
工作及研究经历
上海理工大学,能源与动力工程学院 2021.10-至今
大连理工大学,能源与动力学院 2015.09-2021.10
美国宾夕法尼亚州立大学 (合作教授:王朝阳 教授) 2010.08-2015.07
教育经历
博士学位 上海交通大学 工程热物理专业 (导师:郑平 教授) 2006.09-2010.06
硕士学位 西安交通大学 动力工程及工程热物理专业 (导师: 袁秀玲 教授) 2003.09-2006.05
学士学位 西安交通大学 能源与动力工程及计算机科学与技术专业 (双学士学位) 1999.09-2003.07
● 2023.04-2026.3 质子交换膜燃料电池低Pt阴极催化层孔隙尺度传输机理研究,上海市自然科学基金面上项目,主持。
● 2017.01-2019.12 盐溶液闪蒸过程两相流动与传热传质机理研究,国家自然科学基金青年科学基金项目,主持。
● 2022.11-2023.12 500kW熔融碳酸盐燃料电池+余热利用发电系统设计,企业横向项目,主持。
● 2018.12-2019.8 极板流道分析, 企业横向项目,主持。
● 2018.1-2018.7 金属双极板设计(B01)分析,企业横向项目,主持。
● 2016.01-2017.12 全钒液流电池性能衰减的基础研究,主持。
● 2016.05-2017.03 多种能源与海水淡化系统互补特性研究,企业横向项目,主持。
● 2013.07- 2014.11 Development of Low-Pt Loading Model and Degradation Model in PEM Fuel Cells and Investigation of the Macro-scale Transport Processes for Improved Fuel Cell Performance, Honda Motor Corporation, Co-principal investigator。
● 2013.04-2015.07 Development of a Robust PEM Fuel Cell Model for Fuel Cell Engine Design in Next Generation Fuel Cell Vehicle and Study of the Cold-start Process of a Fuel Cell in Sub-zero Environment, Toyota Motor Corporation, Co-principal investigator。
● 2012.04-2014.03 Fuel Cell Model and Channel Two-Phase Flow in PEM Fuel Cells, Nissan Motor Corporation, Co-principal investigator。
● 2010.07-2012.06 Development and Validation of a Two-phase and 3D Model for PEMFC,U.S. DOE EERE Fuel Cell Technologies, Penn State University, Co-principal investigator。
● 2019.05-2020.05 冷却塔组热回流特性分析技术开发,企业横向项目,主要参与。
● 2018.11-2020.12 高性能循环水冷却塔技术开发,企业横向项目,主要参与。
● 2018.05-2018.09 循环水冷却塔高性能喷嘴开发,企业横向项目,主要参与。
● 2017.09-2017.10 广州大学城冷却塔组热回流特性分析,企业横向项目,主要参与。
● 2017.05-2017.08 循环水冷却塔外部降噪设备应用技术开发,企业横向项目,主要参与。
● 2006.09-2010.06 微/纳尺度下流体流动与传热传质研究,国家自然科学基金重点项目,参与。
● S Dou, L Hao*, H Liu,“Effects of Agglomerate Structure and Operating Humidity on the Catalyst Layer Performance of PEM Fuel Cells”, Applied Energy, 355 (2024) 122211
● B Yin, L Hao*, X Li, Q Yang, “Efficient Charge Transfer at the Donor-Bridge-Acceptor Interface for excellent Supercapacitors”, Chemical Engineering Journal, 476(2023) 146569
● B Yin, L Hao*, X Li, Q Yang, “CoCx‑induced interfacial octahedral Co2+ sites of NiCo-LDH electrode with improved faradic reactivity toward high-performance supercapacitor”, J. Colloid and Interface Science 651(2023) 602-611
● S Dou, L Hao*, H Liu, “Effects of carbon aggregates and ionomer distribution on the performance of PEM fuel cell catalyst layer: A pore-scale study”, Renewable Energy 217(2023), 119254
● B Yin, L Hao*, X Li, “Revealing Interstitial Diffusion and Vacancy Diffusion Kinetics of Battery-like Electrodes for High-Performance Pseudocapacitors”, ACS Applied Energy Materials 6 (2023), 8288-8296
● Yusong He, Minli Bai, Liang Hao*, “Pore-Scale Simulation of Effective Transport Coefficients in the Catalyst Layer of Proton Exchange Membrane Fuel Cells”, J. Electrochemical Society 170 (2023), 044501.
