2023年度
1. Tao Chen, Yanzhao An, Shicheng Shen, HaoShi, Yiqiang Pei, Kun Wang. Large eddy simulation of fuel-air mixing process ina convergent-divergent duct spray under non-vaporizing conditions. Fuel, 2023,353, 129176. (中科院一区学术期刊,影响因子8.035)
2. Guangyuan Feng, Qing Yang, Zechang Liu,Zhenghui Jiang, Chengyuan Zhao, Houshi Jiang, Kun Wang, Andres Fuentes,Dongping Chen, Xu He. The influence of methyl butyrate and n-butanol on thelaminar burning characteristics of RP-3: An experimental and kinetic modelingstudy. Fuel, 2023, 349, 128713. (中科院一区学术期刊,影响因子8.035)
3. Zhu, Zhijie; Liang, Xingyu; Cui, Lei; Wang,Kun; Wang, Xiaohui; Zhu, Shihao. Simulation research on injection strategy ofdiesel-ammonia dual-fuel marine engine, Energy & Fuels, Accepted. (领域top期刊,影响因子4.654)
4. 白世杰,梁兴雨,王昆,用于激波增强的变截面激波管设计. 燃烧科学与技术,2023,29(4):406-413。
5. 路广,王君雷,李世龙,梁兴雨,王昆. 促进氨燃料转化的预裂解器反应动力学分析. 新能源进展,2023,Vol. 11(4): 311-319。
6. 杜文,王君雷,徐运飞,李世龙,王昆. 火焰喷雾热解法生产锂离子电池高镍三元正极材料的技术经济分析. 储能科学与技术,录用。
7. 张鹏勃,沈位,江杭朋,梁兴雨,王昆. 杂化化学方法“单分子燃料”热物性参数三种预估方法的比较研究. 燃烧科学与技术,录用。
8. 陈国徽,王君雷,罗俊潇,徐运飞,王昆. 火焰喷雾热解制备锂离子电池三元正极材料研究进展. 化工进展,录用。
2022年度
1. Xingyu Liang, Xiaohui Wang, Wei Shen,Shijie Bai, Shihao Zhu, Yuesen Wang, Kun Wang, Development of acombustion reaction model for lubricant synthetic base oil by experimental andnumerical methods, Combustion and Flame 238 (2022) 111916. https://doi.org/10.1016/j.combustflame.2021.111916 (领域top期刊,影响因子4.4)
2. Xingyu Liang, Bowen Zhao, Kun Wang,Xu Lv, Yajun Wang, Jun Liu, Yuesen Wang, Impact of multi-injection strategieson morphology, nanostructure and oxidation reactivity of diesel soot particles,Combustion and Flame 237 (2022) 111854. https://doi.org/10.1016/j.combustflame.2021.111854 (领域top期刊,影响因子4.185)
3. 梁兴雨,廖寄语,朱仕皓,沈位,王昆. 实际气体效应对碳氢燃料点火延迟时间的影响. 西安交通大学学报. 2022, Vol. 56, No. 1, p.1-11.(EI工程索引期刊)
4. Shijie Bai, Hongsheng Zhang, Chang Li,Chaohui Wu, Xingyu Liang and Kun Wang, Experimental and Modeling Studyof Wall Film Effect on Combustion Characteristics of Premixed Flame in aConstant Volume Combustion Bomb, Front. Mech. Eng 7:743342. https://doi.org/10.3389/fmech.2021.743342 (SCI学术期刊)
2021年度
1. Wei Shen, Shijie Bai, Kun Wang, JiyuLiao, Xingyu Liang, Simplified modeling combustion chemistry of neat andblended large hydrocarbon fuels with different functional groups, Combustionand Flame 234 (2021) 111610. https://doi.org/10.1016/j.combustflame.2021.111610. (领域top期刊,影响因子4.4)
2. Xingyu Liang, Shihao Zhu, Xiaohui Wang, KunWang, Development and application of a foundational fuel chemistrymechanism for pyrolysis and oxidation of propene and butenes, Fuel 302 (2021)121130. https://doi.org/10.1016/j.fuel.2021.121130. (中科院一区学术期刊,影响因子8.035)
