周长江

教授

基本情况

周长江,智能制造工程首席责任教授/博导、芙蓉学者特聘教授与岳麓学者,芙蓉计划省企业科技创新创业团队带头人,伟德官网智能驱动与传动研究所所长。获国家科技进步二等奖1项,2023年度中国好设计金奖(全国共10项),部省级科技进步一等奖3项;获国家级优秀教学成果二等奖1项,省级优秀教学成果一等奖2项。主持国家重点研发计划项目课题、工信部重大专项课题、高新技术产业化重大专项、国家自然科学基金项目等40余项。担任第九届设计与制造前沿国际会议(ICFDM2010)秘书长;Tribology International、Mechanism and Machine Theory、ASME Journal of Mechanical Design、International Journal of Fatigue、Nonlinear Dynamics、中国科学E辑:技术科学、机械工程学报、清华大学学报(自然科学版)等50余种机械工程领域国内外著名期刊特约审稿专家;国际期刊Thermal Science and Engineering、Mechanical Engineering Science、第三版《齿轮手册》编委。在本学科领域高水平期刊发表SCI/EI论文100余篇,其中高被引论文和TOP/Q1期刊论文50多篇次。编修订国家标准12项,授权国家发明专利与软件著作权60多项。主要的研究方向:智能设计与测控,高性能传动,表界面摩擦磨损与润滑,结构损伤与可靠性,精密驱动与传动。主要应用领域为新能源车辆、先进飞行器、精密机械、高端数控装备、人形机器人等。

教育及工作经历

[1]2006-2012,于伟德官网机械与运载工程公司攻读博士学位

[2]2002-2004,于中南大学机电工程公司攻读硕士学位

[3]1994-1998,于中南大学机电工程公司攻读学士学位

[4]2024—至今伟德官网智能驱动与传动研究所,所长

[5]2024—至今核心智造联合创新中心,主任

[6]2023—至今入选芙蓉学者特聘教授

[7]2022—至今芙蓉计划省企业科技创新创业,团队带头人

[8]2022—至今岳麓学者,B岗教授

[9]2019-至今闽江学者,智能制造工程首席责任教授

[10]2019/8-10月德国慕尼黑工业大学,高级访问学者

[11]2017-至今伟德官网机械与汽车工程公司,教授

[12]2014-2017 伟德官网机械与运载工程公司,力学博士后

[13]2014-2015 澳大利亚昆士兰科技大学,国家公派访学

[14]2011-2014 常州伟德官网机械装备研究院,研究员

[15]2008-2016 伟德官网机械与运载工程公司,副教授

[16]2010-2011 担任中国烟草机械装备集团,重大专项副总设计师

[17]2008-2013 担任伟德官网机械与运载工程公司,经理助理

[18]2004-2007 伟德官网机械与运载工程公司,讲师

[19]1998-2002 广州铁路集团广梅汕铁路有限责任总公司,工程师

科研项目

[1] XXXX加工机床研制与验证(XXX,国家科技重大专项,2025-2027,1970万元,课题负责人)

[2]人形机器人关节减速器关键技术研究与应用(XXX,湖南省重点研发计划项目,2026-2028,XXX万元,课题负责人)

[3]高载荷齿轮传动气液共相润滑机理与齿面胶合计算方法研究(52475054,国家自然科学基金面上项目,2025-2028,主持)

[4]双层流化床仿真分析(湖大[科技](2025)XXX,工业合作项目,2024-2026,主持)

[5]重载齿轮微点蚀承载能力计算方法与提升技术(湖大[科技](2025)XXX,陕西省齿轮传动重点实验室开放课题,2025-2027,主持)

[6]XXXX系统XXXX技术(XX预研项目,2024-2025,主持)

[7]多段物料搓接技术研究与结构优化(湖大[科技](2024)XXX,工业合作项目,2024-2026,主持)

[8]超短烟支传送技术仿真及优化(湖大[科技](2024)XXX,工业合作项目,2024-2026,主持)

[9]风室体及导板流场仿真优化(湖大[科技](2024)XXX,工业合作项目,2024-2026,主持)

[10]高速精密电驱动减速器关键技术研究(XXX,国家重点研发计划项目,2023-2026,1500万,课题负责人)

[11] XXXX精密高效加工项目(XXX,工信部重大专项,2023-2026,课题负责人)