● Q Wang, F Tang, X Li, JP Zheng, L Hao, G Cui, P Ming*, Revealing the dynamic temperature of the cathode catalyst layer inside proton exchange membrane fuel cell by experimental measurements and numerical analysis, Chemical Engineering Journal (2023), 142286
● Huan Chen, Yongpeng Zhao, Huitong Zhao, Hui Huang, Ningxuan Wen, Chen Wang, Zeng Fan, Liang Hao*, Lujun Pan, Hybrid films constructed by carbon nanotubes and carbon nanocoils as current collectors for lithium-ion batteries, Journal of Electroanalytical Chemistry(2023) 117288
● Linfeng Zang, Liang Hao* Xiaojing Zhu, "Effect of the pore structure of cathode catalyst layer on the PEM fuel cell cold start process", Energy, 271(2023) 126993
● Yuanhui Wang, Liang Hao*, Minli Bai, "Modeling the influence of water on the performance of non-aqueous Li-O2 batteries", Applied Energy, 330 (2023) 120356.
● Shaojun Dou, Liang Hao*, Hong Liu, “Effects of liquid water on the pore structure and transport coefficients in the cathode catalyst layer of PEM fuel cells”, International Journal of Hydrogen Energy, 47(2022) 41138-41153
● Shaojun Dou, Liang Hao*, Hong Liu, “A mesoscopic model for simulating the physisorption process in nanopores”, Chemical Engineering Science, 262(2022) 117988
● Baoyi Yin, Liang Hao*, Tao Wei*, Chen Wang*, Bao Zhu, Xiaogan Li, Qiguo Yang, “Revealing bulk reaction kinetics of battery-like electrode for pseudocapacitor with ultra-high rate performance”, Chemical Engineering Journal, 450(2022) 138224
● Yuanhui Wang, Liang Hao*, “Effects of cathode structure on the discharge performance of non-aqueous Li-O2 batteries”, Electrochimica Acta 425 (2022) 140703
● Yiheng Pang, Liang Hao⁎, Yun Wang⁎, “Convolutional neural network analysis of radiography images for rapid water quantification in PEM fuel cell”, Applied Energy, 321(2022)119352
● Huitong Zhao, Huan Chen, Xiaowei Ning, Chengwei Li, Chen Wang, Zeng Fan, Liang Hao*, Lujun Pan*, “Three-dimensional porous framework constructed by hybrid of carbon nanotubes and carbon nanocoils for stable lithium metal anode”, Journal of Materials Research 37 (2022), 2073–2081
● Yuanhui Wang, Liang Hao*, Minli Bai, “Modeling the multi-step discharge and charge reaction mechanisms of non-aqueous Li-O2 batteries”, Applied Energy, 317 (2022)119189.
● Baoyi Yin, Liang Hao*, Tao Wei*, Chen Wang*, Bao Zhu, Xiaogan Li, Qiguo Yang, “Defect engineering on sea-urchin-like transition-metal oxides for high-performance supercapacitors”, J Power Sources, 533(2022) 231409.
● Yuanhui Wang, Meng Li, Liang Hao*, “Three-dimensional modeling study of all-vanadium redox flow batteries with the serpentine and interdigitated flow fields”, J. Electroanalytical Chemistry, 918(2022) 116460.
● Yuanhui Wang, Liang Hao*, “Modeling discharge performance of Li-O2 batteries with different electrolyte compositions”, J. Electroanalytical Chemistry, 901(2021) 115745.
● Yuanhui Wang, Liang Hao*, and Minlin Bai, “Effect of CO2-induced side reactions on the deposition in the non-aqueous Li-air batteries”, J Solid State Electrochem 25 (2021) 2571-2585.
