卢振明 教授 硕士生导师
姓 名: 卢振明 性 别: 男
院 系: 化学与化工学院
职 称: 教 授
E-mail:luzhenming@wust.edu.cn
主要从事炭素、石墨、新能源材料等相关研究工作。长期致力于高温气冷堆燃料元件相关技术研究,作为子任务项负责人承担国家科技重大专项4项,主持和参与国家自然科学基金、企事业单位委托项目20余项。多项成果已用于世界首座高温气冷堆商业示范堆燃料元件批量生产;“行星式核燃料穿衣技术”实现成果转化并作为关键技术用于商业生产线。已在国内外专业期刊发表论文60余篇,包括Chemical Science、Carbon、J. Nucl Mater等国际Top期刊;申请专利60余项,已授权近50项。曾获中国核能行业协会科技进步一等奖(省部级)。
社会兼职:武汉市统一战线智库专家、扬州市江都区新材料产业发展顾问、多家企业技术顾问。国家能源局、工信部、湖北省科技厅、武汉市科技局专家库成员。
社会职务:武汉市政协第十四届政协委员、致公党湖北省委会第五届委会委员、致公党武汉市委会第七届委员会委员、致公党青山区工委主委。
工作经历:
2020.8-至今, 武汉科技大学,化学与化工学院,教师
2014.12-2020.7,清华大学,核能与新能源技术研究院,副高
主要研究方向:
l 树脂基炭材料开发及应用研究
l 特种基体石墨材料制备工艺及性能研究;
l 液相振动分散技术制备微球工艺开发及应用;
l 微球颗粒制备及表面涂敷技术研究;
l 粉体等静压成型及橡胶软模技术开发;
l 高温气冷堆核燃料元件规模化生产技术
主持及承担部分科研项目
l “核燃料穿衣技术”专利实施,知识产权成果转化, 202411-202612,主持;
l 石墨球坯成型用丁腈橡胶软模技术开发,源于国家科技重大专项,202009-202110,主持;
l 酚醛树脂基炭材料及应用开发,企、事业单位委托项目,202110-202310,主持;
l 包覆颗粒表面涂敷基体石墨粉技术服务,源于国家科技重大专项,202009-202112,主持;
l 高温堆堆内石墨构件及元件基体石墨吸湿特性研究,清华大学专项合作项目,201407-201512,主持;
l 元件/基体石墨球坯准等静压橡胶模具研制,企、事业单位委托项目,主持;
l BGA焊锡球制备工艺开发,企、事业单位委托项目,200606-200906,主持;
l 高温堆燃料元件生产关键工艺和技术优化研究(ZX06901-025),国家科技重大专项,201701-202112,子项负责人;
l 球形燃料元件辐照试验研究(ZX06901-014),国家科技重大专项,201201-201812,子项负责人;
l 球形燃料元件生产关键设备和工艺研究(ZX06901-013),国家科技重大专项,200801-201812 ,子项负责人;
l 高温气冷堆核电站示范工程燃料元件生产线技术服务,企、事业单位委托项目,201303-201712,子项负责人;
l 高温气冷堆核电站示范工程燃料元件生产线专用设备研发,201303-201607,子项负责人;
l 球形燃料元件辐照后性能研究(ZX06901-015),国家科技重大专项,201101-202006,骨干;
l 超细晶碳化硅包覆层的制备及其尺寸效应研究,国家自然科学基金项目,201401-201612,骨干;
l 基于聚集荧光增强机理的铀酰离子荧光探针的设计合成及在核燃料循环中的分析应用,国家自然科学基金项目,201501-201712,参加
部分代表性论文
[1] Jintao Chen; Bin Li; Shiru Yin; Daoyuan Liu; Ji Qi; Zhenming Lu*; Yi Liu; Tian Gao*. Single-molecule graphene quantum dots: enhancement of optical properties and promotion of photodynamic efficacy based on precise control of the electronic structure, 2025, 16: 18806-18820. DIO:10.1039/d5sc03593g rsc.li/chemical-science
[2] ZENG Ning, GUO Zhenjiang, CHEN Jianhua, ZHANG Zixuan, ZENG Yujiao, XIAO Xin, LIU Songlin, XUE Shaoxiu, ZHOU Zhiwu, LU Zhenming*, WANG Limin*. Molecular dynamics simulation of water-insoluble phosphorus in dihydrate wet-process phosphoric acid[J]. CIESC Journal, 2025, 76(9): 4539-4550
[3] GAO Ming, LU Zhenming*, LU Anyuan, et al. Preparation technology of coated particles for nuclear fuel in high-temperature gas-cooled reactors[J]. China Powder Science and Technology, 2025, 31(5): 1−11.