[12]XX齿轮高精密加工技术研究(XXX,自主创新专项资金项目,2023-2025,300万,课题负责人)

[13]XXXX智能驱动与传动创新团队(XXX,科技创新创业团队项目,2023-2025,团队带头人)

[14]高功密航空齿轮传动齿面磨损与接触疲劳协同致损机理及计算方法研究(52075153,国家自然科学基金项目,2021-2024,主持)

[15] XX装配式建筑相关关键技术开发与集成应用重大专项(高新技术产业化重大专项,2021-2025,10200万,主持)

学术成果

著作及国家标准

[1]机械与运载工程公司.伟德官网机械科技发展报告2010-2020 [M].长沙:伟德官网出版社,2010(参编并担任学术秘书)

[2]国家自然科学基金委员会工程与材料科学部,第九届海内外青年设计与制造科学会议.《机械学科资助项目结题成果汇编(2005-2006年)》(2册)[M].长沙:伟德官网出版社,2010(参编并担任学术秘书)

[3]刘江南,郭克希.机械设计基础(第三版)(“十一五”国家级规划教材)[M].长沙:伟德官网出版社,2014(参编)

[4]唐进元,周长江,颜海燕.机械设计习题与解答[M].北京:电子工业出版社,2006

[5]中国机械工程学会.中国机械工程技术路线图(第二版)[M].北京:中国科学技术出版社,2016(参编)

[6]直齿轮和斜齿轮承载能力计算第6部分:变载荷条件下的使用寿命计算[S]. GB/T 3480.6—2018/ISO 6336-6:2006

[7]直齿轮和斜齿轮承载能力计算第1部分:基本原理、概述及通用影响系数[S]. GB/T 3480.1—2019/ISO 6336-1:2006

[8]高精度齿轮抗疲劳制造通用技术要求[S]. GB/T 39332—2020

[9]直齿轮和斜齿轮承载能力计算第2部分:齿面接触强度(点蚀)计算[S]. GB/T 3480.2—2021/ISO 6336-2:2019

[10]直齿轮和斜齿轮承载能力计算第3部分:轮齿弯曲强度计算[S]. GB/T 3480.3—2021/ISO 6336-3:2019

[11]齿轮胶合承载能力试验方法[S]. GB/Z 13672-2022

[12]圆柱齿轮ISO齿面公差分级制第1部分:齿面偏差的定义和允许值[S].GB/T 10095.1-2022

[13]圆柱齿轮ISO齿面公差分级制第2部分:径向综合偏差的定义和允许值[S].GB/T 10095.2-2023

[14]齿轮FZG试验程序第2部分:高极压油的相对胶合承载能力FZG阶梯加载试验A10/16.6R/120 [S]. GB/T 19936.2-2024

[15]直齿轮和斜齿轮承载能力计算第22部分:微点蚀承载能力计算[S]. GB/Z 3480.22-2024

[16]塑料齿轮承载能力计算[S]. GB/T 44846-2024

 

代表性论文:

[1]Changjiang Zhou*, Fa Zhang, Haifeng Chen, Ningwei Xia. Microstructural evolution of polycrystalline α-Fe/Fe3Cultra-precision grinded under water lubrication under water lubrication. Journal of Manufacturing Processes, 2024,132:467-476 (Q1, TOP)

[2]周长江*,夏宁伟, 方安舒,侯圣文.含换相转矩波动的小型伺服驱动系统机电耦合模型及动态特性分析[J].机械工程学报,2024,60(X):1-10

[3]Xinghe Jiang, Changjiang Zhou*, Jie Su, Ning Li. Enhancing durability of superhydrophobic surfaces via nanoparticle-induced bipolar interface effects and micro-nano composite structures: A femtosecond laser and chemical modification approach [J]. Surfaces and Interfaces, 2024, 53: 105094. (IF=6.137/Q1 TOP)

[4]Guanlin Ren, Changjiang Zhou*, Xiaoqiang Fan, Martin Dienwiebel, Siyuan Wang, Yulong Li. Enhancement of Polyurea Grease Performance through Graphene Oxide-Functionalized Polyurea Thickeners: A Novel Hydrogen-Bond Network Approach[J]. Tribology International, 2024:110123 (IF=5.62/Q1 TOP)

