丁紅兵(天津大學副教授)

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丁紅兵,男,天津大學電氣與自動化工程學院控制科學與工程專業畢業,博士學位,副教授,天津大學電氣自動化與信息工程學院博士生導師。

基本介紹

  • 中文名:丁紅兵
  • 畢業院校:天津大學
  • 學位/學歷:博士 
人物經歷,研究方向,主要成就,獲獎記錄,社會任職,

人物經歷

(1) 2018.07-,天津大學 電氣自動化與信息工程學院 副教授,博士生導師
(2) 2017.07-2018.07,The University of Sheffield,訪問學者(國家公派)
(3) 2015.02-2018.06,天津大學 電氣自動化與信息工程學院 講師,碩士生導師
(4) 2011.09-2015.01,天津大學 電氣與自動化工程學院 控制科學與工程 博士
(5) 2009.09-2011.07,天津大學 電氣與自動化工程學院 控制科學與工程 碩士
(6) 2005.09-2009.07,天津大學 電氣與自動化工程學院 自動化專業 本科

研究方向

主要研究方向:
(1) 多相流測量與數值模擬
電學、聲學與光學感測技術,高速攝影及圖像處理技術,多相流CFD仿真技術
(2) 超音速分離與計量技術
顆粒與液滴光學測量方法,超音速流動傳熱可視化與分析,碳捕集利用與封存技術(CCUS)
(3) AI智慧型環控大數據分析
環境AI技術,利用大數據、機器學習、計算機視覺等技術開發智慧化環控核心算法

