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湖南大学机械与运载工程学院导师教师师资介绍简介-王兆龙

本站小编 Free考研考试/2021-08-18

湖南大学环境健康智能传感交叉研究中心执行主任,湖南大学机械与运载工程学院助理教授,湖南省优秀青年基金获得者。2011年于华中科技大学获得学士学位,2018年于上海交通大学获得博士学位,曾先后在瑞士洛桑联邦理工学院,中国空间技术研究院及美国佐治亚理工学院从事科研工作,2019年加入湖南大学。先后主持、参与国家自然科学青年基金,湖南省优秀青年基金,国家自然科学基金重点国际合作项目、国家自然科学基金重点项目,国家重大研发计划,广东省重大研发计划在内的多项重大基金。主要从事太阳能全吸收超材料,纳米光子学,微纳尺度导热及微尺度3D打印相关研究。已发表SCI收录学术论文二十余篇,合作英文专著一部,发表多篇会议论文并做大会口头报告。担任《湖南大学报(自然科版)》青年编委会员及多个SCI期刊特约审稿人。





基本信息
姓 名: 王兆龙
系 别: 能源与动力工程系
职称/职务: 助理教授
湖南大学环境健康智能传感交叉研究中心执行主任
办 公 室:机械与运载工程学院205A
E-mail:zhaolongwang@hnu.edu.cn


教育背景
1. 2011/ 9-2018/3,上海交通大学,机械与动力工程学院,硕博连读,导师:郑平院士

2. 2016/8-2017/9,佐治亚理工学院,机械系,联合培养,导师:Zhuomin M. Zhang
3. 2015.6-2015.12,中国空间技术研究院,钱学森实验室,联合培养,导师:姚伟研究员,王磊研究员
4. 2014/7-2014/12,瑞士洛桑联邦理工学院,机械系,联合培养,导师:THOME John Richard
5. 2007/09-2011/6,华中科技大学,热能与动力工程学院,本科,导师:黄素逸教授






工作履历
1. 2019/3-至今,湖南大学,机械与运载工程学院,助理教授
2. 2018/3-2019/2,上海交通大学,研究助理




研究领域
研究兴趣:
(1) 太阳能全吸收超材料及光热转化
(2) 微纳尺度热传递、强化传热及相变
(3) 微尺度3D打印
(4) 纳米光子学
(5) 能量存储




科研项目
国家自然科学基金青年基金项目,微纳结构形貌对超材料表面太阳能全吸收及气液相变过程协同作用研究(No.**),2021/01-2023/12,在研,负责

湖南省优秀青年基金,月球表面辐射制冷理论与实验研究,2020/01-2022/12,在研,负责
广东省重点研发计划,复杂三维微纳结构器件高精度大幅面增材制造技术与装备,2020/01-2022/12,在研,主持子课题
中国空间技术研究院,仿生结构表面亲疏水原理研究及微纳 3D打印,2020/10-2021/10,在研,负责
中国空间技术研究院,基于接触角梯度变化的气液分离和输运机理研究及功能表面3D打印工艺探索,2020/10-2021/10,在研,负责
安徽酷哇机器人有限公司,基于“人机接口+远程操控”技术智能垃圾分类及智慧环卫车载控制系统,2020/10-2022/10,在研,负责

湖南大学科研启动经费及人才项目专项经费,纳米材料太阳能作用下汽泡成核能量转化特性及形貌变化特性研究,2019/03-2023/12,在研,负责

国家自然科学基金重点国际合作项目, 纳米流体高效吸收太阳能产生蒸汽的机理研究(No.),2015/01-2019/12,结题,参与
国家重点研发计划,高导热率金属基复合材料及器件基础应用研究(No.2017YFB**),2017/07-2021/06,在研,参与
国家自然科学基金重点项目,电场强化汽/液/固三相接触区域相变传热的研究(No. **),2011/01-2014/12,结题,参与
高等学校博士学科点专项科研基金资助项目,脉冲加热下过冷度与液体流速对临界脉冲宽度的影响(048),2013/01-2015/12,结题,参与
上海卫星工程研究所,超短脉冲超高热流密度热传导及机理研究,结题,参与

