Volume 30 Issue 4
Apr.  2015
Turn off MathJax
Article Contents
SHI Xiao-juan, JI Hong-hu. Infrared radiation characteristics of axisymmetrical ejector convergent nozzle in turbofan engine[J]. Journal of Aerospace Power, 2015, 30(4): 784-792. doi: 10.13224/j.cnki.jasp.2015.04.003
Citation: SHI Xiao-juan, JI Hong-hu. Infrared radiation characteristics of axisymmetrical ejector convergent nozzle in turbofan engine[J]. Journal of Aerospace Power, 2015, 30(4): 784-792. doi: 10.13224/j.cnki.jasp.2015.04.003

Infrared radiation characteristics of axisymmetrical ejector convergent nozzle in turbofan engine

doi: 10.13224/j.cnki.jasp.2015.04.003
  • Received Date: 2013-11-27
  • Publish Date: 2015-04-28
  • The infrared radiation (IR) characteristics of axisymmetrical ejector convergent nozzle in turbofan engine were investigated with the method of numerical simulation. The flow fields of exhaust systems were calculated with commercial software, while the IR characteristics were calculated with self-developed software NUAA-IR. The IR characteristics of 3-5μm waveband of axisymmetrical convergent nozzle and ejector convergent nozzle and the IR contributions of different solid walls in the nozzles on different detection directions were calculated and analyzed. The results show that the infrared suppression of ejector convergent nozzle mainly lies in the mixing of plume and environment atmosphere, helping to minimize the length of the plume, and then reducing the IR of gas. The shielding and cooling effect of ejector convergent nozzle on the nozzle's solid walls is very small, and this effect is effective only to the medium and low temperature walls such as main duct wall and inner wall of bypass duct at the azimuth angles greater than 20 degree. The total integral IR intensity of ejector convergent nozzle is less than that of the convergent nozzle except in the azimuth angles of 0 to 15 degree where these two nozzles' total integral IR intensities are nearly equal. The maximum reduction amplitude is about 34% at the azimuth angles of 40 degree.

     