● Yuanhui Wang, Liang Hao*, and Minlin Bai, “Modeling Studies of the Discharge Performance of Li-O2 Batteries with Different Cathode Open Structures”, J. Electrochem. Soc.,168(2021) 070517.
● Shaojun Dou, Liang Hao*, Hong Liu, “Numerical study of bubble behaviors and heat transfer in pool boiling of water/NaCl solutions using the lattice Boltzmann method”, International Journal of Thermal Sciences, 170(2021) 10715.
● Yuanhui Wang, Liang Hao*, and Minlin Bai, “A Modeling Study of the Cycling Behavior of Non-Aqueous Li-O2/CO2 Batteries”, J. Electrochem. Soc.,168(2021) 020524
● Shaojun Dou, Liang Hao*, “Numerical Study of Droplet Evaporations on Heated Flat and Micro-pillared Hydrophobic Surfaces by Using the Lattice Boltzmann Method”, Chemical Engineering Science, 229(2021)116032
● Lingfeng Zang, Liang Hao*, “Numerical Study of the Cold-Start Process of PEM Fuel Cells with Different Current Density Operating Modes”, Journal of Energy Engineering, 146(2020) 04020057.
● Shaojun Dou, Liang Hao*, “Investigation of Wetting States and Wetting Transition of Droplets on the Micro-structured Surface using the Lattice Boltzmann Model”, Numerical Heat Transfer, Part A: Applications, 78(2020) 321-337.
● Liang Hao*, “Analysis of Bubble Growth and Motion Dynamics in Superheated Liquid during Flash Evaporation”, International Journal of Heat and Mass Transfer, 151(2020) 119356.
● Liang Hao*, “A Mathematical Study of Bubble Dynamics in Superheated Sodium Chloride Solution”, International Journal of Heat and Mass Transfer, 145(2019) 118728.
● Liang Hao*, Yuanhui Wang, Yusong He, “Modeling of Ion Crossover in an All-Vanadium Redox Flow Battery with the Interfacial Effect at Membrane/Electrode Interfaces”, J. Electrochem. Soc., 166(2019) A1310-A1322.
● Yuanhui Wang and Liang Hao*, “Effect of Membrane Properties on Ion Crossover in Vanadium Redox Flow Batteries”, J. Electrochem. Soc. 166(2019): A3784-A3795.
● Cheng-Zhou Hang, Chen Wang*, Bin Gao, Huan Chen, Liang Hao*, Hong-Liang Lu. Sub-nanosecond pulse programming and device design strategy for analog resistive switching in HfOx-based resistive random access memory, Applied Physics Letters,114(2019),112102-1-5.
● Rui Sun, Huan Chen, Guanran Wang, Chen Wang*, Liang Hao, Reduction of thermal disturbances in 3D 1S1R RRAM crossbar arrays for neuromorphic computing, SEMICONDUCTOR SCIENCE & TECHNOLOGY,34(2019)115023.
● Liang Hao, Koji Moriyama, Wenbin Gu, Chaoyang Wang*, “Three Dimensional Computations and Experimental Comparisons for a Large-Scale Proton Exchange Membrane Fuel Cell”, J. Electrochemical Society, 163 (2016) F744-F751.
● Liang Hao, Koji Moriyama, Wenbin Gu, Chaoyang Wang*, “Modeling and Experimental Validation of Pt Loading and Electrode Composition Effects in PEM Fuel Cells”, J. Electrochemical Society, 162 (2015) F854-F867.
● Liang Hao, Ping Cheng*, “Capillary Pressures in Carbon Paper Gas Diffusion Layers Having Hydrophilic and Hydrophobic Pores”, Int. J. Heat and Mass Transfer 55 (2012) 133-139.
● Liang Hao, Ping Cheng*, “Lattice Boltzmann Simulations of Water Transport in Gas Diffusion Layer of a Polymer Electrolyte Membrane Fuel Cell”, J. Power Sources 195 (2010) 3870-3881.
● Liang Hao, Ping Cheng*, “Pore-Scale Simulations on Relative Permeability of Porous Media by Lattice Boltzmann method”, Int. J. Heat and Mass Transfer 53 (2010) 1908-1913.
