期刊文献+

不同工作因数下方波冲击射流的换热特性 被引量:2

Heat transfer characteristics of square wave impinging jets with different duty cycles
下载PDF
导出
摘要 应用数值模拟方法研究了不同工作因数下方波冲击射流的换热及流动特性,并分析了冲击靶面换热特性的变化规律。研究了冲击靶面换热特性随Reynolds数、脉冲频率、喷嘴距冲击靶面距离与喷嘴直径之比等参数的变化规律,重点分析了不同工作因数对冲击射流滞止区域换热与流动特性的影响,并将数值计算结果与连续冲击射流、脉动冲击射流实验结果进行对比验证。计算结果表明:当工作因数为0.5与0.7时,冲击靶面滞止区域Nusselt数非常接近;当工作因数为0.5时,壁面射流区域Nusselt数比工作因数为0.7时提高了10%;工作因数为0.9时,冲击靶面Nusselt数比连续冲击射流提高3%;工作因数为0.7时,相对于工作因数为0.5、0.9及连续冲击射流时,冲击靶面滞止区域存在强烈的涡结构变化。 The heat transfer and flow characteristics of square wave impinging jets under different duty cycles are studied by numerical simulation method.This paper presents the heat transfer characteristics of target varied with traditional variables such as Reynolds number,pulse frequency and jet to plate spacing.The heat transfer and flow characteristics in the stagnation area with different duty cycles are analyzed emphatically.The numerical result is verified with the experimental result of impinging jet and pulsating jet.The results show that in the stagnation area,with the duty cycles of 0.5 and 0.7,the Nusselt numbers are very closed to each other.In the wall jet region,the Nusselt number with duty cycle of 0.5 is improved by 10% than that with duty cycle of 0.7.The Nusselt number with duty cycle of 0.9 is improved by 3% than that of steady jet in the whole jet region.Under duty cycle of 0.7,the vortex structure movement is much stronger in the stagnation area,compared to that under duty cycles of 0.5 and 0.9,and steady jet.
出处 《化工学报》 EI CAS CSCD 北大核心 2013年第7期2428-2435,共8页 CIESC Journal
基金 国家重点基础研究发展计划项目(2011CB707203)~~
关键词 方波冲击射流 工作因数 换热特性 流动特性 square wave impinging jets duty cycle heat transfer characteristics flow characteristics
  • 相关文献

参考文献16

  • 1Mladin E C, Zumbrunnen D A. Local convective heat transfer to submerged pulsating jets [J]. International Journal of Heat and Mass Transfer, 1997, 40 (14): 3305-3321.
  • 2Mladin E C, Zumhrunnen D A. Alterations to coherent flow structures and heat transfer due to pulsations in an impinging air-let [J].International Journal of Thermal Science, 2000, 39 (2): 236-248.
  • 3Poh H J, Kumar K, Mujumdar A S. Heat transfer from a pulsed laminar impinging jet [ J ]. International Communications in Heat and Mass Transfer, 2005, 32 (10): 1317-1324.
  • 4Hofmann H M, Movileanu D L, Kind M, Martin H. Influence of a pulsation on heat transfer and flow structure in submerged impinging jets [J]. International Journal of Heat and Mass Transfer, 2007, 50 (17/18) 3638-3648.
  • 5冷浩,张西民,郭烈锦,马重芳.变压器油圆形浸没射流冲击换热特性[J].化工学报,2003,54(11):1505-1509. 被引量:7
  • 6Behera R C, Dutta P, Srinivasan K. Numerical study of interrupted impinging jets for cooling of electronics [J]. IEEE Transactions on Components and Packaging Technologies, 2007, 30 (2): 275-284.
  • 7Xu Peng, Yu Boming. Turbulent impinging jet heat transfer enhancement due to intermittent pulsation [ J ]. International Journal of Thermal Science, 2010, 49 (7) : 1247-1252.
  • 8Zumbrunnen D A, Aziz M. Convective heat transfer enhancement due to intermittency in an impinging jet [J]. Journal of Heat Transfer, 1993, 115 (1): 91-98.
  • 9Sheriff H S, Zumbrunnen D A. Effect of flow pulsations on the cooling effectiveness of an impinging jet [J]. Journal of Heat Transfer, 1994, 116 (4): 886-895.
  • 10Sheriff H S, Zumbrunnen D A. Dependence of heat transfer to a pulsating stagnation flows on pulsation characteristics [J]. Journal of Thermophysics and Heat Transfer, 1995, 9 (1): 181-192.

二级参考文献14

  • 1陈永昌,马重芳,雷道亨.微尺度平面射流冲击的强化传热实验研究[J].工程热物理学报,2001,22(S1):71-73. 被引量:3
  • 2[1]Leng Hao(冷浩),Zhang Ximin(张西民),Guo Liejin(郭烈锦),Ma Chongfang(马重芳).An Experimental Study on Recovery Effect of Impinging Circular Jets of Transformer Oil with Larger Reynolds Number.J.Eng.Thermophysics(工程热物理学报),2002,23(Suppl.):137-140
  • 3[2]Gardon R,Cobonque J. Heat Transfer Between a Flat Plate and Jets of Air Impinging on It.In:Int. Development in Heat Transfer.Proc. of the 2nd Int. Heat Transfer Conference.New York:ASME,1962.454-460
  • 4[3]Ma Chongfang, Zheng Qing, Ko S Y.Local Heat Transfer and Recovery Factor with Impinging Free-surface Circular Jets of Transformer Oil.Int. J. Heat Mass Transfer,1997,40(18):4295-4308
  • 5[4]Ma Chongfang,Zheng Qing, Gomi T. Impingement Heat Transfer and Recovery Effect with Submerged Jets of Large Prandtl Number Liquid*Ⅰ* Unconfined Circular Jets.Int.J.Heat Mass Transfer,1997,40(6):1481-1490
  • 6[6]Robert Gardon,Cahit Akfirat J.The Role of Turbulence in Determining the Heat-transfer Characteristics of Impinging Jet.Int.J.Heat Mass Transfer,1965,8:281-290
  • 7[7]Qin Man(秦曼),Zheng Qing(郑青),Ma Chongfang(马重芳),Lei Daoheng(雷道亨).Experimental Studies of Local Characteristics of Heat Transfer from a Simulated Microelectronic Chip to an Impinging Circular Dielectric Liquid Jet. J.Eng.Thermophysics(工程热物理学报),1996,17(1):69-74
  • 8[8]Lee X C, Ma C F.Numerical Study of Recovery Effect and Impingement Heat Transfer with Submerged Circular Jets of Large Prandtl Number Liquid.Int.J. Heat Mass Transfer,1997,40(11):2295-2308
  • 9[9]Li Deyu(李德玉).The Interaction Between Fluid Flow and Thermal Process in Recirculating Flow and Jet Impingement:[dissertation](学位论文).Beijing:Tsinghua University,1999
  • 10[10]Zhou Dingwei(周定伟).Single Phase Convection and Boiling Heat Transfer with Impinging Circular Jet of Highly-wetting Liquid:[dissertation](学位论文).Xi'an: Xi'an Jiaotong University,2000

共引文献12

同被引文献27

引证文献2

二级引证文献7

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