谭黎明

助理研究员

所在单位:粉末冶金研究院

学历:博士研究生毕业

性别:男

学位:博士学位

在职信息:在职

毕业院校:中南大学

学科:材料科学与工程

曾获荣誉:

2022-12-30  当选:  中国有色金属工业科技进步一等奖

2022-11-09  当选:  第八届中国科协青年人才托举工程

   
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High-Throughput Method–Accelerated Design of Ni-Based Superalloys

发布时间:2022-05-12

点击次数:

影响因子:19.0

DOI码:10.1002/adfm.202109367

所属单位:中南大学粉末冶金研究院, 中南大学交通运输工程学院,南洋理工大学机械与航天工程学院

教研室:高温结构材料研究所,高速列车研究中心

发表刊物:Advanced Functional Materials

项目来源:中国国家重点研究与发展计划(2016YFB0701404),中国国家自然科学基金(NSFC)(91860105)&(52074366),中国博士后科学基金会(2019M662799),中南大学创新驱动计划的青年人才项目(2019XZ027),中国山东主要科技创新项目(2019JZZY010325),长沙市自然科学基金(kq2014126)

关键字:Alloy design, Creep resistance, High-throughput methods, Microstructure stability, Unsupervised machine learning

摘要:Ever-increasing demands for superior alloys with improved high-temperature service properties require accurate design of their composition. However, conventional approaches to screen the properties of alloys such as creep resistance and microstructural stability cost a lot of time and resources. This work therefore proposes a novel high throughput-based design strategy for high-temperature alloys to accelerate their composition selections, by taking Ni-based superalloys as an example. A numerical inverse method is used to massively calculate the multielement diffusion coefficients based on an accurate atomic mobility database. These coefficients are subsequently employed to refine the physical models for tuning the creep rates and structural stability of alloys, followed by unsupervised machine learning to categorize their composition and determine the range of the composition with optimal performance. By using a strict screening criterion, two sets of composition with comprehensively optimal properties are selected, which is then validated by experiments. Compared with recent data-driven methods for materials design, this strategy exhibits high accuracy and efficiency attributed to the high-throughput multicomponent diffusion couples, self-developed atomic mobility database, and refined physical models. Since this strategy is independent of the alloy composition, it can efficiently accelerate the development of multicomponent high-performance alloys and tackle challenges in discovering novel materials.

合写作者:Zexin Wang, Zi Wang, Jing Zhong, Lei Zhao, Liang Jiang, Runhua Zhou, Yong Liu, Yujia Tian, 郑涵, Qihong Fang, Lijun Zhang, Lina Zhang, 吴宏

第一作者:Feng Liu

论文类型:Article

通讯作者:Lan Huang, 谭黎明, Lichun Bai, Kun Zhou

论文编号:2109367

学科门类:工学

一级学科:冶金

卷号:32

期号:28

ISSN号:1616-301X

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发表时间:2022-05-12

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