● Liang Hao, Ping Cheng*, “An Analytical Model for Micro-droplet Steady Movement on the Hydrophobic Wall of a Micro-channel”, Int. J. Heat and Mass Transfer 53 (2010) 1243-1246.
● Liang Hao, Ping Cheng*, “Lattice Boltzmann Simulations of Liquid Droplet Dynamic Behavior on a Hydrophobic Surface of a Gas Flow Channel”, J. Power Source 190 (2009) 435-446.
● Liang Hao, Ping Cheng*, “Lattice Boltzmann Simulations of Anisotropic Permeabilities in Carbon Paper Gas Diffusion Layers”, J. Power Sources 186 (2009) 104-114.
● Guodong Wang, Liang Hao, Ping Cheng*, “A Four-Zone Model for Saturated Flow Boiling in a Microchannel of Rectangular Cross-Section”, Int. J. Heat and Mass Transfer 53 (2010) 3439-3448.
● Guodong Wang, Liang Hao, P. Cheng*, “An Experimental and Numerical Study of Forced Convection in a Microchannel with Negligible Axial Heat Conduction”, Int. J. Heat and Mass Transfer 52(2009) 1070-1074.
● Brian Carnes, Dusan Spernjak, Gang Luo, Liang Hao, Ken S. Chen, Chao-Yang Wang*, Rangachary Mukundan, Rodney L. Borup, “Validation of a Two-phase Multidimensional Polymer Electrolyte Membrane Fuel Cell Computational Model using Current Distribution Measurements”, J. Power Sources 236 (2013) 126-137.
● 豆少军, 郝亮, 刘红. 液态水对PEM 燃料电池催化层内气体扩散的影响研究. 工程热物理学报.
● 刘斌,郝亮*,静态闪蒸过程汽泡生长的理论与实验研究,热科学与技术,5(2021)438-445.
● 何玉松,郝亮*,“质子交换膜燃料电池微扩散层孔隙结构与渗透率的孔隙尺度模拟”,上海交通大学学报. 2020, 54(10)1053-1064.
● 王刚,郝亮*,张冠锋,沈胜强, “基于风能利用的机械蒸汽压缩海水淡化系统模拟”, 热科学与技术,16(2017) 40-46.
● 孙峰,王刚,郝亮,张冠锋,沈胜强*,机械蒸汽压缩机模型及其与风力发电机耦合模拟研究,热科学与技术,16(2017) 418-423.
● Linfeng Zang, Liang Hao*,The effects of current density modes on the cold start process of PEM fuel cells,The First International Conference on PEM Fuel Cell Science and Technology,November 15-18, 2019 Xi'an, China.
● Liang Hao*, Yuanhui Wang, The Modeling Study of Ion Crossover in a Vanadium Redox Flow Battery, The International Conference on Thermal Science and Technology (ICTST) 2017, November 2017, 17-19th, Kuta, Bali, Indonesia.
● Liang Hao*, Shengqiang Shen, A Modeling Study of Using Fluctuant Renewable Wind Energy for Seawater Desalination, IDA World Congress 2017, Oct.15-19, 2017, São Paulo, Brazil.
● Liang Hao, Chaoyang Wang*, “A New Water Saturation Jump Model at GDL/MPL/CL Interfaces of a PEM Fuel Cell”, 225th ECS Meeting, May 11, 2014, Orlando, FL, USA.
