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许雄文

姓名 许雄文
性别
学校 华南理工大学
部门 华南理工大学电力学院
学位 副研究员
学历 副研究员
职称 副研究员
联系方式 华南理工大学30号楼526
邮箱 epxwxu@scut.edu.cn
   
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更新日期:2023年5月22日 姓 名 许雄文 性 别 男 出生年月 1982年1月 籍贯 福建莆田市 民 族 汉族 政治面貌 中国共产党党员 最后学历 博士研究生 最后学位 工学博士 技术职称 副研究员 导师类别 博导 行政职务 Email epxwxu@scut.edu.cn 工作单位 华南理工大学电力学院 邮政编码 510640 通讯地址 华南理工大学30号楼526 单位电话 020-87110213 个人简介 主要研究钙钛矿太阳能电池界面制备,热电界面调控与高效传热。发表科研论文50多篇,其中30多篇被SCI检索;获授权发明专利10余项。主持国家自然科学基金项目2项,博士后基金以及省部级科技项目多项。国家自然科学基金、广东省自然科学基金评审专家库成员。《Applied Energy》《Energy》《International Heat and Mass Transfer》等期刊评审专家。 工作经历  2014.11-至今     华南理工大学电力学院,教学科研。专业方向:界面与传热。教学主讲课程:《传热学》《流体力学》 2012.9-2014.11     华南理工大学电力学院,博士后。专业方向:工程热物理。 2007.7-2009.8   广东省计量科学研究院质量办公室,质量管理员。 教育经历  2009.9-2012.6   华南理工大学电力学院,电站系统及其控制专业博士研究生。 2004.9-2007.6   华南理工大学电力学院,工程热物理专业硕士研究生。 2000.9-2004.6   华南理工大学电力学院,热能动力工程专业,获工学学士学位; 研究领域 钙钛矿太阳能电池界面制备,热电界面调控与传热,高效制冷技术 科研项目  固体表面流动液膜受热蒸发的润湿行为与传热强化 (国家自然科学基金面上项目(51976063))<2020.01-2023.12> 固体表面液膜受热蒸发的润湿与传热行为(广东省自然科学基金(2019A1515011253))<2019.10- 2022.09>混合工质溶液池沸腾气泡成核及换热机理研究(国家自然科学青年基金(5151700))<2015.11- 2018.12> 浓度涨落效应下的混合溶液池沸腾成核机理及传热特性研究(广东省自然科学基金(2017A030313305))<2017.05- 2020.05> 基于降膜冷凝技术的房间空调冷凝器传热性能研究(空调设备及系统运行节能国家重点实验室)<2016.07-2017.07> 单级混合工质直冷式制冷流程性能诊断与控制机理研究(第55批博士后基金支持项目(2014M552195)) 混合工质溶液池沸腾成核换热机理研究(华南理工大学校级项目(2015ZM028)) <2015.01-2016.12> 丙烯在高效换热管外的冷凝换热特性研究(维联传热技术(上海)有限公司) <2015.6-2016.6> 超低温医用冷柜开发及产业化(海信容声(广东)冷柜有限公司) <2015.5-2018.6> -150℃超低温冷柜开发及产业化(海信容声(广东)冷柜有限公司) <2016.7-2018.7> 发表论文 [1] X. Xu, Y. Liu, Y. Zhu, and J. Liu, Liquid-Film Formation in a Hole under the Effect of Gravity. Industrial & Engineering Chemistry Research, 2022. 61(6): 2600-2614.[2] J. Wei, J. Liu, X. Xu, and X. Lu, Experimental and theoretical analysis of water spreading on horizontal grooved surfaces. Chemical Engineering Science, 2022. 249: 117304.[3] J. Wei, J. Liu, and X. Xu, Theoretical and Experimental Investigation of the Minimum Wetting Rate of a Falling Water Film on the Vertical Grooved Plate. Industrial & Engineering Chemistry Research, 2022. 61(1): 845-854.[4] J. Lu, Z. Liu, X. Xu, and J. Liu, Experimental study of the falling film evaporative cooling on horizontal tubes plates. International Journal of Refrigeration, 2022. 138: 108-117.[5] Y. Liu, X. Xu, and J. Liu, Forces and Charge Analysis of a Water Droplet Dragged by an Electric Field. Physics of Fluids, 2022. 34(11): 112102.[6] 蔡文豪 and 许雄文, 壁面电荷对铜表面冰粘附的影响研究. 化工学报, 2022. 73(12): 5517-5525.[7] Y. Liu, X. Xu, and J. Liu, Forces and charge analysis of a water droplet dragged by an electric field. Physics of Fluids, 2022. 34: 112102.[8] 朱业铭, 刘金平, 许雄文, and 朱丹丹, 竖直多孔平板上液膜流动特性的研究. 化工学报, 2021. 72(08): 4081-4092.[9] 朱丹丹, 许雄文, 刘金平, and 卢炯, 混合润湿性图案化铜基表面冷凝换热性能研究. 化工学报, 2021. 72(05): 2528-2546.[10] L. Zhang, J. Liu, and X. Xu, Numerical simulation of heat transfer performance of R410A in condensing-superheated zone. International Journal of Refrigeration, 2021. 