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材料导报  2024, Vol. 38 Issue (23): 23090008-8    https://doi.org/10.11896/cldb.23090008
  金属与金属基复合材料 |
国家材料腐蚀与防护科学数据中心建设历程与发展现状
吴伟同, 徐迪, 程学群*, 张达威, 李晓刚
北京科技大学国家材料腐蚀与防护科学数据中心,北京 100083
Construction Process and Current Development Status of the National Materials Corrosion and Protection Data Center
WU Weitong, XU Di, CHENG Xuequn*, ZHANG Dawei, LI Xiaogang
National Materials Corrosion and Protection Data Center, University of Science and Technology Beijing, Beijing 100083, China
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摘要 对国家材料腐蚀与防护科学数据中心的建设历程、特征以及现状进行了综述。在国家科委、国家自然科学基金组等平台的领导下,以及国际上各行业的分布式国家科学数据中心建设经验的支持下建设了国家材料腐蚀与防护科学数据中心。数据中心通过自主研发设计的适应不同环境下的腐蚀监测传感器获取实时连续的腐蚀大数据,通过数据中心建立的协作平台,研究人员从高通量的数据中挖掘有效的信息,对腐蚀过程进行计算、模拟与仿真建模,推动材料腐蚀领域的发展。国家材料腐蚀与防护科学数据中心作为20个国家科学数据中心之一,在推动材料腐蚀与防护领域科学数据共享工作的进展方面起到了引领作用,数据中心的项目经验也为科技驱动型企业提供了宝贵的发展方向,并在全球材料腐蚀领域产生了重大影响。
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吴伟同
徐迪
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李晓刚
关键词:  国家数据中心  分布式  联网观测  腐蚀传感器  大数据    
Abstract: Here provides an overview of the construction history, characteristics, and current status of the National Materials Corrosion and Protection Data Center. Under the leadership of the National Science and Technology Commission (NSTC), the National Natural Science Foundation of China (NSFC) group and other platforms, as well as the support of international experience in the construction of distributed national scientific data centers in various industries. The National Materials Corrosion and Protection Data Center has developed into a data center with distributed characteristics based on different atmospheric, soil and seawater environments across the country. The data center obtains real-time continuous corrosion big data through self-developed and designed corrosion monitoring sensors adapted to different environments and adopts a mathematical model for corrosion big data analysis to mine effective information from high-throughput data, and performs calculations, simulation, and simulation modeling of the corrosion process, so as to promote the development of material corrosion field. As one of 20 national science data centers, the National Materials Corrosion and Protection Data Center plays a leading role in promoting the progress of scientific data sharing in the field of materials corrosion and protection, and the project experience of the data center has provided valuable development direction for technology-driven enterprises and made a significant impact on the global materials corrosion field.
Key words:  national data center    distributed    networked observation    corrosion sensor    big data
出版日期:  2024-12-10      发布日期:  2024-12-10
ZTFLH:  TG142.71  
基金资助: 国家重点研发计划(2021YFB3701701)
通讯作者:  * 程学群,教授,博士研究生导师。国家材料腐蚀与防护科学数据中心副主任、中国腐蚀与防护学会秘书长,美国腐蚀工程师协会(NACE)高级会员。1998年6月毕业于北京科技大学获学士学位,2006年12月在北京科技大学材料科学与工程学院获工学博士学位,并留校任教至今。主要研究方向为钢铁耐蚀机理及新型耐蚀钢研发、腐蚀监测技术及腐蚀大数据、材料工业环境腐蚀规律和机理研究。在腐蚀领域知名期刊发表学术论文60多篇,出版著作3部。包括Corrosion Science、Electrochimica Acta、Electrochemistry Communications、Applied Surface Science、Journal of Nuclear Mate-rials、Construction and Building Materials、Journal of Materials Science and Technology等。chengxuequn@ustb.edu.cn   
作者简介:  吴伟同,2019年6月、2022年6月于中北大学获得工学学士学位和硕士学位。现为北京科技大学大学新材料技术研究院博士研究生,在李晓刚教授的指导下进行研究。目前主要研究领域为材料腐蚀寿命预测与快速精准评价。
引用本文:    
吴伟同, 徐迪, 程学群, 张达威, 李晓刚. 国家材料腐蚀与防护科学数据中心建设历程与发展现状[J]. 材料导报, 2024, 38(23): 23090008-8.
WU Weitong, XU Di, CHENG Xuequn, ZHANG Dawei, LI Xiaogang. Construction Process and Current Development Status of the National Materials Corrosion and Protection Data Center. Materials Reports, 2024, 38(23): 23090008-8.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.23090008  或          http://www.mater-rep.com/CN/Y2024/V38/I23/23090008
1 Cao C N. Natural environmental corrosion of chinese materials, China Beijing Chemical Industry Press, China, 2005, pp.98 (in Chinese).
