[1] Nicholas Syred. 40 Years with Swirl, Vortex, Cyclonic Flows, and Combustion [R]. AIAA 2011-105.
[2] Mehmet Salih Cellek, Ali P?narbas. Investigations on Performance and Emission Characteristics of an Industrial Low Swirl Burner while Burning Natural Gas, Methane, Hydrogen-Enriched Natural Gas and Hydrogen as Fuels[J]. International Journal of Hydrogen Energy,2018, 43: 1194-1207.
[3] Cheng R K, Littlejohn D, Nazeer W A, et al. Laboratory Studies of the Flow Field Characteristics of Low-Swirl Injectors for Adaptation to Fuel-Flexible Turbines[J]. Journal of Engineering for Gas Turbines & Power, 2006, 130(2): 277-285.
[4] Chan C K, Lau K S, Chin W K, et al. Freely Propagating Open Premixed Turbulent Flames Stabilized by Swirl [J]. Symposium on Combustion, 1992, 24(1): 511-518.
[5] Yegian D T, Cheng R K. Development of a Lean Premixed Low-Swirl Burner for Low NOx Practical Applications[J]. Combustion Science & Technology, 1998, 139(1): 207-227.
[6] Meghdad Saediamiri, Madjid Birouk, Janusz A Kozinski. On the Stability of a Turbulent Non-Premixed Biogas Flame: Effect of Low Swirl Strength[J]. Combustion and Flame, 2014, 161: 1326-1336.
[7] Plessing T, Kortschik C, Peters N, et al. Measurements of the Turbulent Burning Velocity and the Structure of Premixed Flames on a Low-Swirl Burner[J]. Proceedings of the Combustion Institute, 2000, 28(1): 359-366.
[8] Littlejohn D, Cheng R K. Fuel Effects on a Low- Swirl Injector for Lean Premixed Gas Turbines [J]. Proceedings of the Combustion Institute, 2007, 31: 3155-3162.
[9] Legrand M, Nogueira J, Lecuona A, et al. Atmospheric low Swirl Burner Flow Characterization with Stereo PIV[J]. Experiments in Fluids, 2010, 48(5): 901-913.
[10] Marc Day, Shigeru Tachibana, John Bell, et al. A Combined Computational and Experimental Characterization of Lean Premixed Turbulent Low Swirl Laboratory Flames I.Methane Flames[J]. Combustion and Flame, 2012, 159: 275-290.
[11] Marc Day, Tachibana S, Bell J, et al. A Combined Computational and Experimental Characterization of Lean Premixed Turbulent Low Swirl Laboratory Flames II. Hydrogen Flames[J]. Combustion and Flame, 2015, 162(5): 2148-2165.
[12] Karthik Periagaram, David R Noble, Jerry M Seitzman, et al. Measurement of Flame Characteristics of a Low Swirl Burner at High Pressures and Velocities[R]. AIAA 2011-234.
[13] Bell J B, Day M S, Lijewski M J. Simulation of Nitrogen Emissions in a Premixed Hydrogen Flame Stabilized on a Low Swirl Burner [J]. Proceedings of the Combustion Institute, 2013, 34(1): 1173-1182.
[14] Johnson M R, Littlejohn D, Nazeer W A, et al. A Comparison of the Flow Field and Emissions of High-Swirl Injectors and Low-Swirl Injectors for Lean Premixed Gas Turbines[J]. Proceedings of the Combustion Institute,2005, 30: 2867-2874.
[15] Colorado A, McDonell V G. Exploring Computational Methods for Predicting Pollutant Emissions and Stability Performance of Premixed Reactions Stabilized by a Low Swirl Injector[J]. Combustion Science and Technology, 2017, 189(12): 2115-2134.
[16] Cheng R K, Littlejohn D, Strakey P A, et al. Laboratory Investigations of a Low-Swirl Injector with H2 and CH4 at Gas Turbine Conditions[J]. Proceedings of the Combustion Institute, 2009, 32: 3001-3009.
[17] Waseem Nazeer, Kenneth Smith, Patrick Sheppard, et al. Full Scale Testing of a Low Swirl Fuel Injector Concept for Ultra-Low NOx Gas Turbine Combustion Systems [R]. ASME GT 2006-90150.
[18] Masamichi Koyama, Shigeru Tachibana. Technical Applicability of Low-Swirl Fuel Nozzle for Liquid-Fueled Industrial Gas Turbine Combustor[J]. Fuel, 2013, 107: 766-776.
[19] 张弛, 于博文, 杨谦, 等. 弱旋流喷嘴的污染排放和燃烧稳定性分析[J]. 航空动力学报, 2015, 30(11): 2575-2583.
[20] 邓洋波, 刘阳, 朱公志. 低旋流燃烧和流动特性数值模拟研究[J]. 大连海事大学学报, 2009, 35(4):99-102.
[21] 邓洋波, 宋德彦, 徐震, 等. 有限空间内低旋流流动与燃烧特性[J]. 航空动力学报, 2015, 30(7): 1546-1553.
[22] 尹航, 钟仕立, 戴韧, 等. 合成气低旋流燃烧器设计与流动结构的分析[J]. 动力工程学报, 2011, 31(2): 131-136.
[23] 尹航, 戴韧, 张建辉, 等. 旋流器安装角对低旋流燃烧流场的影响[J]. 动力工程学报, 2011, 31(9):664-671.
[24] 柳伟杰, 葛冰, 田寅申, 等. 当量比对甲烷预混低旋流燃烧的影响[J]. 燃烧科学与技术, 2014, 20(1): 65-69.
[25] 柳伟杰, 葛冰, 江之鉴, 等. 低旋流多喷嘴燃烧器性能实验[J]. 上海交通大学学报, 2016, 50(4):545-550.
[26] 陈立, 李祥晟. 低旋流CH4/H2火焰的燃烧特性及稳定性机制研究[J]. 西安交通大学学报, 2017, 51(1): 72-78.
[27] 陈立, 李祥晟, 杨诏, 等. 气流入口条件对低旋流燃烧火焰稳定性的影响[J]. 西安交通大学学报,2016, 50(5): 114-119.
[28] 康尧, 林宇震, 付镇柏, 等. 台阶高度对LESS燃烧室的影响研究[J]. 推进技术, 2014, 35(7): 941-949.(KANG Yao, LIN Yu-zhen, FU Zhen-bo, et al. Effects of Step Height on Low Emission Stirred Swirl Combustor[J]. Journal of Propulsion Technology, 2014, 35(7): 941-949.)
[29] 邓远灏. 贫油部分预混预蒸发燃烧室排放性能研究[D]. 南京:南京航空航天大学, 2016. 收稿日期:2018-06-07;修订日期:2018-09-20。基金项目:国家自然科学基金面上项目(51576164)。通讯作者:肖隐利,博士,副教授,研究领域为燃烧试验与数值模拟。E-mail: xiaoyinli@nwpu.edu.cn(编辑:梅瑛)
|