  • loading
  • [1]
    Huddleston S C, Wilsted H D, Ellis C W.Performance of several air ejectors with conical mixing sections and small secondary flow rates[R].NACA RM E8D23, 1948.
    [2]
    Ellis C W, Hollister D P, Sargent A F, et al.Preliminary investigation of cooling-air ejector performance at pressure ratios from 1 to 10[R].NACA RM E51H21, 1951.
    [3]
    Greathouse W K, Hollister D P.Preliminary air-flow and thrust calibrations of several conical cooling-air ejectors with a primary to secondary temperature ratio of 1.0:Ⅰ diameter ratios of 1.21 and 1.10[R].NACA RM E52E21, 1952.
    [4]
    Greathouse W K, Hollister D P.Preliminary air-flow and thrust calibrations of several conical cooling-air ejectors with a primary to secondary temperature ratio of 1.0:Ⅱ diameter ratios of 1.06 and 1.40[R].NACA RM E52F26, 1952.
    [5]
    Greathouse W K, Hollister D P.Air-flow and thrust characteristics of several cylindrical cooling-air ejectors with a primary to secondary temperature ratio of 1.0[R].NACA RM E52L24, 1953.
    [6]
    Huntley S C, Yanowitz H.Pumping and thrust characteristics of several divergent cooling-air ejectors and comparison of performance with conical and cylindrical ejectors[R].NACA RM E53J13, 1954.
    [7]
    Trout A M, Papell S S, Povolny J H.Internal performance of several divergent-shroud ejector nozzles with high divergence angles[R].NACA RM E57F13, 1957.
    [8]
    Anderson B H.Computer program for calculating the flow field of supersonic ejector nozzles[R].NASA TN D-7602, 1974.
    [9]
    何慧姗, 钱翼稷.引射喷管的气动性能和传热计算[J].北京航空航天大学学报, 1996, 22(4):415-420. HE Huishan, QIAN Yiji.Calculation of aerodynamic performance and heat transfer of an ejector nozzle[J].Journal of Beijing University of Aeronautics and Astronautics, 1996, 22(4):415-420.(in Chinese)
    [10]
    王洪烈.超音速引射喷管的理论计算方法[J].航空发动机, 1991(5):30-41.
    [11]
    刘毅, 王新月, 熊剑.偏心距引射喷管气动性能研究[J].科学技术与工程, 2011, 11(14):3241-3247. LIU Yi, WANG Xinyue, XIONG Jian.The investigation on performance of eccentric coannular nozzles[J].Science Technology and Engineering, 2011, 11(14):3241-3247.(in Chinese)
    [12]
    孙志强, 杨青真, 陈立海, 等.涡扇发动机引射喷管的红外辐射特性数值研究[J].航空工程进展, 2012, 3(1):92-97. SUN Zhiqiang, YANG Qingzhen, CHEN Lihai, et al.Numerical simulation on the infrared radiation characteristics of turbofan engine's ejector nozzle[J].Advances in Aeronautical Science and Engineering, 2012, 3(1):92-97.(in Chinese)
    [13]
    刘福城, 吉洪湖, 林兰之, 等.二元引射喷管几何特征参数对推力及红外特性的影响[J].航空动力学报, 2011, 26(6):1244-1250. LIU Fucheng, JI Honghu, LIN Lanzhi, et al.Impact of geometry parameters on the thrust and infrared radiation characteristics of two-dimensional ejector nozzle[J].Journal of Aerospace Power, 2011, 26(6):1244-1250.(in Chinese)
    [14]
    斯仁, 吉洪湖, 刘福城, 等.二元引射喷管高空性能及对无人机红外抑制的数值研究[J].航空动力学报, 2014, 29(1):42-50. SI Ren, JI Honghu, LIU Fucheng, et al.Investigation of thrust characteristics of the two-dimensional ejector nozzle and infrared characteristics of the UAV[J].Journal of Aerospace Power, 2014, 29(1):42-50.(in Chinese)
    [15]
    额日其太, 王强, 吴寿生, 等.喷管超音段壁面排气引射冷却方案气动特性研究[J].航空动力学报, 2001, 16(4):376-380. Eriqitai, WANG Qiang, WU Shousheng, et al.Aerodynamic performance investigation of exhaust nozzles with ejector pumping and cooling on divergent wall[J].Journal of Aerospace Power, 2001, 16(4):376-380.(in Chinese)
    [16]
    额日其太, 王强, 吴寿生, 等.喷管超声段壁面冷却热态试验研究[J].推进技术, 2001, 22(4):322-325. Eriqitai, WANG Qiang, WU Shousheng, et al.Hot-air experimental investigation of cooling applicable to exhaust nozzles[J].Journal of Propulsion Technology, 2001, 22(4):322-325.(in Chinese)
    [17]
    黄伟, 吉洪湖, 斯仁, 等.涡扇发动机排气系统红外特征[J].推进技术, 2010, 31(6):745-750. HUANG Wei, JI Honghu, SI Ren, et al.Infrared characteristics calculating of turbofan engine exhaust system[J].Journal of Propulsion Technology, 2010, 31(6):745-750.(in Chinese)
    [18]
    施小娟, 吉洪湖, 斯仁, 等.涡扇发动机轴对称分开和混合排气系统红外辐射特征的对比[J].航空动力学报, 2013, 28(8):1702-1710. SHI Xiaojuan, JI Honghu, SI Ren, et al.Comparative investigation of infrared radiation characteristics of axisymmetrical individual and mixing exhaust systems in turbofan engine[J].Journal of Aerospace Power, 2013, 28(8):1702-1710.(in Chinese)
    [19]
    Ludwig C B, Malkmus W, Reardon J E, et al.Handbook of infrared radiation from combustion gases[R].NASA-SP-3080, 1973.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1735) PDF downloads(911) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return