Active Learning Discovery of High Temperature Oxidation Resistant Refractory Complex Concentrated Alloys
Akhil Bejjipurapu, Sharmila Karumuri, Joseph C. Flanagan, Victoria Tucker, Ilias Bilionis, Alejandro Strachan, Kenneth H. Sandhage, Michael S. Titus

TL;DR
This paper presents an active learning framework combining Gaussian process regression and Bayesian optimization to efficiently discover oxidation-resistant refractory alloys suitable for high-temperature applications.
Contribution
The study introduces a novel active learning approach for alloy discovery, effectively reducing experimental efforts in identifying high-performance refractory complex concentrated alloys.
Findings
Identified two alloys with excellent oxidation resistance at 1000°C.
Alloys formed adherent alpha-Al2O3 scales with diffusion-limited kinetics.
Discovered alloys also exhibit high hardness and compatibility with thermal barrier coatings.
Abstract
Refractory complex concentrated alloys (RCCAs) are of significant interest for advanced high-temperature applications, owing to their broad compositional range and potential for attractive mechanical properties and oxidation resistance. However, their compositional complexity poses significant challenges to conventional alloy discovery methodologies. In this study, an active learning framework is introduced that integrates Gaussian process regression with Bayesian global optimization to accelerate identification of oxidation-resistant RCCAs. Focusing on aluminum-containing quaternary systems, alloy and oxide descriptors were used to predict oxidation performance at 1000C. Beginning with a dataset of 81 experimentally validated RCCAs, this framework was used to iteratively select alloy batches (five alloys per batch) with optimization based on a balance between exploration and…
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Taxonomy
TopicsMachine Learning in Materials Science · High Entropy Alloys Studies · High-Temperature Coating Behaviors
