娄燕      教授

性别:

邮箱: louyan@szu.edu.cn

办公室: 致信楼S611

人才称号: 深圳市高层次人才

最终学位: 博士

办公电话: 0755-22673852

导师资格: 博士生导师

研究领域:

智能装备,微成型技术(微注塑,3D打印,非晶合金成形),智能制造(长期招收博士后研究人员)

主讲本科课程:

工程制图、轨道车辆工程、工程材料、精度设计

主讲研究生课程:

轨道车辆工程、工业设计概论

教育背景:

2010-2012,湖南大学,汽车车身先进设计及制造国家重点实验室,博士后;
2003-2006,广东工业大学,机械工程,博士学位;
1997-2000,中南大学,材料成型工程,硕士学位;
1988-1992,中南大学,材料成型工程,学士学位。

工作履历:

2006至今, 深圳大学,机电与控制工程学院,教授;
2016-2017, 英国University of Birmingham,机械学院,访问学者;   
2000-2006, 南华大学,机械学院,副教授;
1995-1997, 衡阳工学院,机械系,讲师.;
1992-1995, 衡阳钢管厂,冷拔车间,助理工程师。

主持项目:

[1]国家自然科学基金面上项目,注轧成形聚合物微结构超薄光学器件传热机理及形性调控研究,52075342, 2021/01-2024/12, 在研,主持。
[2]国家自然科学基金面上项目,光学高聚物超薄导光板连注连轧成型机理及质量控制,51675347, 2017/01-2020/12, 结题优秀,主持。
[3]深圳市基础研究面上项目,超声波辅助弹性变形对非晶合金回春性能的影响研究,JCYJ20190808152409578, 2020/02-2023/02, 在研,主持。
[4]广东省自然科学基金面上项目,超声波塑化柔性冲头金属微挤压成形机理与质量控制,2016A030313058, 2016/06-2019/06, 结题,主持。
[5]深圳市科技计划基础研究项目,常温下镁合金超声波塑化柔性冲头微挤压成形方法及机理研究, JCYJ20160308091758179, 2016/08-2018/08, 结题,主持。
[6]广东省产学研项目,光学高聚合物集成导光板连注连轧成型核心技术及关键装备开发,2013B090600020, 2015/01-2017/12, 结题,主持。
[7]深圳市科技计划基础研究项目,超声波辅助振动微体积成形方法研究, JCYJ20140418181958498, 2014/08-2016/08, 结题,主持。
[8]深圳市科技计划基础研究项目,微注塑成型充模流动过程理论及模拟实验研究JCYJ20120717151638987, 2013/05-2015/08, 结题,主持。
[9]中国博士后科学基金项目(一等),镁合金动态再结晶元胞自动机模型参数的遗传支持向量机反分析识别方法研究,2011M500124, 2011/10-2013/10, 结题,主持。
[10]广东省自然科学基金博士启动项目,基于知识集成的镁合金挤压虚拟现实系统研究,9451806001002350, 2009/10-2012/10, 结题,主持。
[11]国家自然科学基金面上项目(合作),基于滑移/孪生协调变形的本构模型及参数识别, 51405306, 2010/01-2014/12, 结题,主持.

代表期刊论文 :