● Liang Hao, Chaoyang Wang*, Gang Luo, “Fully Two-Phase Modeling for PEM Fuel Cells”, ASME 2011 9th International Conference on Fuel Cell Science, August 10, 2011, Washington D.C., USA
● Ken S. Chen, Brian Carnes, Liang Hao, Gang Luo, Yan Ji, Chao-Yang Wang*, “A Three-dimensional Two-phase Model for Simulating PEM Fuel Cell Performance”, ASME 2011 9th International Conference on Fuel Cell Science, August 10, 2011, Washington D.C., USA
● Brian Carnes, Ken S. Chen, Liang Hao, Gang Luo, Yan Ji, Chao-Yang Wang*, Dusan Spernjak, “Validation and Uncertainty Quantification of a Two-Phase, Multidimensional PEMFC Computer Model Using High Resolution Segmented Current Collector Data”, ASME 2011 9th International Conference on Fuel Cell Science, August 10, 2011, Washington D.C., USA
● Ken S. Chen, Brian Carnes, Liang Hao, Yan Ji, Gang Luo, Chao-Yang Wang*, Yun Wang, “Toward the Development and Validation of a Comprehensive PEM Fuel Cell Model”, ASME 2011 9th International Conference on Fuel Cell Science, August 10, 2011, Washington D.C., USA
● Liang Hao, Ping Cheng*, “Mesoscale Simulations of Single & Two-Phase Transport in PEM Fuel Cells by Lattice Boltzmann Method”, keynote paper of Proceedings of 6th International Conference on Computational Heat and Mass Transfer (ICCHMT), May 18-21, 2009, Guangzhou, China.
● 豆少军, 郝亮, 刘红, PEMFC 催化层气体、液态水和电荷传输的孔隙尺度研究, 工程热物理学会多相流学术会议, 2023, 上海,18-001.
● 臧琳峰, 郝亮,朱晓静, 基于格子Boltzmann方法的气体扩散层结构对冰融化过程的影响研究, 工程热物理学会多相流学术会议,2023, 上海.
● 豆少军, 郝亮, 刘红. PEM 燃料电池催化层团聚体局部传质过程的孔尺度研究, 工程热物理学会传热传质学术会议,2023, 成都, 233237.
● 豆少军,郝亮*,液态水对PEM燃料电池催化层内气体扩散的影响研究,中国工程热物理学会传热传质学术会议,杭州,2022,223312
● 周操,郝亮*,质子交换膜燃料电池阴极催化层衰减模型研究,中国工程热物理学会传热传质学术会议,上海,2021,213361
● 黄义雄,郝亮*,锂金属负极结构对锂沉积过程的影响。 高等学校工程热物理第二十七届全国学术会议,主办单位:湘潭,2021,A-2021055
● 臧琳峰,郝亮*,朱晓静,“质子交换膜燃料电池堆冷启动过程歧管配流分析”,中国工程热物理学会多相流学术会议,江苏苏州,2021,216374
● 王园辉,郝亮*,白敏丽,阴极厚度对高性能锂空气电池的影响,中国工程热物理学会,广东广州,2020,203074.
● 豆少军,郝亮*,NaCl溶液池沸腾换热性能的模拟研究,中国工程热物理学会,广东广州,2020,203491.
● 李盟, 郝亮*, 流场结构对全钒液流电池性能影响的研究, 中国工程热物理学会2019年传热传质学术会议.
2019年博士研究生招生计划、选拔方式介绍
