations; Principal component analysis; Tensor regression; PRINCIPAL COMPONENT ANALYSIS; 2-POINT SPATIAL CORRELATIONS; SCIENCE APPROACH APPLICATION; STRUCTURE-PROPERTY LINKAGES; MICROSTRUCTURE; CREEP; INFORMATICS; QUANTIFICATION; CLASSIFICATION; TEMPERATURE;
D O I
10.1016/j.actamat.2018.11.047
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The microstructure of Ni-base superalloy components evolves and degrades during the operation of gas turbines. Since the remaining life depends on the degradation, it is highly desirable to have a quantitative descriptor of the aged state of the microstructure that can be linked to the operating conditions. In this paper, data analytics algorithms are used to develop such relationships. High-throughput aging experiments were performed to generate a dataset comprising multiple aged microstructure images. The digital images of the gamma/gamma' phase are used as an indicator of the aged state and statistically evaluated using 2-point spatial correlation functions. To reduce the high-dimensional structural information so that a quantitative linkage can be made between aging conditions and the aged state, two algorithms were considered. The first algorithm involves two steps, first using conventional principal component analysis (PCA) to provide a lower dimension descriptor of the microstructure and then regression analysis to generate the linkage. The second algorithm, called tensor regression (TR), is a novel algorithm that merges the dimensionality reduction and model construction step into a single step. The output of the TR model is directly the statistical descriptors of the microstructure rather than the PC scores, thereby reducing the amount of information loss. Even though PCA provides an effective tool for visualization and classification of data, the model built based on the TR algorithm is shown to have stronger prediction capability. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:259 / 269
页数:11
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