128: 206-217.[11] Y. Yu, X. Xu, J. Liu, Y. Liu, W. Cai, and J. Chen, The study of water wettability on solid surfaces by molecular dynamics simulation. Surface Science, 2021. 714: 121916.[12] J. Wei, X. Xu, J. Zhang, and J. Liu, Measurement of Liquid Film Coverage on Vertical Plates with Hydrophilic and Structured Surface Treatments. Industrial & Engineering Chemistry Research, 2021. 60(9): 3736-3744.[13] J. Liu, J. Liu, L. Zhang, and X. Xu, Theoretical analysis of annular film flow evaporation inside microfin tube. International Journal of Heat and Mass Transfer, 2021. 165: 120611.[14] X. Lu, J. Liu, X. Xu, and J. Chen, Change in wetting characteristic of heated refrigerant in falling film evaporation. International Journal of Refrigeration, 2020. 117: 198-208.[15] G. Li, J. Liu, X. Xu, X. Lu, and J. Chen, Contact angle measurements in the refrigerant falling film evaporation process. International Journal of Refrigeration, 2020. 112: 262-269.[16] J. Wei, J. Liu, X. Xu, J. Ruan, and G. Li, Experimental and computational investigation of the thermal performance of a vertical tube evaporative condenser. Applied Thermal Engineering, 2019. 160: 114100.[17] Liu J., Liu J., Xu X. Diabatic visualization study of R245fa two phase flow pattern characteristics in horizontal smooth and microfin tube[J]. International Journal of Heat and Mass Transfer, 2020, 152: 119513.[18] Li G., Liu J., Xu X., et al. Contact angle measurements in the refrigerant falling film evaporation process[J]. International Journal of Refrigeration, 2020, 112: 262-269.[19] Wei J., Liu J., Xu X., et al. Experimental and computational investigation of the thermal performance of a vertical tube evaporative condenser[J]. Applied Thermal Engineering, 2019, 160: 114100.[20] Ruan J., Liu J., Xu X., et al. Experimental study of an R290 split-type air conditioner using a falling film condenser[J]. Applied Thermal Engineering, 2018, 140: 325-333.[21] Liu J., Liu J., Li R., et al. Experimental study on flow boiling characteristics in a high aspect ratio vertical rectangular mini-channel under low heat and mass flux[J]. Experimental Thermal and Fluid Science, 2018, 98: 146-157.[22] Li R., Liu J., Xu X. Development and validation of a direct passage arrangement method for multistream plate fin heat exchangers[J]. Applied Thermal Engineering, 2018, 130: 1266-1278.[23] Li R., Liu J., Liu J., et al. Measured and predicted upward flow boiling heat transfer coefficients for hydrocarbon mixtures inside a cryogenic plate fin heat exchanger[J]. International Journal of Heat and Mass Transfer, 2018, 123: 75-88.[24] He J., Liu J., Xu X. Experimental investigation of single bubble growth in the boiling of the superheated liquid mixed refrigerants[J]. International Journal of Heat and Mass Transfer, 2018, 127: 553-565.