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燃烧室轴向和周向长度对气液两相旋转爆轰特性的影响

李宝星 许桂阳 舒慧明

李宝星, 许桂阳, 舒慧明. 燃烧室轴向和周向长度对气液两相旋转爆轰特性的影响[J]. 航空动力学报, 2020, 35(8): 1601-1611. doi: 10.13224/j.cnki.jasp.2020.08.005
引用本文: 李宝星, 许桂阳, 舒慧明. 燃烧室轴向和周向长度对气液两相旋转爆轰特性的影响[J]. 航空动力学报, 2020, 35(8): 1601-1611. doi: 10.13224/j.cnki.jasp.2020.08.005
LI Baoxing, XU Guiyang, SHU Huiming. Influence of axial and circumferential lengths of combustion chamber on gas-liquid two-phase rotating detonation characteristics,[J]. Journal of Aerospace Power, 2020, 35(8): 1601-1611. doi: 10.13224/j.cnki.jasp.2020.08.005
Citation: LI Baoxing, XU Guiyang, SHU Huiming. Influence of axial and circumferential lengths of combustion chamber on gas-liquid two-phase rotating detonation characteristics,[J]. Journal of Aerospace Power, 2020, 35(8): 1601-1611. doi: 10.13224/j.cnki.jasp.2020.08.005

燃烧室轴向和周向长度对气液两相旋转爆轰特性的影响

doi: 10.13224/j.cnki.jasp.2020.08.005
基金项目: 国家科学自然基金(11802039,11802117)

Influence of axial and circumferential lengths of combustion chamber on gas-liquid two-phase rotating detonation characteristics,

  • 摘要: 为了研究旋转爆轰发动机燃烧室轴向和周向长度对气液两相旋转爆轰特性的影响,采用守恒元和求解元(CE/SE)方法对带化学反应的汽油/富氧空气两相旋转爆轰理论模型进行求解,获得了气液两相旋转爆轰流场结构,并分析了燃烧室轴向和周向长度对燃烧室流场、爆轰波传播特性以及发动机推力性能的影响。计算结果表明:轴向长度对燃烧室上游流场影响甚小,却对下游流场参数影响较显著。随着轴向长度增加,燃烧室出口压力、温度、密度以及周向速度均降低,轴向速度则逐渐增大,同时发动机平均推力密度和燃料比冲先增大后减小。当周向长度过短,燃烧室内难以形成自持传播的爆轰波,随着周向长度增加,上游爆轰波强度增加,对应的流场参数均有所增大,但发动机推力性能略有所降低。

     

