Review of progress in calculation and simulation of high-temperature oxidation

IF 33.6 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Dongxin Gao , Zhao Shen , Kai Chen , Xiao Zhou , Hong Liu , Jingya Wang , Yangxin Li , Zhixiao Liu , Huiqiu Deng , William Yi Wang , Xiaoqin Zeng
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Abstract

High-temperature oxidation can precipitate chemical and mechanical degradations in materials, potentially leading to catastrophic failures. Thus, understanding the mechanisms behind high-temperature oxidation and enhancing the oxidation resistance of thermal structural materials are endeavors of significant technical and economic value. Addressing these challenges often involves dissecting phenomena that span a broad range of scales, from micro to macro, a task that can prove challenging and costly through in-situ experimental approaches alone. Advancements in computational techniques have revolutionized the study of high-temperature oxidation. Various calculation and simulation methodologies now offer the means to rapidly acquire data with cost efficiency, providing a powerful complement to traditional experimental research. This review concentrates on the evolution and utility of these computational approaches in the domain of high-temperature oxidation. It underscores the critical role of calculation and simulation in materials science, offering insights into mass transport, mechanical failure, chemical reactions, and other multi-scale phenomena associated with oxidation processes. In this context, detailed discussions are presented on computational analyses at both atomic and mesoscopic levels, elucidating their respective contributions to our understanding of high-temperature oxidation mechanisms. Furthermore, the review highlights the impact of high-throughput computing in streamlining research and development processes, facilitating a more expedited exploration of innovative solutions in materials science. Through these discussions, the review aims to illustrate the indispensable nature of computational methods in advancing our comprehension and management of high-temperature oxidation phenomena.

高温氧化计算和模拟进展回顾
高温氧化会使材料发生化学和机械退化,可能导致灾难性故障。因此,了解高温氧化背后的机理并增强热结构材料的抗氧化性是一项具有重大技术和经济价值的工作。要应对这些挑战,往往需要剖析从微观到宏观等各种尺度的现象,而仅靠现场实验方法可能会证明这项任务具有挑战性,而且成本高昂。计算技术的进步彻底改变了高温氧化研究。现在,各种计算和模拟方法提供了以低成本快速获取数据的手段,为传统的实验研究提供了有力的补充。这篇综述集中介绍了这些计算方法在高温氧化领域的发展和应用。它强调了计算和模拟在材料科学中的关键作用,提供了对质量传输、机械故障、化学反应以及与氧化过程相关的其他多尺度现象的见解。在此背景下,书中详细讨论了原子和介观层面的计算分析,阐明了它们各自对我们理解高温氧化机制的贡献。此外,综述还强调了高通量计算在简化研发流程方面的影响,有助于更快地探索材料科学领域的创新解决方案。通过这些讨论,综述旨在说明计算方法在促进我们理解和管理高温氧化现象方面不可或缺的性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Progress in Materials Science
Progress in Materials Science 工程技术-材料科学:综合
CiteScore
59.60
自引率
0.80%
发文量
101
审稿时长
11.4 months
期刊介绍: Progress in Materials Science is a journal that publishes authoritative and critical reviews of recent advances in the science of materials. The focus of the journal is on the fundamental aspects of materials science, particularly those concerning microstructure and nanostructure and their relationship to properties. Emphasis is also placed on the thermodynamics, kinetics, mechanisms, and modeling of processes within materials, as well as the understanding of material properties in engineering and other applications. The journal welcomes reviews from authors who are active leaders in the field of materials science and have a strong scientific track record. Materials of interest include metallic, ceramic, polymeric, biological, medical, and composite materials in all forms. Manuscripts submitted to Progress in Materials Science are generally longer than those found in other research journals. While the focus is on invited reviews, interested authors may submit a proposal for consideration. Non-invited manuscripts are required to be preceded by the submission of a proposal. Authors publishing in Progress in Materials Science have the option to publish their research via subscription or open access. Open access publication requires the author or research funder to meet a publication fee (APC). Abstracting and indexing services for Progress in Materials Science include Current Contents, Science Citation Index Expanded, Materials Science Citation Index, Chemical Abstracts, Engineering Index, INSPEC, and Scopus.
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