Volume 35 Issue 12
Dec.  2020
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LOU Huangqiang, WEI Minxiang, LIU Rui. Experiment on spray characteristics of self-pressurized injector for aircraft piston engines,[J]. Journal of Aerospace Power, 2020, 35(12): 2583-2592. doi: 10.13224/j.cnki.jasp.2020.12.012
Citation: LOU Huangqiang, WEI Minxiang, LIU Rui. Experiment on spray characteristics of self-pressurized injector for aircraft piston engines,[J]. Journal of Aerospace Power, 2020, 35(12): 2583-2592. doi: 10.13224/j.cnki.jasp.2020.12.012

Experiment on spray characteristics of self-pressurized injector for aircraft piston engines,

doi: 10.13224/j.cnki.jasp.2020.12.012
  • Received Date: 2020-10-14
  • Publish Date: 2020-12-28
  • For the better application of the self-pressurized injector on aircraft piston engines, the spray characteristics of a self-pressurized injector was experimentally studied in a constant-volume vessel. Spray characteristics of RP-3 aviation kerosene under different ambient pressure, fuel temperature and ambient temperature were studied using visualization technology combining Matlab image processing program. Result showed that, the surface waves and fuel strings can be observed obviously under the ambient pressure of 0.1 MPa. With the ambient pressure increasing from 0.1 MPa to 0.8 MPa, the typical hollow cone spray was transformed into a hollow cone spray with large scale vortexes. The maximum spray penetration reduced by 45%, and the maximum spray area reduced by 55.3%, respectively. The increase of fuel temperature promotes spray evaporation to facilitate cold start. The spray penetration, area and cone angle were all minimum when the fuel temperature was 50 ℃. At the ambient pressure of 0.1 MPa, the spray penetration and area increased at first and then decreased with the increase of ambient temperature. The maximum spray penetration reached 67.3 mm at ambient temperature of 60 ℃, the maximum spray area reached 915.5 mm2 at ambient temperature of 50 ℃, respectively. The spray cone angle decreased with the increasing of ambient temperature, reaching the minimum value of 9.2° at ambient temperature of 90 ℃.

     