[5]Jiang X, Zhou C*, Su J, Tang S. Enhanced anti-icing performance of novel superhydrophobic F-L@KH-SiO2/OTMS coating synergistic preparation with bionic micro-nano structures and modified[J]. Chemical Engineering Journal, 2024,498: 155264. (IF=13.3/Q1, TOP)

[6]Yijie Chen, Changjiang Zhou*, Haikang Chen, Jie Su. Gear heat dissipation simulation and experiment under nanofluid lubrication [J]. International Communications in Heat and Mass Transfer, 2024 (157): 107689 (Q1)

[7]Jie Su, Sirui Li, Bo Hu*, lairong Yin, Changjiang Zhou, Hongbing Wang, Shengwen Hou. Innovative insights into nanofluid-enhanced gear lubrication Computational and experimental analysis of churn mechanisms [J]. Tribology International, 2024, 199: 109949 (IF=5.62/Q1 TOP)

[8]Zizhen Qiao, Changjiang Zhou*, Jie Su, Xinghe Jiang. A novel dynamic heat-flow coupled model under spray lubrication for high-speed gears: CFD simulation and experimental validation[J]. Simulation Modeling Practice and Theory, 2024 (131): 102867(Q1)

[9]Changjiang Zhou*, Haoye Wang, Shengwen Hou, Yong Han. A hybrid physics-based and data-driven method for gear contact fatigue life prediction[J]. International Journal of Fatigue, 2023, 175:107763(IF 6.0/ Q1 TOP)

[10]Su jie, Zhong xiang*, Zhou changjiang. Simulation and verification of particle flow with an elastic collision by the immersed edge-based smoothed finite element method. Advanced Powder Technology, 2023:104130.(Q1)

[11]Jiang Xinghe, Zhou Changjiang*, Su Jie, et al. Injection parameter design to improve the high-speed gear heat dissipation: CFD simulation and regression orthogonal experiment[J]. Simulation Modelling Practice and Theory, 2023, 128: 102795.(Q1)

[12]Jie Su, Changjiang Zhou*. Orderly arrangement of agricultural biomass particles in designed gas-solid fluidized beds using CFD-DEM and image experiment[J]. Computers and electronics in agriculture, 2023, Vol.441: 136109(Q1)

[13]Zizhen Qiao, Kangkang Chen, Changjiang Zhou*, Hui Ma*. An improved fault model of wind turbine gear drive under multi-stage cracks[J]. Simulation Modeling Practice and Theory, 2023 (130): 102679(Q1)

[14]Changjiang Zhou*, Jie Su, Xinghe Jiang, Zhaoyao Shi. Numerical simulation and experimental verification for the sorting behaviors of mixed biomass particles in a novel Z-shaped fluidized bed [J]. Chemical Engineering Journal, 2022, Vol.441: 136109. (IF 16.7/ Q1 TOP)

[15]Shengbo Li*, Changjiang Zhou, Leonid Savin, Denis Shutin, Alexey Kornaev, Roman Polyakov, Zhaobo Chen. Theoretical and experimental study of motion suppression and friction reduction of rotor systems with active hybrid fluid-film bearings[J]. Mechanical Systems and Signal Processing, 2022, 182:109548. (IF 8.934/ Q1, TOP)

[16]Jie Su, Changjiang Zhou*, Haikang Chen, Ningwei Xia, Zhaoyao Shi. The physical and mechanical properties for flexible biomass particles using computer vision[J]. Fuel, 2022, Vol.315: 123278. (Q1, Top)

[17]Changjiang Zhou*, Xinghe Jiang, Jie Su, Yi Liu, Shengwen Hou. Injection lubrication for high-speed helical gears using the overset mesh method and experimental verification[J]. Tribology International, 2022. 173: 107642. (Q1, Top)

[18]Guanlin Ren, Changjiang Zhou*, Xiaoqiang Fan, Ming Zheng, Siyuan Wang. Investigating the rheological and tribological properties of polyuria grease via regulating ureido amount[J]. Tribology International, 2022. 173: 107643. (Q1, Top)

[19]Guanlin Ren, Changjiang Zhou*, Siyuan Wang, Xiaoqiang Fan*, Yong Han, Guanghu Jin. Improving the rheological and tribological properties of lithium complex grease via complexing agent[J]. Tribology International, 2022, 175: 107826. (Q1, Top)

[20]Changjiang Zhou*, Haikang Chen, Jie Su, Yijie Chen. Orientation simulation and image experiment for flexible biomass particle in wedge fluidization channel[J]. Journal of Food Engineering, 2022, 333: 111150. (Q1, Top)