[4] Jintao Chen, Shiru Yin, Futing Yang, Shengnan Guo, Jiaojiao Zhang, Zhenming Lu and Tian Gao. A single-molecule graphene quantum dot: a novel efficient photosensitizer for photodynamic cancer therapy, 2025, 16, 13923–13934. https://doi.org/10.1039/d5sc03226a
[5] Ming Ouyang, Jiachen Luo Yulin Mao, Ping Liu, Xuqing Chen, Yuxiang Du, Jiale Zhang, Yiqing Wang, Ke Chen, Guanming Yuana, Zhijun Dong, Zhenming Lu, Yongting Chena, Xuanke Lia, Jiang Zhang. Nitrogen-doped corn stover-based porous carbon by double-defect synthesis strategy for highly lithium storage properties, Electrochimica Acta, (2025) 145512. https://doi.org/10.1016/j.electacta.2024.145512
[6] Yulin Maob, Shizhen Zhangb, Ming Ouyang, Ping Liu, Jiale Zhang, Guobo Zhang, Ke Chen, Yiqing Wang, Ling Wu, Zhijun Dong, Zhenming Lu, Ye Cong, Yanjun Li, Guanming Yuana, Jiang Zhanga, Xuanke Li. MOF-74 derived FeCoS2/Fe0.95S1.05 composite nano-particles via in-situ sulfurization for highly efficient electrocatalytic nitrate reduction to ammonia, Journal of Alloys and Compounds, 1021 (2025) 179637. https://doi.org/10.1016/j.jallcom.2025.179637.
[7] Lei Xu, Xiukai Wu, Malin Liu, Shiyi Bao, Bing Liu, Zhenming Lu.,Studying on the upper limit of the coarse-grained DEM model for simulating mixing processes in a rolling drum with complex wall boundary. Advanced Powder Technology, 35(1), January 2024, 104307, https://doi.org/10.1016/j.apt.2023.104307
[8] LU Zhen-ming*, LU An-yuan Lu, ZHAO Wei., et al. Improvement of comprehensive performance of graphite matrix for HTR fuel by dry-bag isostatic pressing, Progress Report on China Nuclear Science & Technology, 2023, 8:1-7.
[9] Xinlei Cao, Zhenming Lu, Yuxiao Feng, Juan Bai, Bing Liu, Ke Shen., Pulverization and Spheroidization of Natural Graphite Powder for The Matrix Graphite in High-Temperature Gas-Cooled Reactors.ICONE29-92524, V015T16A096. https://doi.org/10.1115/ICONE29-92524
[10] Zhenming Lu*, Wenke Zhang, Jianghua Li., et al. Investigation on validation of scale-up manufacture technologies of overcoating particles for HTR fuel elements.Annals of Nuclear Energy, 182(2023)109614. https://doi.org/10.1016/j.anucene.2022.109614. (Q2)
[11] Z.M. Lu*, X.F. Gao, W.K. Zhang et.al., Effect of soft-mould pressing method on anisotropy of the graphitic matrix spheres: Dry-bag isostatic vs. Quasi-isostatic. J. Nucl. Mater. 570, 153950 (2022). https://doi.org /10.1016/j.jnucmat.2022.153950. [Q2, Top5%]
[12] Z.M. Lu*, W.K. Zhang, J. Zhang., Research on manufacture technology of spherical fuel elements by dry-bag isostatic pressing. Nucl Sci Tech. (2022) 33:129. https://doi.org/10.1007/s41365-022-01110-1. [Q2]
[13] Z. Jiao, C. Zhang, W. Zhang, L. He, Z. Lu, M. Qi, C. Li, S. Cheng, G. Xu, X.Chen, B. Liu, Y. Tang, Effect of water molecules co-intercalation and hydrolysis on the electrochemical deconsolidation of matrix graphite in aqueous nitric acid, Carbon. (2022). https://doi.org/10.1016/j.carbon.2022.02.025.
[14] Chen Xiaotong*, Lu Zhenming*, et al. The Electric Current Effect on Electrochemical Deconsolidation of Spherical Fuel Elements, S&T of Nuclear Installations. (2017) https://doi.org/10.1155/2017/2126876.
[15] Lu Zhenming*, Chen Xiaotong et al. Pore Structure and Moisture Absorption Property of Carbon Materials in HTR, Atomic Energy Science and Technology, 2016,50(3):477-483.
[16] Zhou Xiangwen*, Lu Zhenming, * et al. Study on the Comprehensive Properties and Microstructures of A3-3 Matrix Graphite Related to the High Temperature Purification Treatment, S&T of Nuclear Installations. (2018).6084747. https://doi.org/10.1155/2018/6084747.
[17] Lu Zhen-Ming*; Zhang Jie; et al. Optimization of carbonization process in manufacture of fuel elements for HTGR, Nuclear Power Engineering,2013, 34(5):71-75.
[18] Lu, Zhen-Ming*; Zhang, Jie; et al. Key process of overcoating for coated particles in manufacture of fuel elements for HTGR, Atomic Energy Science and Technology, 2012, 46(6):665-668.
[19] Lu, Zhen-Ming*; Zhou, Xiang-Wen; Zhang, Jie; Liu, Bing. Overcoating process and equipments development in manufacture of fuel elements for HTR-PM, Atomic Energy Science and Technology, 2012, 46(supp.l):436-439.
[20] Lu, Zhen-Ming*; Fu, Xiao-Ming; et al. Preparation of spherical UO2 ceramic particles by sol-gel method. Journal of Inorganic Materials, 2007, 22(2):259-262.