  • [1] 王建平,周蕊,武丹.连续旋转爆轰发动机的研究进展[J].实验流体力学,2015,29(4):12-25. WANG Jianping,ZHOU Rui,WU Dan.Progress of continuously rotating detonation engine research[J].Journal of Experiments in Fluid Mechanics,2015,29(4):12-25.(in Chinese)
    [2] BYKOVSKII F A,ZHDAN S A,ADERNIKOV E F.Continuous spin detonation in annular combustion[J].Combustion,Explosion and Shock Waves,2005,41(4):449-459.
    [3] BYKOVSKII F A,ZHDAN S A,ADERNIKOV E F.Continuous spin detonation of fuel-air mixtures[J].Combustion,Explosion and Shock Waves,2006,42(4):463-471.
    [4] BYKOVISKII F A,ZHDAN S A,ADERNIKOV E F.Continuous spin detonation of hydrogen-oxygen mixture:1 annular cylindrical combustor[J].Combustion,Explosion and Shock Waves,2008,44(2):150-162.
    [5] WANG Yuhui,WANG Jianping.Effect of equivalence ratio on the velocity of rotating detonation[J].International Journal of Hydrogen Energy,2015,40(25):7949-7955.
    [6] XIE Qiaofeng,WEN Haocheng,LI Weihong,et al.Analysis of operating diagram for H2/air rotating detonation combustors under lean fuel condition[J].Energy,2018,151:408-419.
    [7] LIN Wei,ZHOU Jin,LIU Shijie,et al.Experimental study on propagation mode of H2/air continuously rotating detonation wave[J].International Journal of Hydrogen Energy,2015,40(4):1980-1993.
    [8] LI Baoxing,WU Yuwen,WENG Chunsheng,et al.Influence of equivalence ratio on the propagation characteristics of rotating detonation wave[J].Experimental Thermal and Fluid Science,2018,93:366-378.
    [9] 郑权,李宝星,翁春生,等.燃烧室长度对液态燃料旋转爆轰发动机性能影响实验研究[J].推进技术,2018,39(12):2764-2771. ZHENG Quan,LI Baoxing,WENG Chunsheng,et al.Experimental investigation for effects of combustor length on liquid-fueled rotating detonation engine performance[J].Journal of Propulsion Technology,2018,39(12):2764-2771.(in Chinese)
    [10] 高剑,武晓松,马虎,等.不同燃烧室长度的旋转爆震发动机实验研究[J].推进技术,2016,37(10):1991-2000. GAO Jian,WU Xiaosong,MA Hu,et al.Experimental research on rotating detonation engines with different combustion chamber length[J].Journal of Propulsion Technology,2016,37(10):1991-2000.(in Chinese)
    [11] SCHWER D A,KAILASANATH K.Numerical study of the effects of engine size on rotating detonation engines[R]AIAA-2011-581,2011.
    [12] ZHOU Rui,WANG Jianping.Numerical investigation of shock wave reflections near the head ends of rotating detonation engines[J].Shock Waves,2013,23(5):461-472.
    [13] 刘世杰,林志勇,孙明波,等.旋转爆震波发动机二维数值模拟[J].推进技术,2010,31(5):634-640. LIU Shijie,LIN Zhiyong,SUN Mingbo,et al.Two-dimensional numerical simulation of rotating detonation wave engine[J].Journal of Propulsion Technology,2010 31(5):634-640.(in Chinese)
    [14] 陈洁,王栋,马虎,等.轴向长度对旋转爆震发动机的影响[J].航空动力学报,2013,28(4):844-849. CHEN Jie,WANG Dong,MA Hu,et al.Influence of axial length on rotating detonation engine[J].Journal of Aerospace Power,2013,28(4):844-849.(in Chinese)
    [15] 孙健,周进,林志勇,等.燃烧室轴向长度对旋转爆震发动机性能的影响[J].航空动力学报,2016,31(9):2080-2086. SUN Jian,ZHOU Jin,LIN Zhiyong,et al.Influence of chamber length on rotating detonation engine performance[J].Journal of Aerospace Power,2016,31(9):2080-2086.(in Chinese)
    [16] 刘倩,郑洪涛,李智明.连续旋转爆轰燃烧室增压特性的数值研究[J].推进技术,2014,35(11):1577-1584. LIU Qian,ZHENG Hongtao,LI Zhiming.Numerical investigation on pressure amplifying characteristic of continuously rotating donation chombustor[J].Journal of Propulsion Technology,2014,35(11):1577-1584.(in Chinese)
    [17] 翁春生,王浩.计算内弹道学[M].北京:国防工业出版社,2006.
    [18] 李宝星,翁春生.连续旋转爆轰发动机气液两相爆轰波传播特性二维数值研究[J].固体火箭技术,2015,38(5):646-652. LI Baoxing,WENG Chunsheng.Numerical investigation on two-dimensional gas-liquid two-phase detonation wave propagation characteristics of continuous rotating detonation engine[J].Journal of Solid Rocket Technology,2015,38(5):646-652.(in Chinese)
    [19] 洪滔,秦承森.气体-燃料液滴两相系统爆轰的数值模拟[J].爆炸与冲击,1999,19(4):335-342. HONG Tao,QIN Chengsen.Numerical simulation of detonation of gas-fuel droplet two-phase system[J].Explosion and Shock Waves,1999,19(4):335-342.(in Chinese)
    [20] WESTBROOK C K,DRYER F L.Simplified reaction mechanisms for the oxidation of hydrocarbon fuels in flames[J].Combustion Science and Technology,1981,27(1/2):31-43.
    [21] CHANG S C.A new approach for constructing highly stable high order CE/SE schemes[R].AIAA-2010-543,2010.
    [22] 张群,闫朝,严传俊,等.两相爆震波爆燃向爆震转变过程的数值模拟[J].计算机仿真,2008,25(2):9-12.
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出版历程
  • 收稿日期:  2020-01-12
  • 刊出日期:  2020-08-28

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