[21]Changjiang Zhou*, Guanlin Ren, Xiaoqiang Fan, Yunyan Lv. Probing the effect of thickener microstructure on rheological and tribological properties of grease[J]. Journal of Industrial and Engineering Chemistry, 2022,111:51-63. (Q1)

[22]Jie Su, Changjiang Zhou*, Chen Jiang*, Ming Zheng. The movement law and orientation control of rectangular particles in the viscous fluid domain based on IS-FEM[J]. Advanced Powder Technology, 2022, 33: 103634. (Q1)

[23]Wang H B, Zhou C J*, Lv Y Y, Hu B. A general contact stiffness model for elastic bodies and its application in time-varying mesh stiffness of gear drive. Mathematics and Mechanics of Solids, 2022: DOI.10.1177/10812865221092106 (Q1)

[24]Haihang Wang, Changjiang Zhou*, Bo Hu, Yunzhe Li. An adhesive wear model of rough gear surfaces with elastic–plastic contact[J]. Part J: Journal of Engineering Tribology, 2022: DOI.10.1177/13506501221074810.

[25]Mingcai Xing, Changjiang Zhou*, Yunzhe Li, Ming Zheng. Wear prediction considering dynamic load for spur gear in mixed elastohydrodynamic lubrication[J]. Part J: Journal of Engineering Tribology, 2022: DOI. 10.1177/13506501221134998.

[26]周长江*,王豪野,靳广虎,艾永生.复合应力场下螺旋锥齿轮裂纹萌生-扩展寿命计算[J].机械工程学报,2022,58(23): 28-38

[27]Changjiang Zhou*, Jie Su, Haikang Chen, Zhaoyao Shi. Terminal velocity and drag coefficient models for disc-shaped particles based on the imaging experiment[J]. Powder Technology, 2021:117062. (Q1)

[28]Changjiang Zhou*, Mingcai Xing, Hongbing Wang, Bo Hu. A novel thermal network model for predicting the contact temperature of spur gears[J]. International Journal of Thermal Sciences, 2021, 161: 106703. (Q1)

[29]Changjiang Zhou*, Haihang Wang, Hongbing Wang, Bo Hu. A three-Dimensional asperities of rough surfaces model based on valley-peak ratio of highest peak[J]. MECCANICA, 2021, 56(3): 711-730. (Q1)

[30]Changjiang Zhou, Zefeng Qu, Bo Hu*, Shengbo Li. Thermal network model and experimental validation for a motorized spindle including thermal-mechanical coupling effect[J]. International Journal of Advanced Manufacturing Technology, 2021, 115:487-501. (Q1)

[31]Wang Hongbing, Changjiang Zhou*, Wang Haihang, et al. A novel contact model for rough surfaces using piecewise linear interpolation and its application in gear wear[J]. Wear, 2021, 476: 203685. (Q1, Top)

[32]Wang Hongbing, Tang Le Wei*, Zhou Chang Jiang*, Shi Z Y. Wear life prediction method of crowned double helical gear drive in point contact mixed elastohydrodynamic lubrication. Wear, 2021, 484-485: 204041. (Q1, Top)

[33]Bo Hu, Changjiag Zhou*, Hongbing Wang, Lairong Yin. Prediction and validation of dynamic characteristics for a valve train system with flexible components and gyroscopic effect [J]. Mechanism and Machine Theory, 2021,157: 104222. (Q1, Top)

[34]Bo Hu, Changjiang Zhou*, Hongbing Wang, Siyu Chen. Nonlinear tribo-dynamic model and experimental verification of a spur gear drive under loss-of-lubrication condition[J]. Mechanical Systems and Signal Processing, 2021, 153(5): 107509. (IF 8.934/ Q1, TOP,高被引)

[35]Changjiang Zhou*, Xing Mingcai, Hu Bo, et al. A modified wear model considering contact temperature for spur gears in mixed elastohydrodynamic lubrication [J]. Tribology Letters, 2020, 68(4): 1-17. (Q1)

[36]Changjiang Zhou*, Luyuan Ning, Haoye Wang, Lewei Tang. Effects of centring error and angular misalignment on crack initiation life in herringbone gears[J]. Engineering Failure Analysis, 2020: 105082. (Q1)

[37]Wang Hongbing, Zhou Changjiang*, Hu Bo, Liu ZM. Tooth wear prediction of crowned helical gears in point contact[J]. Part J: Journal of Engineering Tribology, 2020, 234(6): 947-963.