[21] Lu, Zhen-Ming*; Zhao, Dong-Lin; et al. Effect of graphitizing treatment on structure of carbon nanotubes. Transactions of Materials and Heat Treatment, 2005, 26(6):9-11.
[22] ZHOU Xiang-wen,LU Zhen-ming,LI Xin-nan,ZHANG Jie,LIU Bing,TANG Ya-ping. The oxidation behavior of A3-3 matrix graphite. New Carbon Materials, 2016, 31(2): 182-187.
[23] Xiang-Wen Zhou, Zhen-Ming Lu, et al. Research on the overcoating process in the manufacture of spherical fuel elements for HTGR, Nuclear Engineering and Design, 2014, 271: 154-157.
[24] Malin Liu, Zhenming Lu, Bing Liu, Youlin Shao. DEM Simulation of Particle Mixing for Optimizing the Overcoating Drum in HTR Fuel Fabrication. Powders and Grains 2013, Sydney 2013.7.8-12,726-730.
[25] Zhou Xiangwen, Lu Zhenming, Zhang Jie, et al. Preparation of spherical fuel elements for HTR-PM in INET, Nuclear Engineering and Design 263 (2013): 456– 461.
[26] ZHOU Xiang-wen, LU Zhen-ming, ZHANG Jie, TANG Ya-ping, ZOU Yan-wen. Research on the Overcoating Process in the Manufacture of Spherical Fuel Elements for HTGR, HTR-2012, Tokyo2012.10.28-2012.11.1.
[27] Zhenming Lu*, Donglin Zhao. Electroless Plating on Carbon Nanotubes and the Crystal Microstructure of Coatings. International Symposium on Advanced Materials and their Related Science. Beijing, 2003, 10.
[28] 卢振明*,赵东林,沈曾民.纳米钴-磷粒子/碳纳米管的制备与磁性能,机械工程材料,2008,32(4):62-65.
[29] 卢振明*,刘马林,朱宏利,周湘文,张杰,刘兵. 核能制氢用于非高炉炼铁的前景分析, 中国核学会2013年学术年会,哈尔滨 2013.9.10-13.
部分申请及授权专利
[1] 一种核燃料微球穿衣设备,2023214853729,排名第1;
[2] 一种核燃料微球穿衣方法及设备,202310690258.8,排名第1;
[3] 硅碳复合负极材料及其制备方法和应用、锂离子电池,202310404918.1,排名第1;
[4] 一种用于球形核燃料颗粒的基体粉涂敷设备及工艺方法,202110058041.6, 排名第1;
[5] 一种基于加载液体表面波制备滴丸制剂的装置,202122216749.8, 排名第1;
[6] 一种制备毫微级热固性树脂球的装置,202122208430.0, 排名第1;
[7] 一种压制球形燃料元件生坯的装置及方法,201810509223.9,排名第1;
[8] 一种用于粉体球形成型的软模,201720008273.X,排名第1;
[9] 一种回收元件生坯中包覆颗粒和基本材料的方法,201310169651.9,排名第1;
[10] 行星式颗粒物料均匀化混批装置,201210541521.9,排名第1;
[11] 一种穿衣颗粒中包覆颗粒的清洗及洗液的回收系统,201220629562.9,排名第1;
[12] 一种用于球形颗粒的穿衣设备及其穿衣工艺,200910236951.8,排名第1;
[13] 用于清洗畸形穿衣颗粒的装置,201020046739.3,排名第1;
[14] 制备焊锡球的装置,200710175421.8,排名第1;
[15] 一种溶胶给料装置,200620022902.6,排名第1;
[16] 一种基于流化床的穿衣颗粒不合格品回收系统, 201911116715.2,排名第1;
[17] 一种核燃料基体石墨粉、核燃料石墨基体材料及制备方法,202010275354.2,排名第1;
[18] 一种颗粒物料混批装置,202010309842.0,排名第1;
[19] 一种球形燃料元件解体装置,201610262532.1,排名第2;
[20] 准等静压真空液压机,201210177503.7,排名第2;
[21] 一种用真空干燥法制备干燥凝胶球的工艺,200610113703.0,排名第2;
[22] 一种球形燃料元件成型的设备, 201610041710.8,排名第3;
[23] 一种全陶瓷型包覆燃料颗粒及其制备方法、燃料元件,201410546584.2,排名第3;
[24] 滚筒式颗粒分选装置,201310390223.9,排名第2;
[25] 一种球形核燃料颗粒的传送带式形状分选装置,202010300720.5,排名第5;
[26] 一种球形燃料元件球坯的制备方法,201811619914.0,排名第3;
[27] 一种核反应堆燃料元件用天然石墨粉及其制备方法,202010529696.2,排名第4;
[28] 一种纳米荧光碳点及其制备方法,202010630322.X,排名第5;
[29] 一种制备凝胶球的装置,200610011702.5,排名第2;
获奖情况:
高温气冷堆球形燃料元件规模化制造关键技术研发及应用,中国核能行业协会科技进步一等奖,部级,2019年12月。
招生学科背景:
材料与化学,材料科学与工程,化学工程与技术,化学专业
(有与清华大学、中国科学院、湖南大学联合培养机会)