曹楚南. 中国材料的自然环境腐蚀, 化学工业出版社, 2005, pp.98.
2 Pei Z B, Cheng X Q, Yang X J, et al. Journal of Materials Science & Technology, 2021, 64 (20), 214.
3 Pei Z B, Xiao K, Chen L, et al. Metals, 2020, 10 (7), 905.
4 Li X G, Zhang D W, Liu Z Y, et al. Nature, 2015, 527, 441.
5 Pei Z B, Zhang D, Zhi Y, et al. Corrosion Science, 2020, 170 (1), 108697.
6 Wan S, Liao B K, Dong Z H, et al. Transactions of Nonferrous Metals Society of China, 2021, 31 (10), 3024.
7 Zhu Y S, Hu B W, Hu T Y, et al. Measurement, 2023, 208 (28), 112479.
8 Mansfeld F, Kenkel J V. Corrosion Science, 1976, 16 (3), 111.
9 Wang J L, Sun J L. China Basic Science, 2007(2), 36 (in Chinese).
王卷乐, 孙九林. 中国基础科学, 2007(2), 36.
10 Li X G. Bulletin of National Natural Science Foundation of China, 2012, 26(5), 257 (in Chinese).
李晓刚. 中国科学基金, 2012, 26(5), 257.
11 Ye C B. Corrosion & Protecyion in Petrochemical Industry, 2020, 37(1), 41 (in Chinese).
叶春波. 石油化工腐蚀与防护, 2020, 37(1), 41.
12 Katayama H, Noda K, Masuda H, et al. Corrosion Science, 2005, 47(10), 2599.
13 Ma C L, Ma R P, Bai Y H, et al. Equipment Environmental Engineering, 2017, 14(8), 65 (in Chinese).
马长李, 马瑞萍, 白云辉, 等. 装备环境工程, 2017, 14(8), 65.
14 Wang Y H, Lu Z H, Li Y Z, et al. Modern Transmission, 2011(5), 8 (in Chinese).
王永红, 鹿中晖, 李英志, 等. 现代传输, 2011(5), 8.
15 Zhang Y Q, Yu H F, Sun W, et al. Journal of Civil, Architectural & Environmental Engineering, 2010, 32(6), 147 (in Chinese).
张云清, 余红发, 孙伟, 等. 土木建筑与环境工程, 2010, 32(6), 147.
16 Zhang Y F, Wang W, Gang X X, et al. Distribution & Utilization, 2021, 38(9), 64 (in Chinese).
张叶峰, 王雯, 刚宪秀, 等. 供用电, 2021, 38 (9), 64.
17 Yang X J, Yang Y, Sun M H, et al. Journal of Materials Science & Technology, 2022, 104(14), 67.
18 Li Q, Xia X J, Pei Z B, et al. npj Materials Degradation, 2022, 6, 1.
19 Yang L, Yang X J, Wang B, et al. Journal of Materials Research and Technology, 2023, 25 (7), 3624.
20 Xu D, Yang X J, Li Q, et al. Journal of Chinese Society for Corrosion and Protection, 2022, 42(3), 447 (in Chinese).
徐迪, 杨小佳, 李清, 等. 中国腐蚀与防护学报, 2022, 42(3), 447.
21 Wei X, Fu D M, Chen M D, et al. Journal of Materials Science & Technology, 2021 64(11), 222.
22 Bengio Y S. Foundations and Trends© in Machine Learning, 2009, 2(1), 1.
23 Fang S F, Wang M P, Qi W H, et al. Computational Materials Science, 2009, 44 (2), 647.
24 Pei Z B, Zhang D W, Zhi Y, et al. Corrosion Science, 2020, 170 (1), 108697.
25 Zhao X F, Fu D M, Pei Z B, et al. Corrosion and Protection, 2018, 39(10), 805 (in Chinese).
赵兴锋, 付冬梅, 裴梓博, 等. 腐蚀与防护, 2018, 39(10), 805.
26 Xu Q. Study on corrosion grade discrimination and material selection method based on Bayes and influence diagram, Master's Thesis, University of Science and Technology Beijing, China, 2013 (in Chinese).
徐庆. 基于Bayes和影响图的腐蚀等级判别及选材的方法研究. 硕士学位论文, 北京科技大学, 2013.
27 Gao J, Li C, Lv Z, et al. Progress in Organic Coatings, 2019, 132 (7), 362.
28 Paturi U M R, Material Today: Proceedings, 2021, 38(5), 2764.
29 Wu D Q, Zhang D W, Liu S P, et al. Chemical Engineering Journal, 2020, 399(1), 125878.
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