[1]Jiangtao Yu, Yan Lou*, Zhaoyi Wang, Guijian Huang. Adsorption, wetting, and friction properties of phosphonic acid self-assembled monolayers on the surface of Zr-based bulk metallic glasses. Surface & Coatings Technology. 2024.485:130933
[2]Jiangtao Yu, Yan Lou*, Zhaoyi Wang, Lingyun Yang, Guijian Huang, Jiang Ma. Revealing the mechanical responses and accommodation mechanisms of Cu-based amorphous composites under elastic preload and ultrasonic vibration treatment. Journal of Non-Crystalline Solids. 2024.629:122875.
[3]Piao Qu, Guozhen Liang, Muhammad Hamza, Yan Mo, Long Jiang, Xin Luo, Zhiyuan Liu, Changyong Liu, Yan Lou *, Zhangwei Chen. 3D printing of high-purity complex SiC structures based on stereolithography. Ceramics International,2024.50:23763-23774.
[4]Yan Lou*, Xunqi Liu, Kewei Chen, Chunyan Yu, Yujing Gao. Flexural strength prediction model based on online measured temperature of fusion deposited CF/PEEK composites and accommodation mechanism. The International Journal of Advanced Manufacturing Technology. 2024.4.1. https://doi.org/10.1007/s00170-024-13561-4.
[5]Yan Lou*, Xiangwei Zhou, Dongyue Zhang and Fengyu Cheng. Microrheological Phenomenon and Mechanical Properties of High-Aspect-Ratio Microgroove Injection Moulding of Kaolin/PP Composites. International Journal of Molecular Sciences,2022.23:23094944 (21pp)
[6]Yan Lou, Lingyun Yang, Shenpeng Xv, Jiang Ma. Fast increase in ductility and strength of Zr-based bulk amorphous alloys induced by intermittent high-frequency vibration loading. Intermetallics,2022.142: 107467 (6pp)
[7]Yanfeng Feng, Xiaohua Liu, Kangsen Li, Feng Gong, Jun Shen, and Yan Lou*, Glass flow evolution and mechanism of antireflective nanoprotrusion arrays in nanoholes by direct thermal imprinting, ACS Appllied Materials & Interfaces,2021,13: 16968-16977. (IF:8.097 )
[8]Yanfeng Feng, Yan Lou*, Jun Shen. Microstructure-forming mechanism of optical sheet based on polymer state transition in injection-rolling process. Polymers, 2021, 13: 13020181(14pp)
[9]Yanfeng Feng, Yan Lou*, Qunan Lei. Theoretical and experimental investigation of an untrathin optical polymer light guide plate during continuous injection direct rolling. International Journal of Advanced Manufacturing Technology, 2021,112: 2593-2607.
[10]Yan Lou, Kewei Chen, Xiangwei Zhou, Yanfeng Feng. Injection-rolling nozzle in an imprint system with continuous injection direct rolling for ultra-thin microstructure guide light plate. Advances in Mechanical Engineering,2021,13(4): 1-13.
[11]Yan Lou, Gang Wu, Yanfeng Feng. Wall slip behaviour of polymers based on molecular dynamics at the micro/nanoscale and its effect on interface thermal resistance. Polymers,2020,12: 12102182(14pp)
[12]Yao Li, Yan Lou*. Tensile and bending strength improvements in PEEK parts using fused deposition modelling 3D printing considering multi-factor coupling. Polymers, 2020, 12: 12112497(14pp)
[13]Yan Lou, Shenpeng Xv, Zhiyuan Liu, Jiang Ma. Rejuvenation of Zr-Based Bulk Metallic Glasses by Ultrasonic Vibration-Assisted Elastic Deformation. Materials, 2020,13: 13194397(15pp)
[14]Yan Lou, Xiao Liu, Zhiyuan Liu. Fast rejuvenation in bulk metallic glass induced by ultrasonic vibration precompression. Intermetallics, 2020,118: 106687 (6pp)
[15]Yan Lou, Jianjun Xiong. Micro-Ultrasonic viscosity model based on ultrasonic-Assisted vibration micro-Injection for high-Flow length ratio parts. Polymers, 2020, 12: 12030522(12pp)
[16]Yan Lou, Qunan Lei, Gang Wu, Research on polymer viscous flow activation energy and non-newtonian index model based on feature size, Advances in Polymer Technology, 2019.2019, 1-11.
[17]Yan Lou, Xiao Liu, Jinsong He, Min Long. Ultrasonic-assisted extrusion of ZK60 Mg alloy micropins at room temperature, Ultrasonics, 2018.83:194-202.
[18]Yan Lou, Xiao Liu. Deformation behavior of a coarse-grained Mg-8Al-1.5Ca-0.2Sr magnesium alloy at elevated temperatures, Journal of Materials Engineering and Performance, 2018.27:905-914.
[19]Yan Lou, Guohui Wu, Jibin Li, Haixiong Wang, Chen Bai. Development of a continuous injection direct rolling imprint system for microstructure thin-plate, Microsystem Technologies, 2017.23:2509-2519.
[20]Yan Lou, Jinsong He, Heng Chen, Min Long. Effects of vibration amplitude and relative grain size on rheological behavior of copper during ultrasonic-assisted microextrusion, Int J Adv Manuf Technol, 2017.89:2421-2433.
[21]Yan Lou, Chen Bai, Jiulong Pei and Peiqian He. A novel micro wall slip model based on chain length and temperature, International Polymer Processing, 2016.16(2):239-246.
[22]Yan Lou,Jiulong Pei,Peiqian He,and Xiaoyu Wu. Development of a microviscosity model based on molecular chain length, Microsystem Technologies,2015, 21(5): 1121-1130.
[23]Yan Lou, Heng Chen, Changxing Ke, and Ming Long. Hot tensile deformation characteristics and processing map of extruded AZ80 Mg alloys, Journal of Materials Engineering and Performance, 2014, 23(5): 1904-1914.
[24]Yan Lou, Changxing Ke, and Luoxing Li. Accurately predicting high temperature flow stress of AZ80 magnesium alloy with particle swarm optimization-based support vector regression, Applied Mathematics & Information Sciences, 2013, 7(3): 1093-1102.
[25]Yan Lou, Xing Bai, and Luoxing Li. Effect of Sr addition on the microstructure and thermal stability of as cast Mg-Al-Ca based alloy, Transactions of Nonferrous Metals Society of China, 2011, 21(6): 1247-1252.
[26]Yan Lou, Wenhua Wu, and Luoxing Li. Inverse identification of AZ31 magnesium dynamic recrystallization parameters using BP neural network, Journal of Materials Engineering and Performance, 2012, 21(7): 1133-1145.
[27]Yan Lou, Luoxing Li, Jia Zhou, and Na Luan. Deformation behavior of Mg–8Al magnesium alloy compressed at medium and high temperatures, Materials Characterization, 2011, 62(3): 346-354.

