期刊文献+

微气泡发射沸腾形成机理 被引量:1

Formation mechanism of microbubble emission boiling
原文传递
导出
摘要 为了探究具有超高换热性能的微气泡发射沸腾现象的形成机理,采用FLUENT软件对加热面上单个气膜周围的速度场进行数值模拟,并与实验结果进行对比.实验结果表明,对于水,微气泡发射沸腾现象发生时,加热壁面上会出现气膜破裂的过程,并且过冷度和壁面过热度的升高会加剧这一过程.对于酒精,微气泡发射沸腾现象很难发生.计算结果表明,在过冷条件下气膜周围存在marangoni对流,对于水而言,过冷度和壁面过热度的升高会增强气膜周围的marangoni对流过程,而在酒精气膜周围marangoni对流相对较弱.因此由气膜周围强烈的marangoni对流过程引起的气液界面上的扰动可能造成气膜破裂,这可能是微气泡发射沸腾现象形成的原因之一. In order to explore the mechanism of microbubble emission boiling with high heat transfer performance,numerical simulations were conducted for the velocity field around a single film on the heating surface with the software of FLUENT,and then compared with experimental results.Experimental results indicate that there exists the collapse of film on the heating surface as for water when microbubble emission boiling occurs,and the increase of subcooling and wall superheat would enhance the collapse of film.However, as for ethanol,microbubble emission boiling hardly occurs.Simulation results indicate that there exists marangoni convection around the film under subcooled condition.Moreover,increase of subcooling and surface superheat could enhance marangoni convection around film of water.However,marangoni convection is rather weak near the film of ethanol.Therefore,the disturbance caused by strong marangoni convection near the film at the interface of air and liquid may lead to the collapse of film.This may be one of the reasons triggering microbubble emission boiling.
出处 《航空动力学报》 EI CAS CSCD 北大核心 2014年第4期777-782,共6页 Journal of Aerospace Power
基金 教育部中央高校科研专项基金(HEUCFZ1122) 核安全与仿真技术国防重点学科实验室基金(HEUFN1102)
关键词 临界热流密度 微气泡发射沸腾 过冷沸腾 marangoni对流 气膜破裂 critical heat flux microbubble emission boiling subcooled boiling marangoni convection collapse of film
  • 相关文献

参考文献17

  • 1Inada S, Miyasaka Y, Izumi R, et al. A study on boiling curves in subcooled pool boiling: 1st report an effect o{ liq- uid subeooling on local heat transfer[J]. Transaction of Ja- pan Society of Mechanical Engineers, 1981,47 (417) 852- 861. (in Japanese).
  • 2Inada S,Miyasaka Y,Sakumoto S,et al. A study on boiling curves in subcooled pool boiling 2nd report an effect of contamination of surface on boiling heat transfer and col- lapse vapor slug[J]. Transaction of Japan Society of Me- chanical Engineers, 1981,47 (422) : 2021-2029. (in Japanese).
  • 3Inada S, Miyasaka Y, Izumi R. A study on boiling curves in subcooled pool boiling:3rd report behaviors of bubble clus- ter and temperature fluctuations of heating surface [J]. Transaction o[ Japan Society of Mechanical Engineers, 1981,47(42) :2030-2041. (in Japanese).
  • 4Inada S, Miyasaka Y, Izumi R, et al. A study on boilingcurves in subcooled pool boiling: 4th report heat transfer mechanism in transition boiling[J]. Transaction of Japan Society of Mechanical Engineers, 1981,47 (423) : 2199-2208. (in Japanese).
  • 5Suzuki K,Inagaki F, Hong C. Subcooled boiling in the ul- trasonic field:on the cause of microbubble emission boiling [J]. Heat Transfer Engineering,2011,32(7/8):673-682.
  • 6Tange M,Yuasa M,Takagi S,et al. Microbubbles emission flow boiling in a microchannel and miniehannel [R]. New York.-International Conference on Microchannels and Miniehannels, 2004.
  • 7Tartge M,Watanabe M,Takagi S,et al. Mierobuhble emis- sion boiling in a rectangular channel flow[R]. Toronto, Canada: International Conference on Microchannels and Miniehannels, 2005.
  • 8WANG Guodong, CHENG Ping. Subcooled flow boiling and mierobubble emission boiling phenomena in a partially heated microchannel [J]. International Journal otF Heat Mass Transfer,2009,52(1) :79-91.
  • 9Suzuki K,Saitoh H, Matsumoto K. High heat flux cooling by microbubble emission boiling [J]. Annuals o the New York Academy of Sciences,2002,974(1) :364 377.
  • 10Nomura T, Shustov M, Suzuki K, et al. Subeooled flow boiling in mini and micro channel contribution toward high heat flux cooling technology for electronics [R]. San Fran cisco, US International Electronic Packaging TechnicalConference and Exhibition,2009.

二级参考文献10

  • 1Forster H K,Greif R. Heat transfer to a boiling liquid, mechanism and correlations[J]. Trans. ASME,J. Heat Transfer, 1959,81 : 43-53.
  • 2Forster H K, Zuber N. Dynamics of vapor bubbles and boiling heat transfer[J].AIChE J, 1955,1 : 531-535.
  • 3Rusanov K V,Shcherbakova N S. Effect of reduced gravity and weightlessness on vapor bubble dynamics and heat transfer in boiling liquid [J]. Low Temp. Phys. , 1998, 24:100 -115.
  • 4Christopher D M,Wang B X,Peng X F. Flow field around a condensing and evaporating vapor bubble in microgravity[C]//Proc. Molecular and Microscale Heat Transfer in Material Processing and Other Applications. Yokohama, Japan:Internation Centere for Heat and Mass Transfer, 1996,Part 2:162 -170.
  • 5Wang H, Peng X F, Lin W K, et al. Bubble top jet flow on microwires [J]. Int. J. Heat and Mass Transfer, 2004,47: 2891 -2900.
  • 6Wang H,Christopher D M,Peng X F. Jet flows from bubbles during subcooled pool boiling on micro wires [J]. Science in China Series E Engineering & Materials Science, 2005,48: 385-402.
  • 7Wang H,Peng X F, Christopher D M, et al. Investigation of bubble-top jet flow during subcooled boiling on wires[J].Int. J. Heat and Fluid Flow,2005,26: 485-494.
  • 8Lu J F,Peng X F. Bubble jet flow formation during boiling of subeooled water on fine wires [J]. Int. J. Heat and Mass Transfer, 2007,50 : 3966-3976.
  • 9Carey V P. Liquid vapor phase transition phenomena [M]. New York: Hemisphere Publishing House, 1992.
  • 10王昊,彭晓峰.加热丝上核态沸腾时汽泡间的热相互作用[J].航空动力学报,2002,17(2):240-245. 被引量:3

共引文献5

同被引文献3

引证文献1

二级引证文献4

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部