Artificial Intelligence Approaches for Energetic Materials by Design: State of the Art, Challenges, and Future Directions

国家(计算机科学) 纳米技术 工程物理 工程类 计算机科学 系统工程 管理科学 材料科学 程序设计语言
作者
Joseph B. Choi,Phong Nguyen,Oishik Sen,H. S. Udaykumar,Stephen Baek
出处
期刊:Propellants, Explosives, Pyrotechnics [Wiley]
卷期号:48 (4) 被引量:24
标识
DOI:10.1002/prep.202200276
摘要

Abstract Artificial intelligence (AI) is rapidly emerging as a enabling tool for solving complex materials design problems. This paper aims to review recent advances in AI‐driven materials‐by‐design and their applications to energetic materials (EM). Trained with data from numerical simulations and/or physical experiments, AI models can assimilate trends and patterns within the design parameter space, identify optimal material designs (micro‐morphologies, combinations of materials in composites, etc.), and point to designs with superior/targeted property and performance metrics. We review approaches focusing on such capabilities with respect to the three main stages of materials‐by‐design, namely representation learning of microstructure morphology (i. e., shape descriptors), structure‐property‐performance (S−P−P) linkage estimation, and optimization/design exploration. We leave out “process” as much work remains to be done to establish the connectivity between process and structure. We provide a perspective view of these methods in terms of their potential, practicality, and efficacy towards the realization of materials‐by‐design. Specifically, methods in the literature are evaluated in terms of their capacity to learn from a small/limited number of data, computational complexity, generalizability/scalability to other material species and operating conditions, interpretability of the model predictions, and the burden of supervision/data annotation. Finally, we suggest a few promising future research directions for EM materials‐by‐design, such as meta‐learning, active learning, Bayesian learning, and semi‐/weakly‐supervised learning, to bridge the gap between machine learning research and EM research.
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