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  • [1]
    BOUKOBERINE M N,ZHOU Z,BENBOUZID M.A critical review on unmanned aerial vehicles power supply and energy management:solutions,strategies,and prospects[J].Applied Energy,2019,255:113823.1-113823.22.
    [2]
    GOH G D,AGARWALA S,GOH G L,et al.Additive manufacturing in unmanned aerial vehicles (UAVs):challenges and potential[J].Aerospace Science and Technology,2017,63:140-151.
    [3]
    MCGANN B,KIM K,LEE T,et al.Effect of the cetane number on jet fuel spray ignition at high-temperature and-pressure conditions[J].Energy and Fuels,2020,34(2):1337-1346.
    [4]
    王思奇,杨海青.航空重油发动机气助雾化喷嘴雾化机理仿真[J].内燃机学报,2018,36(2):127-135. WANG Siqi,YANG Haiqing.Simulation on atomization mechanism of air-assisted injector for aircraft heavy fuel engine[J].Transactions of CSICE,2018,36(2):127-135.(in Chinese)
    [5]
    WU M M,YANG Y X,XI D G,et al.Two-stroke engine with fuel semi-direct injection using FAI system[J].Applied Mechanics and Materials,2012,130/131/132/133/134:796-799.
    [6]
    杨海青,陈茂杰,黄丽萍,等.夹气喷嘴瞬态喷雾的 CFD仿真及试验[J].航空动力学报,2015,30(12):2897-2903. YANG Haiqing,CHEN Maojie,HUANG Liping,et al.CFD simulation and experiment of transient spray for an air-assisted injector[J].Journal of Aerospace Power,2015,30(12):2897-2903.(in Chinese)
    [7]
    白洪林,胡春明,侯圣智,等.空气辅助喷射煤油和汽油的喷雾特性对比[J].燃烧科学与技术,2015,21(5):428-434. BAI Honglin,HU Chunming,HOU Shengzhi,et al.Comparison of spray characteristics of air-assisted direct injector using kerosene and gasoline[J].Journal of Combustion Science and Technology,2015,21(5):428-434.(in Chinese)
    [8]
    HU J,LIU B,ZHANG C,et al.Experimental study on the spray characteristics of an air-assisted fuel injection system using kerosene and gasoline[J].Fuel,2019,235:782-794.
    [9]
    高宏力,张付军,刘波澜,等.空气辅助喷射闪急沸腾喷雾特性试验[J].航空动力学报,2019,34(1):63-72. GAO Hongli,ZHANG Fujun,LIU Bolan,et al.Experiment on spray characteristics of air-assisted injection under flash boiling conditions[J].Journal of Aerospace Power,2019,34(1):63-72.(in Chinese)
    [10]
    JI H,WEi M,LIU R,et al.Drive control simulation and experimental studies on the flow characteristics of a pump injector[J].IEEE Access,2020,8:35672-35681.
    [11]
    WINKLER F,OSWALD R,SCHOEGL O,et al.Characterization of different injection technologies for high performance two-stroke engines[R].SAE Technical Paper 2016-32-0001,2016.
    [12]
    JOHNSON J,DEN BRAVEN K R.Comparison of homogeneous,stratified and high-squish stratified combustion in a direct-injected two-stroke engine[R].SAE Technical Paper 2008-32-0030,2008.
    [13]
    NOURI J M,ABO-SERIE E,MARCHI A,et al.Internal and near nozzle flow characteristics in an enlarged model of an outwards opening pintle-type gasoline injector[R].London:the 3rd International Conference on Optical and Laser Diagnostics,2007.
    [14]
    XU H,WANG C,MA X,et al.Fuel injector deposits in direct-injection spark-ignition engines[J].Progress in Energy and Combustion Science,2015,50:63-80.
    [15]
    WU H,ZHANG F,ZHANG Z,et al.Experimental investigation on the spray characteristics of a self-pressurized hollow cone injector[J].Fuel,2020,272:117710.1-117710.13.
    [16]
    STRAUSS S,ZENG Y,MONTGOMERY D T.Optimization of the E-TECTM combustion system for direct-injected two-stroke engines toward 3-star emissions[J].SAE Transactions,2003,112(3):1962-1973.
    [17]
    ZHAO J,ZHAO B,WANG X,et al.Atomization performance and TG analysis of Fischer-Tropsch fuel compared with RP-3 aviation fuel[J].International Journal of Hydrogen Energy,2017,42(29):18626-18632.
    [18]
    OTSU N.A threshold selection method from gray-level histograms[J].IEEE Transactions on Systems,Man,and Cybernetics,1979,9(1):62-66.
    [19]
    张登.发动机喷雾油束图像特性参数软件开发的研究[D].西安:长安大学,2016. ZHANG Deng.Study on software development of image characteristic parameters of engine spray[D].Xi’an Chang’an University,2016.(in Chinese)
    [20]
    HUNG D L S,HARRINGTON D L,GANDHI A H,et al.Gasoline fuel injector spray measurement and characterization-a new SAE J2715 recommended practice[J].International Journal of Fuels and Lubricants,2009,1(1):534-548.
    [21]
    BEFRUI B,CORBINELLI G,ROBART D,et al.LES simulation of the internal flow and near-field spray structure of an outward-opening GDI injector and comparison with imaging data[R].SAE Technical Paper 2008-01-0137,2008.
    [22]
    RUBIO-GMEZ G,MARTNEZ-MARTNEZ S,RUA-MOJICA L F.Spray characterization of a piezo pintle-type injector for gasoline direct injection engines[J].London:the 3rd International Conference on Optical and Laser Diagnostics,2007.
    [23]
    TONINI S.Multi-phase flow modelling of fuel injection processes in direct injection diesel and gasoline engines[D].London:The City University London,2006.
    [24]
    MARCHI A,NOURI J M,YAN Y,et al.Internal flow and spray characteristics of pintle-type outwards opening piezo injectors for gasoline direct-injection engines[J].SAE Transactions,2007,116(3):915-934.
    [25]
    SAUTER W,PFEIL J,VELJI A,et al.Application of particle image velocimetry for investigation of spray characteristics of an outward opening nozzle for gasoline direct injection[R].SAE Technical Paper 2006-01-3377,2006.
    [26]
    SKOGSBERG M,DAHLANDER P,DENBRATT I.Spray shape and atomization quality of an outward-opening piezo gasoline DI injector[R].SAE Technical Paper 2007-01-1409,2007.
    [27]
    LIU Y,PEI Y,PENG Z,et al.Spray development and droplet characteristics of high temperature single-hole gasoline spray[J].Fuel,2017,191:97-105.
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