EFFECT OF SECONDARY AIR CONFIGURATION IN GAS TURBINE COMBUSTOR FIRING NATURAL GAS

被引:0
|
作者
Zaid, Akram [1 ]
Farag, Ahmed [1 ]
Belal, Tarek M. [2 ]
机构
[1] Coll Maritime Transportat AASTMT, Alexandria, Egypt
[2] Pharos Univ, Fac Engn, Dept Mech, Alexandria, Egypt
关键词
FLOW;
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The effect of secondary air inlet conditions on natural gas combustor is investigated numerically. Secondary air inlet conditions include its amount, position, total number of inlet ports and its arrangement along the combustor. The secondary air is introduced normally through inlet ports at different levels along the combustor. Each level includes a number of ports distributed around the combustor periphery. The number of ports levels varied from four up to sixteen and the number of ports in each level varied from four up to sixteen ports. Thus, the total number of ports varied from 16 up to 256. The combustor used has an air swirler at its upstream. Primary air, secondary air and fuel lines are also included. The sheer-stress transport (SST) k-omega model was used to simulate the turbulent isothermal flow and the non-premixed combustion model was used to simulate the turbulent reacting flow. For validating the model, a comparison between the measured and the calculated axial temperature distribution is made which show a reasonable agreement. Primary air swirl number of 0.87 and air to fuel ratio of 30 are used in this study. Secondary air leads to a decrease in flame size. For secondary to primary air ratio (SPAR) greater than 0.3, the flame became narrower in diameter and shorter in length. For certain secondary air configuration, NO, CO, CO2 are decreased with secondary air and are further decreased when increasing the value of SPAR.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Co-Firing of Hydrogen and Natural Gas in a Practical DLN Combustor Model
    Zhao, Rang
    Igie, Uyioghosa
    Abbott, David
    Wiranegara, Raditya Yudha
    PROCEEDINGS OF ASME TURBO EXPO 2023: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, GT2023, VOL 3B, 2023,
  • [22] Development of Air Cooled Combustor for Mitsubishi G Class Gas Turbine
    Tsukagoshi, Keizo
    Arimura, Hisato
    Tanaka, Katsunori
    Nishida, Koichi
    Konishi, Testu
    Akamatsu, Shinji
    Kishida, Hiroaki
    Sato, Kenji
    PROCEEDINGS OF THE ASME TURBO EXPO 2010, VOL 2, PTS A AND B, 2010, : 719 - 723
  • [23] Development of Air Cooled Combustor for Mitsubishi G Class Gas Turbine
    Tsukagoshi, Keizo
    Tanaka, Katsunori
    Nishida, Koichi
    Akamatsu, Shinji
    Kishida, Hiroaki
    Saitoh, Keijiro
    Sato, Kenji
    PROCEEDINGS OF THE ASME POWER CONFERENCE - 2011, VOL 1, 2012, : 629 - 633
  • [24] Multi-objective optimizations of air partitioning in a gas turbine combustor
    Amani, E.
    Randan, P.
    Pourvosoughi, S.
    APPLIED THERMAL ENGINEERING, 2019, 148 : 1292 - 1302
  • [25] Effect of fuel-air mixture velocity on combustion instability of a model gas turbine combustor
    Yoon, Jisu
    Kim, Min-Ki
    Hwang, Jeongjae
    Lee, Jongguen
    Yoon, Youngbin
    APPLIED THERMAL ENGINEERING, 2013, 54 (01) : 92 - 101
  • [26] Short Helical Combustor: Concept Study of an Innovative Gas Turbine Combustor With Angular Air Supply
    Ariatabar, B.
    Koch, R.
    Bauer, H-J.
    Negulescu, D-A.
    JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 2016, 138 (03):
  • [27] CO2 abatement by co-firing of natural gas and biomass derived gas in a gas turbine
    Fiaschi, D
    Carta, R
    PROCEEDINGS OF ECOS 2005, VOLS 1-3: SHAPING OUR FUTURE ENERGY SYSTEMS, 2005, : 1507 - 1515
  • [28] GAS-TURBINE COMBUSTOR ANALYSIS
    SULLIVAN, DA
    JOURNAL OF ENGINEERING FOR POWER-TRANSACTIONS OF THE ASME, 1975, 97 (04): : 610 - 618
  • [29] Use of bioethanol in a gas turbine combustor
    Alfaro-Ayala, J. A.
    Gallegos-Munoz, A.
    Uribe-Ramirez, A. R.
    Belman-Flores, J. M.
    APPLIED THERMAL ENGINEERING, 2013, 61 (02) : 481 - 490
  • [30] GAS TURBINE COMBUSTOR ANALYSIS.
    Sullivan, D.A.
    Journal of Engineering for Power, Transactions ASME, 1975, 97 Ser A (04): : 610 - 618