主要成就

主要科研項目:
主持項目:
(1) 國家自然科學基金面上項目“超音速分離器凝結兩相三場耦合機理及其液滴尺寸調控” (2023-2026)
(2) 國家自然科學基金面上項目“基於凝結旋流運動映射的超音速分離器多維性能最佳化研究”(2019-2022)
(3) 國家自然科學基金青年項目“基於邊界層流動特性的音速噴嘴測量機理研究”(2016-2018)
(4) 國家自然科學基金合作項目“融合超聲和電容感測器的動態CCUS管道輸送CO2質量流量線上測量”(2021-2024)
(5) 天津市自然科學基金項目“音速噴嘴轉捩過程中的流量特性研究”(2016-2019)
(6) 2020.08-2020.12橫向項目:真空環境泄露的流場與聲場聯合分析
(7) 2021.06-2024.05橫向項目:環境品質CFD建模與智慧型監控
(8) 天津大學“北洋學者·青年骨幹教師”人才項目(2017-2018)
(9) 天津市過程檢測與控制重點實驗室開放基金(2016-2017)
參與項目:
(1) 國家自然科學基金面上項目“霧環狀繞流渦街穩定性與測量機理研究”(2019-2022)
(2) 國家自然科學基金重大科研儀器研製項目“基於電/磁雙模層析成像的高固含率氣液固三相流態化實驗裝置”(2017-2021)
(3) 國家自然科學基金面上項目“基於轉移和感應電荷信號分解與融合的氣固兩相流測量機理研究”(2017-2020)
(4) 天津市自然科學基金項目“基於TMR感測器的EMT系統關鍵技術研究”(2019-2022)
(5) 天津市自然科學基金項目“基於電導率法與雷射散射法結合的霧霾流動參數測量系統研究”(2018-2021)
(6) 天津市自然科學基金項目“音速噴嘴凝結作用機理與校正方法研究”(2015-2018)
代表性論著、學術著作:
Peer-reviewed scientific journals (* represents corresponding author)
First/Corresponding Author:
[1] Hongbing Ding, Yu Zhang, Yuanyuan Dong, Chuang Wen, Yan Yang, High-pressure supersonic carbon dioxide (CO2) separation benefiting carbon capture, utilisation and storage (CCUS) technology, Applied Energy, 339: 120975, 2023.
[2] Hongbing Ding, Yu Zhang, Yan Yang, Chuang Wen, A modified Euler-Lagrange-Euler approach for modelling homogeneous and heterogeneous condensing droplets and films in supersonic flows, International Journal of Heat and Mass Transfer, 200: 123537, 2023.
[3] Hongbing Ding, Yuanyuan Dong, Yu Zhang, Yan Yang, Chuang Wen. A potential strategy of carbon dioxide separation using supersonic flows. Separation and Purification Technology, 303: 12215, 2022.
[4] Hongbing Ding, Yu Zhang, Chunqian Sun, Yan Yang, Chuang Wen. Numerical simulation of supersonic condensation flows using Eulerian-Lagrangian and Eulerian wall film models. Energy, 258: 124833, 2022.
[5] Hongbing Ding, Yu Zhang, Chunqian Sun, Esmail Lakzian, Chuang Wen, Chao Wang. Unsteady non-equilibrium condensation flow of 3-D wet steam stage of steam turbine with roughness using sliding mesh method. International Journal of Thermal Sciences, 179, 107674, 2022.
[6] Hongbing Ding, Chunqian Sun, Chuang Wen, Zhenxin Liang. The droplets and film behaviors in supersonic separator by using three-field two-fluid model with heterogenous condensation. International Journal of Heat and Mass Transfer, 184: 122315, 2022.
[7] Hongbing Ding, Yafei Zhao, Chuang Wen, Chao Wang, Xixi Liu. A visual mass transfer study in the ejector considering phase change for multi-effect distillation with thermal vapour compression (MED-TVC) desalination system. Desalination, 532: 115722, 2022.
[8] Hongjun Sun; Tianyu Yang; Hongbing Ding*; Jinxia Li; Wenqiang Zhang. Online measurement of gas and liquid flow rates in wet gas by using vortex flowmeter coupled with conductance ring sensor. IEEE Transactions on Instrumentation and Measurement, 71:7500414, 2022.
[9] Hongbing Ding, Yuhe Tian, Chuang Wen, Chao Wang, Chunqian Sun. Polydispersed droplet spectrum and exergy analysis in wet steam flows using method of moments. Applied Thermal Engineering, 182: 116148, 2021.
[10] Hongbing Ding, Yafei Zhao, Yuhe Tian, Chuang Wen, Chao Wang. Modeling of self-excited oscillation of non-equilibrium condensation in transonic moist air flow. International Journal of Thermal Sciences, 168: 107040, 2021.
[11] Hongbing Ding, Yafei Zhao, Chuang Wen, Chao Wang, Chunqian Sun. Energy efficiency and exergy destruction of supersonic steam ejector based on nonequilibrium condensation model. Applied Thermal Engineering, 189: 116704, 2021.
[12] Hongjun Sun, Yikun Luo, Hongbing Ding*, Jinxia Li, Chenrui Song, Xixi Liu. Experimental investigation on atomization properties of impaction-pin nozzle using imaging method analysis. Experimental Thermal and Fluid Science, 122: 110322, 2021.
[13] Peijuan Cao, Chao Wang, Chunhui Li, Lishui Cui, Hongbing Ding*, Yafei Zhao. The thermal effect on discharge coefficient of sonic nozzle based on reconstructed body temperature distribution by improved SOR method. IEEE Transactions on Instrumentation and Measurement, 70: 1007416, 2021.
[14] Hongbing Ding, Chunqian Sun, Chao Wang, Chuang Wen, Yuhe Tian. Prediction of dehydration performance of supersonic separator based on a multi-fluid model with heterogeneous condensation. Applied Thermal Engineering, 171: 115074, 2020.
[15] Hongbing Ding, Yiming Li, Chao Wang, Chuang Wen, Yuhe Tian. Feature extraction of oscillating flow with vapor condensation of moist air in a sonic nozzle. IEEE Transactions on Instrumentation and Measurement, 69(9):6465-6477, 2020.
[16] Hongbing Ding, Yiming Li, Esmail Lakzian, Chuang Wen, Chao Wang. Entropy generation and exergy destruction in condensing steam flow through turbine blade with surface roughness. Energy Conversion and Management, 196: 1089-1104, 2019.
[17] Chao Wang, Peijuan Cao, Chunhui Li, Hongbing Ding*, Lishui Cui. Influence of wall roughness on boundary layer transition position of the sonic nozzles. Measurement, 139: 196-204, 2019.
[18] Chao Wang, Peijuan Cao, Hongbing Ding*, Xiaotong Wang, Daxuan Lin. Signal analysis of supersonic vapor condensation in nozzle sensor using distributed transient pressure probes. IEEE Transactions on Instrumentation and Measurement, 68(4): 1053-1061, 2019.
[19] Chao Wang, Jinxia Li, Hongbing Ding*, Hongjun Sun, Xiaoliang Li. Vortex flowmeter with enhanced turndown ratio based on high-frequency pressure sensors and improved convection velocity estimation. Flow Measurement and Instrumentation, 69: 101626, 2019.
[20] Hongbing Ding, Peng Xie, Derek Ingham, Lin Ma, Mohamed Pourkashanian. Flow behaviour of drop and jet modes of a laminar falling film on horizontal tubes. International Journal of Heat and Mass Transfer, 124: 929-942, 2018.
[21] Chao Wang, Xiaotong Wang, Hongbing Ding*. Boundary layer of non-equilibrium condensing steam flow in a supersonic nozzle. Applied Thermal Engineering, 129: 389-402, 2018.