2019年我校拟招收全日制(含非定向就业、定向就业)博士研究生140余名(含普通招考、硕博连读、申请-考核制),实际招生人数以国家下达的招生计划为准。
选拔方式包括普通招考、硕博连读、申请-考核制。
(一)申请-考核制
1、申请条件
(1)拥护中国共产党的领导,具有正确的政治方向,热爱祖国,品德良好,遵纪守法,愿意为社会主义现代化建设服务,具有较强创新精神和科研能力的应届硕士毕业生。
(2)在校期间学习成绩优秀,对科学研究具有浓厚兴趣,并具有突出的科研能力,有较强的创新意识、创新能力和专业能力倾向,已经以第一作者公开发表或录用 1 篇校定A类(A类论文以上海理工大学科技处认定为准)及以上与申请专业相关的学术论文,或相应的科研成果。
(3)国家大学英语六级考试合格(或六级考试成绩425分及以上)。
(4)有两位相关专业高级职称专家的书面推荐信。
(5)身心健康,年龄一般不超过35周岁。
(6)对个别不符合上述条件,但具有突出创新能力和特殊学术专长的考生,可适当放宽条件,允许其向申请专业所在学院提出破格申请。
(二)硕博连读
1、申请条件
(1)拥护中国共产党的领导,具有正确的政治方向,热爱祖国,品德良好,遵纪守法,愿意为社会主义现代化建设服务,具有较强创新精神和科研能力的本校在读全日制硕士研究生(不含定向就业硕士生)。
(2)完成专业培养方案中规定的硕士阶段所有课程的学习,成绩优良,学位课考试成绩低于75分的课程一般不超过3门。对科学研究有浓厚兴趣,具有严谨的科学研究态度、较强的综合分析能力、创新和独立科学研究能力,并且具有合作精神。
(3)国家大学英语六级考试合格(或六级考试成绩425分及以上)。
(4)有两位相关专业高级职称专家的书面推荐信。
(5)身心健康,年龄一般不超过35周岁。
(6)对不满足上述条件,但在科研创新方面具有突出表现的学生,可适当放宽条件,允许其向申请专业所在学院提出破格申请。
(三)普通招考
1、报考条件
(1)拥护中国共产党的领导,具有正确的政治方向,热爱祖国,愿意为社会主义现代化建设服务,遵纪守法,品行端正。
(2)硕士研究生毕业或已获硕士学位的人员;应届硕士毕业生(最迟须在入学前毕业或取得硕士学位)。
(3)获得学士学位6年以上(含6年,从获得学士学位之日算起到博士生入学之日)并达到与硕士毕业生同等学力的人员。此类考生还须具备下列条件:
①以第一作者发表2篇以上与本学科领域相关的A类或B类学术论文(A、B类论文分类按上理工相关文件执行);
②获得国家英语六级证书(国家英语六级新考试体制下CET6成绩≥425分)或近三年内以第一作者在外文期刊上发表过1篇以上本学科领域的学术论文;
③已修满所报考专业硕士研究生培养方案中规定的全部学位课程且成绩合格。
(4)身体和心理健康状况符合规定。
(5)有至少两名所报考学科专业领域内的教授(或相当专业技术职称的专家)的书面推荐意见。
(6)现役军人报考博士生,按解放军总政治部有关规定办理。
学校介绍
上海理工大学以工学为主,工学、理学、经济学、管理学、文学、法学、艺术学等多学科协调发展,是一所上海市属重点建设的应用研究型大学。2016年7月,学校成为国家国防科技工业局与上海市人民政府共建的国防特色高校。2018年,学校成为上海市“高水平地方高校”建设试点单位。
学校办学文脉源于1906年创办的沪江大学和1907年创办的德文医工学堂。学校包融了沪江大学的美丽校园及其教育国际化的思想、视野、格局,也包融了沪江商科的发展思维;学校传承了德文医工学堂以来的百年工程教育传统,孕育了一大批爱国青年和志士仁人,滋养了一大批学术精英、工程专家和社会翘楚,为国家和社会培养了十余万优秀专业人才,享有中国“制造业黄埔军校”的美誉。学校传承发展“信义勤爱、思学志远”校训,以校训涵养社会主义核心价值观,培养具有学识抱负的合格公民。
学校现有全日制在校生24000余人,其中本科生17000余人,研究生7500余人;设有15个学院、2个教学部,有56个本科专业,8个一级学科博士学位授权点,4个博士后科研工作流动站,27个一级学科硕士学位授权点,11个硕士专业学位类别。在学科建设方面,工程学科稳居ESI全球前1%行列;拥有1个上海市Ш类高峰学科,4个上海市I类高原学科,1个学科参与上海市IV类高峰学科建设。
在国家建设“一流大学和一流学科”、上海市建设地方高水平大学的重要战略机遇期,上海理工大学正以未来光学、智能制造、医疗器械与康复工程3大国际实验室和系统管理1个特色平台为载体,建设光学工程、系统科学、动力工程及工程热物理、机械工程、生物医学工程5大一流学科。学校将抢抓机遇,改革创新,加快高水平大学建设,促进内涵发展,力争把学校建设成为特色显著的一流理工科大学。
奖助政策
博士研究生奖助主要由基础性奖助金和激励性奖助金两大部分构成,其中基础性奖助金6.36-6.6万元/年和激励性奖助金6.6万元/年。