上海卫星工程研究所,空间大功率电子散热特超蒸发器技术研究,结题,参与
上海卫星工程研究所,纳米胶囊潜热型热流体的传热性能以及应用研究,结题,参与




学术成果
Journal Publications
2021
[25]Z Wang,W. Li, L. Chen, Z. Zhan, H. Duan,Photocurable conductive elastomer for long lasting wearable devices, submitted.
[24]Z. Liu, G. Duan, H. Duan, Z. Wang*,Nearly Perfect Absorption of Solar Energy by Coherent of Electric and Magnetic Plasmon, submitted.

[23]Z. Zhan, L. Chen, H. Duan, Y. Chen, M. He, Z. Wang*,3D printed ultra-fast photothermal responsive shape memory hydrogel for microrobot, International Journal of Extreme Manufacturing, 2021.
[22]Z. Wang*, Z. Liu, G. Duan, H. Duan,L. Fang,Ultrahigh Solar Absorption in Metamaterials with Electric and Magnetic Polaritons Enabled by Multiple Materials,International Journal of Heat and Mass Transfer, 2021.
[21]Z. Wang, G. Duan,H. Duan,Optimization of the perfect absorber for solar energy harvesting based on the cone-like nanostructures, AIMS Energy, 9(4): 714–726.
[20]L. Chen, Y. Zhang, H. Ye, G. Duan,H Duan,Q. Ge,Z. Wang*,Color-changeable Four-Dimensional Printing Enabled with Ultraviolet Curable and Thermochromic Shape Memory Polymers, ACS Applied Materials & Interfaces, 2021, 13, 18120?18127.
[19]L. Chen,Z. Wang*, Z. Zhan, M. Xie, Y. Zhang, P. Cheng, Y. Chen, H. Duan,3D printed super-anti-freezing self-adhesive human-machine interface, Materials Today Physics, 2021, 19, 100404.
[18]Y. Liao, H. Duan, P. Liu, Y. Chen,Z. Wang*,3D printed complex microstructures with self-sacrificial structure enabled by grayscale polymeric and ultrasonic treatment,ACS Omega, 2021, 6, 18281?18288.


2020
[17]Q. Yin, Q. Guo, Z. Wang*, Y. Chen, H. Duan, P. Cheng, 3D-printed bio-inspired Cassie-Baxter wettability for controllable micro-droplet manipulation, ACS Applied Materials & Interfaces, 13 (2021) 1979?1987.

[16]Z. Wang, G. Qi, P. Yang, Z. Zhang, P. Cheng, Experimental study of a nearly perfect absorber made of a natural hyperbolic material for harvesting solar energy, Journal of AppliedPhysics,127(2020) 233102.
[15]Q. Ge, Z. Li, Z. Wang*, K. Kowsari, W. Zhang, X. He, J. Zhou, N. Fang,Projection Micro Stereolithography Based 3D Printing and Its Applications, International Journal of Extreme Manufacturing, 2 (2020) 022004.
[14]Y. Chen, Y. Hu, J. Zhao, Y. Deng, Z. Wang, X. Cheng, D. Lei, Y. Deng, H. Duan,Topology Optimization-Based Inverse Design of PlasmonicNanodimer with Maximum Near-Field Enhancement,Advanced Functional Materials, (2020) **.
[13]Z. Chen, S. Zhang, Y. Chen, P. Li, Z. Wang, X. Zhu, K. Bi, H. Duan, Double Fano Resonances in Hybrid Disk/Rods Artificial Plasmonic Molecules Based on Dipole-Quadrupole Coupling, Nanoscale, 12.17 (2020) 9776-9785.
[12]Z. Wang, L. Chen, Y. Chen, P. Liu, H. Duan, P. Cheng,3D Printed Ultrastretchable, Hyper-Antifreezing ConductiveHydrogel for Sensitive Motion and ElectrophysiologicalSignal Monitoring, Research, 2020, **.
[11]Q. Liang, Q. Yin, L. Chen,Z. Wang*, X. Chen,Perfect spectrally selective solar absorber with dielectric filled fishnet tungsten grating for solar energy harvesting, Solar Energy Materials and Solar Cells, 215 (2020) 110664.
[10]Y. Song, Q. Liu, Z. Wang*, Y. Chen, H. Duan, P. Cheng,Super-wetting Surfaces with an Array of SU-8 Micro-Pillars Enabled by Ion-beam Etching, Journal of Micromechanics and Microengineering, 30 (2020) 115010.