[25] He J., Liu J., Xu X. Analysis and experimental study of the heterogeneous nucleation process in the boiling of mixed refrigerants[J]. International Journal of Heat and Mass Transfer, 2017, 115: 1149-1160.[26] He J., Liu J., Xu X. Analysis and experimental study of nucleation site densities in the boiling of mixed refrigerants[J]. International Journal of Heat and Mass Transfer, 2017, 105: 452-463.[27] Pang W., Liu J., Xu X. A strategy to optimize the charge amount of the mixed refrigerant for the Joule–Thomson cooler[J]. International Journal of Refrigeration, 2016, 69: 466-479.[28] Pang W., Liu J., He J., et al. Thermal performance of brazed plate heat exchangers for a mixed-refrigerant Joule–Thomson cooler[J]. International Journal of Refrigeration, 2016, 61: 37-54.[29] Lu X., Liu J., Xu X. Contact angle measurements of pure refrigerants[J]. International Journal of Heat and Mass Transfer, 2016, 102: 877-883.[30] Cao L., Liu J., Xu X. Robustness analysis of the mixed refrigerant composition employed in the single mixed refrigerant (SMR) liquefied natural gas (LNG) process[J]. Applied Thermal Engineering, 2016, 93: 1155-1163.[31] Cao L., Liu J., Li R., et al. Experimental study on the mixed refrigerant heat transfer performance in a plate-fin heat exchanger during a single-stage cryogenic cycle[J]. Applied Thermal Engineering, 2016, 93: 1074-1090.[32] 张发勇, 刘金平, 许雄文. 制冷工况下降膜冷凝器的制冷剂积存特性与传热性能[J]. 化工学报, 2015, 66(12): 5012-5021.[33] 许雄文, 刘金平, 吴秋丽. 工艺条件下(1+n)多股流一维传热组织原则优化[J]. 华南理工大学学报(自然科学版), 2015(08): 9-14+48.[34] Xu X., Liu J., Cao L. Mixed refrigerant composition shift due to throttle valves opening in auto cascade refrigeration system[J]. Chinese Journal of Chemical Engineering, 2015, 23(1): 199-204.[35] Xu X., Liu J., Cao L., et al. Automatically varying the composition of a mixed refrigerant solution for single mixed refrigerant LNG (liquefied natural gas) process at changing working conditions[J]. Energy, 2014, 64: 931-941.[36] Xu X., Liu J., Cao L. Optimization and analysis of mixed refrigerant composition for the PRICO natural gas liquefaction process[J]. Cryogenics, 2014, 59: 60-69.[37] Xu X., Liu J., Jiang C., et al. The correlation between mixed refrigerant composition and ambient conditions in the PRICO LNG process[J]. Applied Energy, 2013, 102: 1127-1136.[38] Xu X., Liu J., Cao L., et al. Local composition shift of mixed working fluid in gas–liquid flow with phase transition[J]. Applied Thermal Engineering, 2012, 39: 179-187.[39] 许雄文, 刘金平, 曹乐, et al. 非共沸混合工质在制冷循环中浓度偏移分析[J]. 化工学报, 2011(11): 3066-3072. 科研创新 发明专利:许雄文, 李日新, 刘金平. 一种混合工质节流制冷机工况浓度控制系统及其方法. 专利号: ZL201410167863.8, 授权日期:2016.5.4许雄文, 刘金平, 李日新. 单级混合冷剂天然气液化流程冷剂浓度控制系统. 专利号: ZL201410054854.8, 授权日期:2015.12.09许雄文, 刘金平, 张发勇. 一种无制冷剂过热段的制冷冷凝器及其制冷方法[P]. 专利号:  ZL201510468993X, 授权日期: 2017.8.25. 教学活动 《传热学》、《流体力学》 指导学生情况 2018年指导研究生张嘉获得大学生制冷大赛华南赛区研究生组第一名。

许雄文