留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

正庚烷液滴在微细直管中的燃烧特性实验

姚荣 李军伟 邱佐祯 黄景怀 王宁飞

姚荣, 李军伟, 邱佐祯, 黄景怀, 王宁飞. 正庚烷液滴在微细直管中的燃烧特性实验[J]. 航空动力学报, 2015, 30(9): 2129-2139. doi: 10.13224/j.cnki.jasp.2015.09.011
引用本文: 姚荣, 李军伟, 邱佐祯, 黄景怀, 王宁飞. 正庚烷液滴在微细直管中的燃烧特性实验[J]. 航空动力学报, 2015, 30(9): 2129-2139. doi: 10.13224/j.cnki.jasp.2015.09.011
YAO Rong, LI Jun-wei, QIU Zuo-zhen, HUANG Jing-huai, WANG Ning-fei. Experiment on combustion characteristics of n-heptane droplets in micro-tube[J]. Journal of Aerospace Power, 2015, 30(9): 2129-2139. doi: 10.13224/j.cnki.jasp.2015.09.011
Citation: YAO Rong, LI Jun-wei, QIU Zuo-zhen, HUANG Jing-huai, WANG Ning-fei. Experiment on combustion characteristics of n-heptane droplets in micro-tube[J]. Journal of Aerospace Power, 2015, 30(9): 2129-2139. doi: 10.13224/j.cnki.jasp.2015.09.011

正庚烷液滴在微细直管中的燃烧特性实验

doi: 10.13224/j.cnki.jasp.2015.09.011
基金项目: 

国家自然科学基金(50906004)

详细信息
    作者简介:

    姚荣(1989-),男,甘肃张掖人,硕士生,主要从事发动机燃料燃烧研究.

  • 中图分类号: V219

Experiment on combustion characteristics of n-heptane droplets in micro-tube

  • 摘要: 为了解微细直管对液滴形成和燃烧稳定性的影响,采用正庚烷作为燃料在内径为4mm的石英直管中的进行了实验研究.其结果显示:首先在不加热时,容易形成液滴,正庚烷体积流量小于40μL/min 时,火焰稳定性受液滴滴落的影响较大,液滴的蒸发主要受到空气体积流量影响下的火焰位置的影响;大于40μL/min时,液膜形成,火焰受液滴滴落影响不大.其次,管壁加热温度为180℃时,正庚烷体积流量低于60μL/min时难以形成液滴,大于60μL/min时液滴滴落后不形成液膜,液滴的蒸发受空气流速的影响较大,在液滴滴落以及空气流速的影响下,微燃烧器温度的变化对燃料的蒸发产生更大的影响,富燃较贫燃更易形成连续的火焰.空气流速大小对管壁温度影响明显,空气流速越小,管壁温度越高,液滴蒸发速率越大.

     