3. Hongsheng Zhang, Xingyu Liang, Kun Wang,Yuesen Wang, Shiwen Wang, Experimental study on the interaction between flamepropagation and wall film in a confined vessel, Fuel 302 (2021) 121132. https://doi.org/10.1016/j.fuel.2021.121132. (中科院一区学术期刊,影响因子8.035)
4. Xingyu Liang, Bowen Zhao, Kun Wang, Xu Lv,Yajun Wang, Jun Liu, Yuesen Wang, Impact of early injection on physicochemicalcharacteristics of diesel soot particles, Fuel 292 (2021) 120262. https://doi.org/10.1016/j.fuel.2021.120262. (中科院一区学术期刊,影响因子8.035)
5. Kun Wang, Rui Xu, Craig T. Bowman, Hai Wang, Impact ofvitiation on flow reactor studies of jet fuel combustion chemistry, Combustionand Flame 224 (2021) 66–72. https://doi.org/10.1016/j.combustflame.2020.10.044. (领域top期刊,影响因子4.4)
6. Xingyu Liang, Yajun Wang, Kun Wang,Yuesen Wang, Hongsheng Zhang, Bowen Zhao, Xu Lv, Experimental study of impactof lubricant-derived ash on oxidation reactivity of soot generated in dieselengines, Proceedings of the Combustion Institute, 2021, 38(4), 5635-5642. https://doi.org/10.1016/j.proci.2020.06.335. (领域top期刊,影响因子6.719)
7. 梁兴雨,刘志伟,王昆,朱仕皓,王晓慧,沈位. 4类碳氢燃料的高温反应动力学简化建模. 西安交通大学学报. 2021, Vol. 55, No. 2, p.27-37.(EI工程索引期刊)
8. 梁兴雨,李 畅,王 昆,张洪升,刘子阳,王诗文. 壁面油膜对甲烷预混气燃烧特性和排放的影响. 燃烧科学与技术. 2021, 27(3), 241-248. (中文核心期刊)
9. 梁兴雨,王诗文,王 昆,张洪升,郑志伟,李 畅. 甲烷瞬态火焰与壁面油膜相互作用的实验观测. 燃烧科学与技术. 2021, 27(4), 335-342. (中文核心期刊)
2020年度
1. Xingyu Liang, YajunWang, Yuesen Wang, Bowen Zhao, Ziding Zhang, Xu Lv,Zhaohui Wu, Xiaoliang Cai,and Kun Wang, Impact of lubricating base oil on diesel soot oxidationreactivity, Combustion and Flame, 2020, 217, 77-84. (领域top期刊,影响因子4.4)
2019年度
1. Wang K., Bowman C. T., and Wang Hai,“Kinetic analysis of distinct product generation in oxidative pyrolysis offour octane isomers”, Proc. Combust. Inst., 2019 (37) 531–538. (领域top期刊,影响因子6.719)
2018年度
1. Wang K., Xu R., Parise T., Shao J.K.,Movaghar A., Lee D. J., Park J.-W., Gao Y., Lu T.F., Egolfopoulos F. N.,Davidson D. F., Hanson R. K., Bowman C. T., Wang H., “A physics-based approachto modeling real-fuel combustion chemistry- IV. HyChem modeling of combustionkinetics of a bio-derived jet fuel and its blends with a conventional Jet A”, Combust.Flame 2018, 198, 477-489. (领域top期刊,影响因子4.4)
2. Wang H., Xu R., Wang K.,Bowman C.T., Davidson D.F., Hanson R.K., Brezinsky K., Egolfopoulos F.N., “APhysics-based approach to modeling real-fuel combustion chemistry- I. Evidencefrom experiments, and thermodynamic, chemical kinetic and statisticalconsiderations”, Combust. Flame 2018, 193, 502–519. (领域top期刊,影响因子4.4)
3. Xu R., Wang K., BanerjeeS., Shao J., Parise T., Zhu Y., Wang S., Movaghar A., Lee D.J., Zhao R., HanX., Gao Y., Lu T., Brezinsky K., Egolfopoulos F.N., Davidson D.F., Hanson R.K.,Bowman C.T., Wang H., “A Physics-based approach to modeling real-fuelcombustion chemistry- II. Reaction kinetic models of jet and rocket fuels”, Combust.Flame 2018, 193, 520–537. (领域top期刊,影响因子4.4)