[38]Bo Hu, Ming Zheng, Changjiang Zhou*. Tribo-dynamics model of a spur gear pair with gyroscopic effect and flexible shaft[J]. Forschung Im Ingenieurwesen, 2019, 83(3): 367-377.

[39]Xingbao Huang, Changjiang Zhou*, Youqiang Wang. The mixed regime and wear mechanism of elliptical contact in the start-up process considering interface material properties: a theoretical prediction[J]. International Journal of Mechanical Science, 2019,157-158:60-74. (Q1, Top)

[40]Hongbing Wang, Changjiang Zhou*,Yuying Lei, Zhongming Liu. An adhesive wear model for helical gears in line-contact mixed elastohydrodynamic lubrication[J]. Wear, 2019, 426-427:896-909. (Q1, Top)

[41]Zeliang Xiao, Changjiang Zhou*, Siyu Chen, Zuodong Li. Effects of oil film stiffness and damping on spur gear dynamics [J]. Nonlinear Dynamics, 2019, 96(1):145-159. (Q1, TOP)

[42]Zeliang Xiao, Changjiang Zhou*, Zuodong Li, Ming Zheng. Thermo-mechanical characteristics of high-speed and heavy-load modified gears with elasto-hydrodynamic contacts[J]. Tribology International, 2019, 131(3):406-414. (Q1, Top)

[43]Bo Hu, Changjiang Zhou*, Siyu Chen. Elastic dynamics modelling and analysis for a valve train including oil film stiffness and dry contact stiffness[J]. Mechanism and Machine Theory, 2019, 131(1): 33-47. (Q1, Top)

[44]Changjiang Zhou*, Bo Hu, Xuanlv Qian, Xu Han. A novel prediction method for gear friction coefficients based on a computational inverse technique[J]. Tribology International, 2018, 127(11): 200-208. (Q1, Top)

[45][45] Changjiang Zhou*, Hongbing Wang. An adhesive wear prediction method for double helical gears based on enhanced coordinate transformation and generalized sliding distance model [J]. Mechanism and Machine Theory, 2018, 128(8): 58-83. (Q1, Top)

[46]Changjiang Zhou*, Zeliang Xiao. Stiffness and damping models for oil film in elastohydridynamic lubrication and applications in gear drive[J]. Applied Mathematical Modelling, 2018, 61(9): 634-649. (Q1, Top)

[47]周长江*,雷玉英,汪红兵,韩旭.准静态与动态载荷下斜齿轮齿面粘着磨损计算[J].机械工程学报,2018,54(23): 10-22.

[48] Zhou C J*, Wang Z H, Chen S Y. Coupling of the 2D microtopography of tooth surface and transmission error [J]. Journal of Mechanical Science and Technology, 2018, 32(2):723-730.

[49][49] Changjiang Zhou*, Bo Hu, Siyu Chen, Liping He. An enhanced flexible dynamic model and experimental verification for a valve train with clearance and multi-directional deformations [J]. Journal of Sound and Vibration, 2017, 410: 249-268. (Q1, Top)

[50]Changjiang Zhou*, Futian Huang, Xu Han, et al. An elastic-plastic asperity contact model and its application for micro-contact analysis of gear tooth profiles[J]. International Journal of Mechanics and Materials in Design, 2017,13(3):335-345. (Q1)

[51]Changjiang Zhou*, Lijun Pan, Jing Xu, Xu Han. Non-Newtonian thermal elastohydrodynamic lubrication in point contact for a crowned herringbone gear drive [J]. Tribology International, 2017, 116(5):470-481. (Q1, Top)

[52]Changjiang Zhou*, Zuodong Li, Bo Hu, Haifei Zhan, Xu Han. Analytical solution to bending and contact strength of spiral bevel gears in consideration of friction[J]. International Journal of Mechanical Science, 2017, 128-129:475-485. (Q1, Top)

[53]Changjiang Zhou*, Zeliang Xiao, Siyu Chen, Xu Han. Normal and tangential oil film stiffness of modified spur gear with non-Newtonian elastohydrodynamic lubrication[J]. Tribology International, 2017, 109(5):319-327. (Q1, Top)