  • [1] JU Yiguang,Maruta K.Microscale combustion:technology development and fundamental research[J].Progress in Energy and Combustion Science,2011,37(6):669-715.
    [2] Maruta K.Micro and mesoscale combustion[J].Proceedings of the Combustion Institute,2011,33(1):125-150.
    [3] 万建龙,范爱武,刘毅,等.固体材料对微型钝体燃烧器吹熄极限的影响[J].化工学报,2014,65(3):1012-1017. WAN Jianlong,FAN Aiwu,LIU Yi,et al.Effects of solid material on blow-off limit in micro bluff body combustor[J].CIESC Journal,2014,65(3):1012-1017.(in Chinese)
    [4] London A P,Ayon A A,Epstein A H,et al.Microfabrication of a high pressure bipropellant rocket engine[J].Sensors and Actuators A:Physical,2001,92(1/2/3):351-357.
    [5] Kim N I,Kato S,Kataoka T,et al.Flame stabilization and emission of small Swiss-roll combustors as heaters[J].Combustion and Flame,2005,141(3):229-240.
    [6] Maruta K,Kataoka T,Kim N I,et al.Characteristics of combustion in a narrow channel with a temperature gradient[J].Proceedings of the Combustion Institute,2005,30(2):2429-2436.
    [7] LI Junwei,ZHONG Beijing.Experimental investigation on heat loss and combustion in methane/oxygen micro-tube combustor[J].Applied Thermal Engineering,2008,28(7):707-716.
    [8] 王国锋,钟北京,唐皇哉.微细通道中甲烷与氧气的预混燃烧[J].燃烧科学与技术,2006,12(2):97-100. WANG Guofeng,ZHONG Beijing,TANG Huangzai.Micro methane-oxygen premixed combustion in micro-scale tube[J].Journal of Combustion Science and Technology,2006,12(2):97-100.(in Chinese)
    [9] Sirignano W A,Pham T K,Dunn-Rankin D.Miniature-scale liquid-fuel-film combustor[J].Proceedings of the Combustion Institute,2002,29(1):925-931.
    [10] Mikami M,Maeda Y,Matsui K,et al.Combustion of gaseous and liquid fuels in meso-scale tubes with wire mesh[J].Proceedings of the Combustion Institute,2013,34(2):3387-3394.
    [11] Abramzon B,Sirignano W A.Droplet vaporization model for spray combustion calculations[J].International Journal of Heat and Mass Transfer,1989,32(9):1605-1618.
    [12] Burger M,Schmehl R,Prommersberger K,et al.Droplet evaporation modeling by the distillation curve model:accounting for kerosene fuel and elevated pressures[J].International Journal of Heat and Mass Transfer,2003,46(23):4403-4412.
    [13] Hallett W L H,Clark N A.A model for the evaporation of biomass pyrolysis oil droplets[J].Fuel,2006,85(4):532-544.
    [14] Abou Al-Sood M M,Birouk M.A numerical study of the effect of turbulence on mass transfer from a single fuel droplet evaporating in a hot convective flow[J].International Journal of Thermal Sciences,2007,46(8):779-789.
    [15] Kitano T,Nishio J,Kurose R,et al.Effects of ambient pressure,gas temperature and combustion reaction on droplet evaporation[J].Combustion and Flame,2014,161(2):551-564.
    [16] ZHOU Zhifu,WANG Guoxiang,CHEN Bin,et al.Evaluation of evaporation models for single moving droplet with a high evaporation rate[J].Powder Technology,2013,240:95-102.
    [17] 黄勇,林宇震.燃烧与燃烧室[M].北京:北京航空航天大学出版社,2006.
    [18] 孙慧娟,张海滨,白博峰.高温燃气中单个液滴的蒸发特性[J].西安交通大学学报,2008,42(7):833-837. SUN Huijuan,ZHANG Haibin,BAI Bofeng.Evaporation investigation of single droplet in high temperature fuel gas[J].Journal of Xi'an Jiaotong University,2008,42(7):833-837.(in Chinese)
    [19] Lefebvre A.Atomization and sprays[M].New York:CRC Press,1988.
    [20] Sazhin S S,Abdelghaffar W A,Sazhina E M,et al.Models for droplet transient heating:effects on droplet evaporation,ignition,and break-up[J].International Journal of Thermal Sciences,2005,44(7):610-622.
    [21] Chin J,Lefebvre A.The role of the heat-up period in fuel drop evaporation[R].AIAA 83-0068,1983.
    [22] Poling B E,Praustiz J M,O'connel J P.The properties of gases and liquids[M].New York:McGraw-Hil,2000.
    [23] Ludwig E E.Applied process design for chemical and petrochemical plants:Volume 2[M].Houston:Gulf Professional Publishing,1997.
    [24] Incropera F P,Lavine A S,DeWitt D P.Fundamentals of heat and mass transfer[M].New York:John Wiley and Sons,2011.
  • 加载中
计量
  • 文章访问数:  1122
  • HTML浏览量:  121
  • PDF量:  670
  • 被引次数: 0
出版历程
  • 收稿日期:  2014-03-10
  • 刊出日期:  2015-09-28

目录

    /

    返回文章
    返回