[22] Hongbing Ding, Chao Wang, Gang Wang. Thermal effect on mass flow-rate of sonic nozzle. Thermal Science, 22(1): 247-262, 2018.
[23] Hongbing Ding, Chao Wang, Gang Wang. Self-excited oscillation of non-equilibrium condensation in critical flow nozzle. Applied Thermal Engineering, 122: 515-527, 2017.
[24] Hongbing Ding, Chao Wang, Gang Wang. Transient conjugate heat transfer in critical flow nozzles. International Journal of Heat and Mass Transfer, 104: 930-942, 2017.
[25] Hongbing Ding, Chao Wang, Gang Wang. Approximate solution for discharge coefficient of the sonic nozzle with surface roughness. Flow Measurement and Instrumentation, 52: 227-232, 2016.
[26] Chao Wang, Gang Wang, Hongbing Ding*. Thermal effect on body temperature distribution of the critical flow Venturi nozzle. Experimental Thermal and Fluid Science, 79: 187-194, 2016.
[27] Hongbing Ding, Chao Wang, Gang Wang, Chao Chen. Analytic equations for the Wilson point in high-pressure steam flow through a nozzle. International Journal of Heat and Mass Transfer, 91: 961-968, 2015.
[28] Hongbing Ding, Chao Wang, Chao Chen. Experimental and numerical studies on self-excited periodic oscillation of vapor condensation in a sonic nozzle. Experimental Thermal and Fluid Science, 68: 288-299, 2015.
[29] Hongbing Ding, Chao Wang, Yakun Zhao. Surface roughness effect on flow measurement of real gas in a critical nozzle. Measurement, 68: 82-91, 2015.
[30] Hongbing Ding, Chao Wang, Chao Chen. Effect of carrier gas pressure on vapor condensation and mass flow-rate in a sonic nozzle. Journal of Central South University, 22(12): 4864-4871, 2015.
[31] Hongbing Ding, Chao Wang, Yakun Zhao. Flow characteristics of hydrogen gas through a critical nozzle. International Journal of Hydrogen Energy, 39(8): 3947-3955, 2014.
[32] Hongbing Ding, Chao Wang, Yakun Zhao. An analytical method for Wilson point in nozzle flow with homogeneous nucleating. International Journal of Heat and Mass Transfer, 73: 586-594, 2014.
[33] Hongbing Ding, Chao Wang, Chao Chen. Non-equilibrium condensation of water vapor in sonic nozzle. Applied Thermal Engineering, 71(1): 324-334, 2014.
[34] Hongbing Ding, Chao Wang, Yakun Zhao. Influence of divergent section on flow fields and discharge coefficient of ISO toroidal-throat sonic nozzle. Flow Measurement and Instrumentation, 40: 19-27, 2014.
Co-Author:
[1] Peiliang Yan, Weijun Fan, Yan Yang, Hongbing Ding, Adeel Arshad, Chuang Wen. Performance enhancement of phase change materials in triplex-tube latent heat energy storage system using novel fin configurations. Applied Energy, 327, 120064, 2022.
[2] Chuang Wen, Bo Li, Hongbing Ding, Mohammad Akrami, Haoran Zhang, Yan Yang. Thermodynamics analysis of CO2 condensation in supersonic flows for the potential of clean offshore natural gas processing. Applied Energy, 310: 118523, 2022.
[3] Daryoush Dadpour, Esmail Lakzian, Mohammad Gholizadeh, Hongbing Ding, Xu Han. Numerical modeling of droplets injection in the secondary flow of the wet steam ejector in the refrigeration cycle. International Journal of Refrigeration, 136, 103-113, 2022.
[4] Chuang Wen, Hongbing Ding, Yan Yang. Numerical simulation of nanodroplet generation of water vapour in high-pressure supersonic flows for the potential of clean natural gas dehydration. Energy Conversion and Management, 231: 113853, 2021.
[5] Yan Yang, Nikolas Karvounis, Jens Honore Walther, Hongbing Ding, Chuang Wen. Effect of area ratio of the primary nozzle on steam ejector performance considering nonequilibrium condensations. Energy, 237: 121483, 2021.
[6] Chuang Wen, Yan Yang, Hongbing Ding, Chunqian Sun, Yuying Yan. Wet steam flow and condensation loss in turbine blade cascades. Applied Thermal Engineering, 189: 116748, 2021.
[7] Chuang Wen, Liang Gong, Hongbing Ding, Yan Yang. Steam ejector performance considering phase transition for multi-effect distillation with thermal vapour compression (MED-TVC) desalination system. Applied Energy, 279: 115831, 2020.
[8] Chuang Wen, Hongbing Ding, Yan Yang. Optimisation study of a supersonic separator considering nonequilibrium condensation behaviour. Energy Conversion and Management, 222: 113210, 2020.
[9] Chuang Wen, Hongbing Ding, Yan Yang. Performance of steam ejector with nonequilibrium condensation for multi-effect distillation with thermal vapour compression (MED-TVC) seawater desalination system. Desalination, 489: 114531, 2020.
[10] Peng Xie, Hongbing Ding, Derek Ingham, Lin Ma, Mohamed Pourkashanian. Analysis and prediction of the gas-liquid interfacial area for droplets impact on solid surfaces. Applied Thermal Engineering, 115583, 2020.
[11] Chuang Wen, Nikolas Karvounis, Jens Honore Walther, Hongbing Ding, Yan Yang. Non-equilibrium condensation of water vapour in supersonic flows with shock waves. International Journal of Heat and Mass Transfer, 149: 119109, 2020.
[12] Peng Xie, Xuesong Lu, Hongbing Ding, Xin Yang, Derek Ingham, Lin Ma, Mohamed Pourkashanian. A mesoscale 3D CFD analysis of the liquid flow in a rotating packed bed. Chemical Engineering Science, 199, 528-545, 2019.
[13] Yan Yang, Xiaowei Zhu, Yuying Yan, Hongbing Ding, Chuang Wen. Performance of supersonic steam ejectors considering the nonequilibrium condensation phenomenon for efficient energy utilisation. Applied Energy, 242, 157-167, 2019.
學術論著:
(1) 計算機控制技術(第二作者). 機械工業出版社, 2020, ISBN: 9787111649724.
授權發明專利:
(1) 丁紅兵、孫春倩、王超、趙亞菲. 一種移動式超音速噴嘴連續測量系統,專利號:ZL 201911229750.5
(2) 丁紅兵、田雨禾、梁真馨,一種基於氣溶膠增強凝結的旋流超音速分離器實驗系統,專利號:ZL202010244588.0
(3) 丁紅兵、梁真馨、曹培娟,一種音速噴嘴管壁熱場分布測量系統,專利號:ZL202010209500.1
(4) 丁紅兵、李一鳴、王超、李金霞、張哲曉,一種多參數可調的霧狀流實驗系統,專利號:ZL201810644726.7
(5) 丁紅兵、王超、林大烜,基於模糊PID的微霧發生裝置控制方法,專利號:ZL201610697385.0
(6) 丁紅兵、王剛、王超,管壁內部動態溫度分布實時監測方法,專利號:ZL 201610614916.5