2019
[9]Z. Wang, P. Cheng, Enhancements of absorption and photothermal conversion of solar energy enabled by surface plasmon resonances in nanoparticles and metamaterials (invited review), International Journal of Heat and Mass Transfer, 140 (2019) 453-482.

[8]Y. Chen, S. Zhang, Z. Shu, Z. Wang, P. Liu, C. Zhang, Y. Wang, Q. Liu, H. Duan, Y. Liu,Adhesion-Engineering-Enabled "Sketch and Peel" Lithography for Aluminum Plasmonic Nanogaps,Advanced Optical Materials, (2019) **.


2018
[7]Z. Wang, Z. Zhang, X. Quan, P. Cheng, A numerical study on effects of surrounding medium, material, and geometry of nanoparticles on solar absorption efficiencies, International Journal of Heat and Mass Transfer 116 (2018) 825–832.
[6]Z. Wang, Z. Zhang, X. Quan, P. Cheng, A perfect absorber design using a natural hyperbolic material for harvesting solar energy, Solar Energy 159 (2018) 329–336.
[5]Z. Wang, Z. Zhang, P. Cheng, Natural anisotropic nanoparticles with a broad absorption spectrum for solar energy harvesting, International Communications in Heat and Mass Transfer, 96 (2018) 109–113.
[4]Z. Wang, X. Quan, Z. Zhang, P. Cheng, Optical absorption of carbon-gold core-shell nanoparticles, Journal of Quantitative Spectroscopy & Radiative Transfer 205 (2018) 291–298.


2017 and before
[3]Z. Wang, X. Li, D. Chen, X. Quan, P. Cheng, Experimental investigation on bubble nucleation in flow boiling of a nanofluid with plasmon resonance effects irradiated by a pulsed laser beam, China Science paper, 12(23) (2017) 2651-2655.

[2]Z. Wang, X. Quan, W. Yao, L. Wang, P. Cheng, Plasma resonance effects on bubble nucleation in flow boiling of a nanofluid irradiated by a pulsed laser beam, International Communications in Heat and Mass Transfer 72 (2016) 90–94.
[1]Z. Wang, X. Quan, Z. Zhang, P. Cheng, Numerical studies on absorption characteristics of plasmonic metamaterials with an array of nanoshells, International Communications in Heat and Mass Transfer 68 (2015) 172–177.


Book Chapter
[1]Z. Wang, Ping Cheng, Solar Energy Harvesting by Perfect Absorbers Made of Natural Hyperbolic Material, Nature Springer.


Presentation
[1] Z. Wang, Z. Zhang, P. Cheng, Optical absorption of graphene-coated nanoparticles and graphene nanoshells, The 16th International Heat Transfer Conference, Beijing, China, 2018.
[2]Z. Wang, Z. Zhang, X. Quan, P. Cheng, Perfect Absorption in the Broad Solar Spectrum with Bi2Te3 Hyperbolic Metamaterials, in: Advanced Photonics Congress, New Orleans, United State, 2017.
[3]Z. Wang, X. Quan, Z. Zhang, P. Cheng, Absorption Property and Heat Dissipation of Carbon-Gold Core-Shell Nanoparticles, in: 3rd International Workshop on Nano-Micro Thermal Radiation, KAIST in Daejeon, Korea, 2017.
[4]Z. Wang, X. Li, X. Quan, W. Yao, P. Cheng, Plasmon resonance effects on bubble nucleation in flow boiling of a nanofluid irradiated by a continuous laser beam, in: Proceedings of the 9th International Symposium on Heat Transfer ISTH-9, Beijing, China, 2016.
[5]L. Chen, Z. Zhou, Y. Zhang, H. Duan, Z. Wang*,Poly (HBA-co-AMPS) based Hydrogel by PμSL 3D Printing for Robotic Sensor,The IEEE 27TH International Conference on Mechatronics and Machine Vision in Practice (M2VIP 2021),Shanghai. China, 2021.