4. Y. Tao, R. Xu, K. Wang,J.K. Shao, S.E. Johnson, A. Movaghar, X. Han, J.-W. Park, T.F. Lu, K.Brezinsky, F.N. Egolfopoulos, D.F. Davidson, R.K. Hanson, C.T. Bowman, H. Wang,A Physics-based approach to modeling real-fuel combustion chemistry –III.Reaction kinetic model of JP10, Combust. Flame 2018, 193, 466–476.(领域top期刊,影响因子4.4)
2017年度
1. Chen D., Wang K., andWang Hai, “Violation of collision limit in recently publishedreaction models”, Combust. Flame, 2017, 186, 208–210. (领域top期刊,影响因子4.4)
2. Wang K., Villano S. M., and Dean A.M., “Experimental and Kinetic Modeling Study of Butene Isomer Pyrolysis: PartII. IsoButene”, Combust. Flame, 2017, 176, 23–37. (领域top期刊,影响因子4.4)
2016年度
1. Wang K., Villano S. M., and Dean A.M., “Experimental and Kinetic Modeling Study of Butene Isomer Pyrolysis: PartI. 1- and 2-Butene”, Combust. Flame, 2016, 173, 347–369. (领域top期刊,影响因子4.4)
2. Saldana M., Bogin G., WangK., and Dean A. M., “Comparative Kinetic Analysis of Ethane Pyrolysis atElevated Pressures and High Conversions”, Energy Fuels, 2016, 30(11), 9703–9711. (领域top期刊,影响因子4.654)
3. Wang K., Villano S. M., and Dean A.M., “Ab Initio Study of the Influence of Resonance Stabilization on the RingClosure Reactions of Hydrocarbon Radicals”. Phys. Chem. Chem. Phys. 2016, 18, 8437–8452. (领域top期刊,影响因子3.945)
2015年度
1. Wang K., Villano S. M., and Dean A.M., “Fundamentally-Based Kinetic Model for Propene Pyrolysis”. Combust. Flame,2015, 162(12):4456–4470.(领域top期刊,影响因子4.4)
2. Wang K., Villano S. M., and Dean A.M., “Reactivity-Structure Based Rate Estimation Rules for Alkyl Radical H-atomShift and Alkenyl Radical Cyclization Reactions”. J. Phys. Chem. A 2015, 119(28): 7205–7221. (领域top期刊,影响因子2.944)
3. Wang K., Villano S. M., and Dean A.M., “Reactions of Resonantly-Stabilized Free Radicals that Impact MolecularWeight Growth Kinetics”. Phys.Chem. Chem. Phys. 2015, 17, 6255–6273. (领域top期刊,影响因子3.945)
4. Wang K., Villano S. M., and Dean A.M., “The Impact of Resonance Stabilization on the Intramolecular H-atom ShiftReactions of Hydrocarbon Radicals”. ChemPhysChem, 2015,16(12): 2635–2645. (领域top期刊,影响因子3.52)
学术专著
1. Computer-Aided ChemicalEngineering, Vol. 45, "Mathematical Modelling of Gas-Phase ComplexReaction Systems: Pyrolysis and Combustion", Edited by Tiziano Faravelli,Flavio Manenti, and Eliseo Ranzi. Chapter 4, "Rate rules and reactionclasses", Kun Wang and Anthony M. Dean, 2019, pp. 203-257.
知识产权
发明专利授权4件,公开/待审7件,软件著作权7件。
1. 王昆;沈位;白世杰;江杭朋;梁兴雨. 平推流反应器和平推流反应器实验系统. ZL 2022 1 0725090.5.
2. 王昆;白世杰;沈位;梁兴雨;罗逸伦. 无膜激波管及采样系统. ZL 2022 1 0767410.3.
3. 王昆;白世杰;王留红;张保海;杨丽. 用于激波管的气体采样检测系统. ZL 2022 1 0744965.6.
4. 梁兴雨;许朝阳;舒歌群;王昆;王月森. 低速柴油机燃油升压泵和排气阀的伺服驱动系统. ZL 2020 1 1264442.9.
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