Zhi Ying, Jiang Yao, Ke Diwen, Hu Xianlei, Liu Xianghua
State Key Laboratory of Rolling and Automation, Northeastern University, Shenyang 110819, China.
School of Material Science and Engineering, Northeastern University, Shenyang 110819, China.
Materials (Basel). 2024 Mar 16;17(6):1370. doi: 10.3390/ma17061370.
The cellular automata (CA) method has played an important role in the research and development of metallic materials. CA can interpret the microstructure changes of materials and obtain more abundant, accurate and intuitive information of microstructure evolution than conventional methods. CA can visually represent the process of grain formation, growth, development and change to us in a graphical way, which can assist us in analysis, thinking and solving problems. In the last five years, the application of CA in materials research has been rapidly developed, and CA has begun to occupy an increasingly important position in the simulation research of metallic materials. After introducing the advantages and limitations of CA compared to other widely used simulation methods, the purpose of this paper is to review the recent application progress on the microstructure simulation of metallic materials using CA, such as solidification, recrystallization, phase transformation and carbide precipitation occurring during forming and heat treatment. Specifically, recent research advances on microstructure simulation by CA in the fields of additive manufacturing, welding, asymmetrical rolling, corrosion prevention, etc., are also elaborated in this paper. Furthermore, this paper points out the future work direction of CA simulation in the research of metallic materials, especially in the simulation of the crystal structure, the prediction of mechanical properties, CA simulation software and rule systems, etc. These are expected to attract wide attention of researchers in the field of metallic materials and promote the development of CA in materials research.
元胞自动机(CA)方法在金属材料的研发中发挥了重要作用。与传统方法相比,CA能够解释材料的微观结构变化,并获得更丰富、准确和直观的微观结构演变信息。CA能够以图形方式向我们直观展示晶粒形成、生长、发展和变化的过程,有助于我们进行分析、思考和解决问题。在过去五年中,CA在材料研究中的应用得到了迅速发展,并且在金属材料的模拟研究中开始占据越来越重要的地位。在介绍了CA相较于其他广泛使用的模拟方法的优缺点之后,本文旨在综述近年来使用CA对金属材料微观结构进行模拟的应用进展,例如在成型和热处理过程中发生的凝固、再结晶、相变和碳化物析出等。具体而言,本文还阐述了CA在增材制造、焊接、异步轧制、防腐等领域微观结构模拟方面的最新研究进展。此外,本文指出了CA模拟在金属材料研究中的未来工作方向,特别是在晶体结构模拟、力学性能预测、CA模拟软件和规则系统等方面。这些有望引起金属材料领域研究人员的广泛关注,并推动CA在材料研究中的发展。