代表专利:

[1] 娄燕,雷群安,彭太江,吴刚,熊建军. 基于特征尺寸的高聚物熔体粘流活化能模型的建立方法,2021.6,中国,发明专利,专利号:ZL201910319857.2.
[2] 娄燕,刘晓,刘志远. 一种驱动非晶合金快速回春的方法,2021.1,中国,发明专利,专利号:ZL201910368744.1.
[3] 娄燕,何培乾,裴九龙,李积彬,白晨. 一种用于注塑成型的微观壁面滑移模型建立方法,2018.1,中国,发明专利,专利号:ZL201510785127.3.
[4] 娄燕,龙敏,李落星. 一种常温下镁合金超声波微挤压成形细化晶粒工艺,2014.7, 中国,发明专利,专利号:ZL201410337632.7.
[5] 娄燕,李落星,吴文华,彭怀伟. 一种动态再结晶模型参数反分析识别方法,2013.1,中国,发明专利,专利号:ZL201110143339.3.
[6] 娄燕,胡琳,张誉恒. 一种基于VRML-JAVA的虚拟三维模型手动装配方法,2011.9,中国,发明专利,专利号:ZL200910109148.8.
[7] 娄燕,张琪生,陈上彪,叶超平,鲁泰闻. 一种胶带封箱机,2016.12,中国,实用新型专利,专利号:ZL201620381893.3.

获得荣誉:

[1]聚合物微结构超薄光学器件注轧成型关键技术及其产业化,广东省,广东省科技进步奖,二等奖,2020(主持)
[2]汽车用新型铝镁合金开发、先进挤压成形技术及应用,湖南省,湖南省科技进步奖,一等奖,2013。
[3]铝、镁合金高效挤压成形技术及应用,教育部,教育部科技进步奖,二等奖,2011。
[4]优秀硕士生指导教师,深圳大学,2015.

主要学术兼职:

[1]聚合物微结构超薄光学器件注轧成型关键技术及其产业化,广东省,广东省科技进步奖,二等奖,2020(主持)
[2]汽车用新型铝镁合金开发、先进挤压成形技术及应用,湖南省,湖南省科技进步奖,一等奖,2013。
[3]铝、镁合金高效挤压成形技术及应用,教育部,教育部科技进步奖,二等奖,2011。
[4]优秀硕士生指导教师,深圳大学,2015.

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