獲獎記錄

(1) 天津市科學技術進步獎,二等獎,2022
(2) 中國計量測試學會科學技術進步獎,一等獎,2017
(3) 2021年度編輯精選獎 Editor Choice Paper Award, Selection Committee of Applied Thermal Engineering, 2021, awards a prize for only 4 best papers of the year (more than 1,600 papers per year)
(4) 受邀擔任VinFuture全球科技獎提名專家,2023
(5) 中國儀器儀表學會“測量控制與儀器儀表領域”全國優秀博士論文(共2人),2017
(6) 教育部·高等學校虛擬仿真實驗教學資源建設成果獎,一等獎,2016
(7) 天津市“131”創新型人才培養工程第三層次
(8) 天津大學“北洋學者·青年骨幹教師”人才支持計畫
(9) 天津大學沈志康獎教金
(10) 天津大學畢業設計優秀指導教師
(11) 天津大學優秀碩士論文指導教師(2020、2022)
(12) 天津大學自動化學院優秀班主任

社會任職

(1) International Journal of Aerospace Engineering (SCI), Editor Board Member
(2) PLOS ONE (SCI), Editor Board Member
(3) Frontiers in Energy Research (SCI), Guest Editor
(4) 中南大學學報(自然科學版)青年編委會
(5) 中國自動化學會智慧型製造系統專業專委會委員、中國計量測試學會多相流測試專業委員會青年委員等
(6) Session Chair: International CCUS Conference 2023, 2023
(7) Session Chair: CEN2023: Applied Energy Symposium, Clean Energy Towards Carbon Neutrality, 2023
(8) Session Chair: ICAE2022, the 14th International Conference on Applied Energy, 2022
(9) Session Chair: 14th International Green Energy Conference (IGEC-XIV), 2022
(10) Session Chair: 11th International Symposium on Measurement Techniques for Multiphase Flow, 2019
(11) 2023年、2020年中國多相流測試學術年會分會主席
(12) 2020年中國工程熱物理學會熱機氣動熱力學和流體機械學術年會分會主席
(13) 國家自然科學基金評議專家,天津市、上海市、北京市等科技專家庫專家

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