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Updated: Nov 12, 2025

Predicting Catalyst Extrudate Breakage Based on the Modulus of Rupture
Published on: May 13, 2018
A machine learning aided interpretable model for rupture strength prediction in Fe-based martensitic and austenitic
Osman Mamun1, Madison Wenzlick2,3, Jeffrey Hawk2
1Energy and Environment Directorate, Pacific Northwest National Laboratory, Richland, USA. mdosman.mamun@pnnl.gov.
Abstract:
The class of 9-12% Cr ferritic-martensitic alloys (FMA) and austenitic stainless steels have received considerable attention due to their numerous applications in high temperature power generation industries. To design high strength steels with prolonged service life requires a thorough understanding of the long-term properties, e.g., creep rupture strength, rupture life, etc., as a function of the chemical composition and processing parameters that govern the microstructural characteristics. In this article, the creep rupture strength of both 9-12% Cr FMA and austenitic stainless steel has been parameterized using curated experimental datasets with a gradient boosting machine. The trained model has been cross validated against unseen test data and achieved high predictive performance in terms of correlation coefficient ([Formula: see text] for 9-12% Cr FMA and [Formula: see text] for austenitic stainless steel) thus bypassing the need for additional comprehensive tensile test campaigns or physical theoretical calculations. Furthermore, the feature importance has been computed using the Shapley value analysis to understand the complex interplay of different features.
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