Patent
1、王兆龙,王睿卓,樊润鸿,陈雷,段辉高,一种可实现Z轴高精度控制的挤出式3D打印装置及方法,ZL 7.7
2、王兆龙,单武斌,段辉高、刘鹏,一种可实现同步打印的多轴多材料多光源光固化3D快速打印装置及方法,ZL 1.3
3、段辉高,单武斌,王兆龙,刘鹏,一种多轴光固化3D微纳加工设备及方法,ZL 5.1
4、陈雷,张艺茹,王兆龙,段辉高,一种光固化3D打印用抗冻导电水凝胶及其制备方法,ZL 8.5
5、李平,段辉高,王兆龙,一种离子束抛光的大面积单片集成Fabry-Pérot腔滤色器制造方法,9.X

6、李平,段辉高,王兆龙,一种离子束抛光单片集成Fabry-Pérot腔全彩滤光片大批量制造方法,ZL 3.6
7、靳世平,王兆龙,余旭,袁彪,吴星,张三霞,分布式空调系统,7

8、李平,段辉高,王兆龙,一种基于微结构的超浸润表面及其制备方法,2020.02.29,中国,9.6 (发明专利,申请)

9、张艺茹,陈雷,王兆龙,段辉高,一种高精度3D打印用耐高温阻燃材料及其制备方法和应用,2020.02.29,中国,4.7 (发明专利,申请)

10、陈雷,张艺茹,王兆龙,段辉高,一种光固化3D打印用高拉伸导电水凝胶及其制备方法,2020.02.29,中国,0.2 (发明专利,申请)
11、单武斌,段辉高,王兆龙,陈雷,一种树脂材料匹配相应光源用的多轴光固化3D微纳加工设备及其方法,2020.02.29,中国,0.9 (发明专利,申请)
12、谢祺晖,王兆龙,段辉高,单武斌,一种多材料光固化3D打印设备,2020.02.29,中国,1.7 (发明专利,申请)
13、段辉高,张艺茹,单武斌,王兆龙,一种可实现混合材料用的多轴光固化3D打印装置及方法,2020.02.29,中国,2.1 (发明专利,申请)

14、谢祺晖,王兆龙,段辉高,张艺茹,鲍忠旭,一种可手动调节分辨率、多轴、可变光波波长的光固化3D打印装置,2020.02.29,中国,4.3 (发明专利,申请)
15、陈雷,张艺茹,王兆龙,段辉高一种可调光源波长的高精度大面积快速3D打印装置及方法,2020.02.29,中国,5.8 (发明专利,申请)
16、谢祺晖,王兆龙,段辉高,一种多材料光固化3D打印装置及方法,2020.02.29,中国,3.9 (发明专利,申请)
17、李平,段辉高,王兆龙,一种制造微纳米台阶阵列结构的离子束抛光加工方法,2020.02.29,中国,2.4 (发明专利,申请)
18、谢明铸,谢祺晖,王兆龙,段辉高,一种三自由度3D打印机成型平台,2020.02.29,中国,5.0 (发明专利,申请)
19、谢祺晖,王兆龙,段辉高,单武斌,一种多方式多材料3D打印设备,2020.04.03,中国, 9.3 (发明专利,申请)

20、谢祺晖,王兆龙,段辉高,单武斌,一种多方式多材料光固化3D打印设备,2020.04.03,中国,0.1 (发明专利,申请)









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