Assessment of a hydrogen-fueled swirling trapped-vortex combustor using large-eddy simulation

被引:8
|
作者
Sharifzadeh, Reza [1 ]
Afshari, Asghar [1 ,2 ]
机构
[1] Univ Tehran, Coll Engn, Sch Mech Engn, Tehran, Iran
[2] POB 11155-4563, Tehran, Iran
关键词
Trapped -vortex combustor; Swirling flow; Large -eddy simulation; Hydrogen combustion; FLOW-FIELD; PERFORMANCE;
D O I
10.1016/j.fuel.2023.129847
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In recent years, the study of hydrogen combustion has gained significant interest due to its exceptional lean blow-out (LBO) performance, high efficiencies, and almost negligible greenhouse gas emissions. The present study combines the advantages of hydrogen combustion with the beneficial characteristics of trapped-vortex combustion (TVC) and swirling flows. Large-eddy simulation (LES) is conducted to evaluate the performance of a swirling trapped-vortex combustor. LES sub-gird terms are described using k-equation subgrid model, while, turbulence-combustion interaction is modelled employing the PaSR (Partially Stirred Reactor) closure with a detailed 23-step chemical reaction mechanism for hydrogen/air. A radial vane swirler is incorporated to supply an annular mainstream and generate a wake region in front of the cavity leading edge to enhance cavity flow entrainment. To evaluate the performance of a hydrogen-fueled TVC under non-swirl and swirling conditions with varying swirl numbers (0.1-0.6), several flow and combustion characteristics are analyzed. These includes temperature distribution, vortical structure, combustion efficiency, NO emission, and flame shape. The results show that a large recirculation zone dominates the cavity for the all swirl numbers resulting in a strong fuel-air mixing and high combustion efficiency. It is demonstrated that the swirling motion effectively mitigates the negative impacts of pressure fluctuations arising from the interaction of combustion with cavity oscillations. A stable flame is observed inside the cavity and in the shear layer at the cavity lip in all cases, merging to form a distinctive C-shaped flame. Increasing the swirl number causes the second part of the flame to move to the wake region before the leading edge, enhancing combustion stability and efficiency. Combustion efficiency exceeds 98.5% for all cases, reaching 99.8% for a swirl number of 0.6. The temperature distribution is nearly uniform inside the cavity, with an improved distribution at the TVC's outlet for higher swirl numbers. Under non-swirling conditions, the corrected NO concentration is below 5 ppm. Increasing the swirl number escalates the outlet NO emission, nevertheless, a maximum NO concentration of 19 ppm is observed for the swirling cases. Comparing these findings with existing data suggests that the swirling TVC offers advantages over other hydrogen-fired TVC's.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Large-eddy simulation of a gas turbine combustor flow
    Kim, Won-Wook
    Menon, Suresh
    Mongia, Hukam C.
    Combustion science and technology, 1999, 143 (01): : 25 - 62
  • [22] Large-eddy simulation of evaporating spray in a coaxial combustor
    Apte, Sourabh V.
    Mahesh, Krishnan
    Moin, Parviz
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2009, 32 : 2247 - 2256
  • [23] Large-eddy simulation of a gas turbine combustor flow
    Kim, WW
    Menon, S
    Mongia, HC
    COMBUSTION SCIENCE AND TECHNOLOGY, 1999, 143 (1-6) : 25 - +
  • [24] Implicit Large-Eddy Simulation of a Wingtip Vortex
    Lombard, Jean-Eloi W.
    Moxey, David
    Sherwin, Spencer J.
    Hoessler, Julien F. A.
    Dhandapani, Sridar
    Taylor, Mark J.
    AIAA JOURNAL, 2016, 54 (02) : 506 - 518
  • [25] Very-Large-Eddy Simulation of Nonreactive Turbulent Flow for Annular Trapped Vortex Combustor
    Zhang, K.
    Jin, Y.
    Han, X.
    He, X.
    JOURNAL OF APPLIED FLUID MECHANICS, 2022, 15 (02) : 523 - 535
  • [26] Large-Eddy Simulation of a hydrogen enriched methane/air meso-scale combustor
    Benard, P.
    Moureau, V.
    Lartigue, G.
    D'Angelo, Y.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (04) : 2397 - 2410
  • [27] Large-Eddy Simulation of Swirling Pulverized-Coal Combustion
    Hu, L. Y.
    Zhou, L. X.
    Luo, Y. H.
    Xu, C. S.
    CLEANER COMBUSTION AND SUSTAINABLE WORLD, 2012, : 42 - 45
  • [28] Studies on a swirling heptane spray flame by large-eddy simulation
    Zhou, Lixing
    Luo, Kun
    AEROSPACE SCIENCE AND TECHNOLOGY, 2022, 126
  • [29] Large-eddy simulation of a swirling flow in a model combustion chamber
    Hrebtov, M. Yu
    Palkin, E., V
    Mullyadzhanov, R., I
    XXXVI SIBERIAN THERMOPHYSICAL SEMINAR (STS 36), 2020, 1677
  • [30] Large-Eddy Simulation of Pulverized Coal Combustion in Swirling Flow
    Tanno, K.
    Watanabe, H.
    Hashimoto, N.
    Kurose, R.
    Shirai, H.
    CLEANER COMBUSTION AND SUSTAINABLE WORLD, 2012, : 670 - 674