[54]Changjiang Zhou, Yi Sai, Jiujiu Chen*. Tunable Lamb wave band gaps in two-dimensional magnetoelastic phononic crystal slabs by an applied external magnetostatic field [J]. Ultrasonics, 2016, 71(9):69-74. (Q1)

[55]Zhou Changjiang*, Hu Bo, Chen Siyu, et al. Design of high-speed cam mechanism using Fourier series and its kinematic characteristics analysis[J]. Mechanism and Machine Theory, 2016, 104(10): 118-129. (Q1, Top)

发明专利:

[56]周兵,孙乐.汽车框形钢板弹簧悬架. CN103057370A[P],2015.

[57]周兵,李永辉,卢玉求,等.一种汽车的自动平衡轮胎气压装置:CN103818201A[P]. 2014.

[58]周兵,宋义彤.一种车用主动横向稳定杆:CN103818211A[P]. 2014.

[59]周兵,吴晓建,文桂林,杨阳.一种轮胎侧向力线性-非线性工作状态快速判断方法,发明专利,201710280613.9

奖励与荣誉

科研奖励:

[1] 重型商用车高效率长寿命变速器,获中国好设计金奖,2023(排名第3,全国共10项)

[2] 高效率高功密长寿命商用车变速器关键技术及产业化,获中国机械工业科学技术一等奖,2022(排名第1)

[3]柔性生物质颗粒的流体动力学行为研究,获“2022年绿色与智能包装技术创新论坛优秀论文奖”

[4]含摩擦的齿轮-转子-轴承系统弹性动力学建模与分析,评为2021年伟德官网优秀博士学位论文(博士生:胡波)

[5] 含摩擦齿根弯曲应力载荷历程计算与测试,获“2020年度中国机械工程学会”优秀论文奖

[6]基于弹流润滑理论的修形直齿轮油膜刚度模型与参数分析,评为2019年湖南省优秀硕士学位论文(硕士生:肖泽亮)

[7] 获“海克斯康杯”《机械传动》优秀论文一等奖,2017,(参选论文1015篇,一等奖3篇)

[8]复杂装备数字化设计中的关键共性技术及其应用,获国家科学技术进步二等奖,2013

[9]复杂装备数字化设计中的关键共性技术及其应用,获中国机械工业科学技术一等奖,2012

[10] 复杂装备的结构优化设计技术及其工程应用,获湖南省科学技术进步一等奖,2010

教研奖励:

[1]实施“四轮驱动”培育机械工程高质量创新人才(国家优秀教学成果二等奖,2009)

[2]“四轮驱动”的模块化、渐进式机械类创新人才培养模式的研究与实践(湖南省教学成果一等奖,2008)

[3]机械基础系列课程研究型教学新模式的研究与实践(湖南省教学成果一等奖,2006)

[4]机械设计多媒体教学软件(湖南省高等公司多媒体教育软件大奖赛三等奖,2006)

[5]参编教材《机械设计基础》,获2005~2006年度中南地区大学出版社优秀教材二等奖

[6]参编教材《机械设计基础》,获2008年度湖南省高等公司优秀教材

[7]新工科视域下智能制造专业方向人才培养模式的研究与实践(湖南省教学改革研究优秀结题项目,2021,主持)

[8]《机械设计》国家级本科一流课程(2020,排名第2)

[9]《现代机械设计》国家级精品课程(2010-2014,主讲教师)

[10]《现代机械设计基础》湖南省精品课程(2009-2013,主讲教师)

[11]获第四届伟德官网“天语教师奖”(2008)

[12]获2008-2009年度伟德官网“优秀教师奖”(2009)

[13]获伟德官网长丰奖励基金“优秀教师奖”(2006,2007,2009,2020)

[14]指导的员工作品获湖南省机械创新设计大赛二等奖(2006,2010,2012,2018)

[15]指导的员工作品获伟德官网老员工创新训练计划SIT优秀项目一等奖(2007)

[16]指导的员工作品获伟德官网老员工创新训练计划SIT优秀项目二等奖(2008)

[17]获伟德官网长丰奖励基金“突出贡献奖”(2010,2013,2014,2020)

[18]获伟德官网本科优秀创新毕业设计(论文)一等奖指导教师(2007)

[19]获伟德官网本科优秀创新毕业设计(论文)二等奖指导教师(2008,2009,2014,2020,2024)

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