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

受限式阵列射流冲击传热的试验和数值研究

李勇 张劲 张迎春 张嘉杰 马素霞 谢公南

李勇, 张劲, 张迎春, 张嘉杰, 马素霞, 谢公南. 受限式阵列射流冲击传热的试验和数值研究[J]. 应用数学和力学, 2025, 46(10): 1233-1244. doi: 10.21656/1000-0887.460047
引用本文: 李勇, 张劲, 张迎春, 张嘉杰, 马素霞, 谢公南. 受限式阵列射流冲击传热的试验和数值研究[J]. 应用数学和力学, 2025, 46(10): 1233-1244. doi: 10.21656/1000-0887.460047
LI Yong, ZHANG Jin, ZHANG Yingchun, ZHANG Jiajie, MA Suxia, XIE Gongnan. Experimental and Numerical Study of Impingement Heat Transfer in Confined Array Jets[J]. Applied Mathematics and Mechanics, 2025, 46(10): 1233-1244. doi: 10.21656/1000-0887.460047
Citation: LI Yong, ZHANG Jin, ZHANG Yingchun, ZHANG Jiajie, MA Suxia, XIE Gongnan. Experimental and Numerical Study of Impingement Heat Transfer in Confined Array Jets[J]. Applied Mathematics and Mechanics, 2025, 46(10): 1233-1244. doi: 10.21656/1000-0887.460047

受限式阵列射流冲击传热的试验和数值研究

doi: 10.21656/1000-0887.460047
基金项目: 

山西省基础研究计划青年基金(202203021212263);山西省回国留学人员科研资助项目(2023-055;2023-143);教育部“春晖计划”合作科研项目(202200075)

详细信息
    作者简介:

    李勇(1987—),男,讲师,硕士生导师(通讯作者. E-mail: yongli@tyut.edu.cn);张劲(2000—),男,硕士生(E-mail: 2023520639@link.tyut.edu.cn).

    通讯作者:

    李勇(1987—),男,讲师,硕士生导师(通讯作者. E-mail: yongli@tyut.edu.cn)

  • 中图分类号: O35

Experimental and Numerical Study of Impingement Heat Transfer in Confined Array Jets

  • 摘要: 阵列射流是提高微型通道或狭小空间内传热性能的有效方法.借助试验研究和数值仿真方法,从靶面温度分布、流场信息和全局Nusselt数等角度,探究了射流高度/射流间距(Z/dj=0.60~1.67)这一无量纲参数对多股射流冲击流动传热的影响规律.结果表明:当射流孔数目为奇数时,流体之间的相互作用力越发平衡;当总流量不变时,射流孔数目越少,冷却效果越好;当射流间距较小时,射流会出现明显偏移.随着射流间距的增大,流动结构的对称性逐渐恢复,射流之间的相互作用减弱,受热面温度分布和流体速度分布更加均匀.多股射流的流动传热性能受Z和dj的共同影响,Z/dj对2个和3个射流孔下Nusselt数分布影响差异性较小,其中Z/dj值分别为1.67和1.25时Nusselt数达到峰值.该文的研究结论有助于优化多股射流结构,进一步提升多股射流的换热性能.
  • 张瑞, 张延胜, 陈冬, 等. 射流倾斜角度对热轧无缝钢管冷却均匀性的影响[J]. 轧钢, 2021,38(5): 48-53.

    (ZHANG Rui, ZHANG Yansheng, CHEN Dong, et al. Effect of jet tilt angle on cooling uniformity of hot rolled seamless steel pipe[J].Steel Rolling,2021,38(5): 48-53. (in Chinese))
    [2]张颖翀, 王川, 陈欣欣, 等. 不同冲击高度下斜向淹没冲击射流的研究分析[J]. 灌溉排水学报, 2020,39(12): 71-77. (ZHANG Yingchong, WANG Chuan, CHEN Xinxin, et al. Operation of oblique submerged jet impingement as impacted by impingement height[J].Journal of Irrigation and Drainage,2020,39(12): 71-77. (in Chinese))
    [3]李航, 王宗勇, 刘家栋, 等. 管内中心多股射流轴向间距对传热性能影响的模拟研究[J]. 石油化工, 2022,51(3): 310-316. (LI Hang, WANG Zongyong, LIU Jiadong, et al. Simulation study on the effect of axial distance of multi-jet on heat transfer performance inside tubes[J].Petrochemical Technology,2022,51(3): 310-316. (in Chinese))
    [4]禹言芳, 李春晓, 孟辉波, 等. 不同形状喷嘴的射流流动与卷吸特性[J]. 过程工程学报, 2014,14(4): 549-555. (YU Yanfang, LI Chunxiao, MENG Huibo, et al. Flow and entrainment characteristics of jet from different shape nozzles[J].The Chinese Journal of Process Engineering,2014,14(4): 549-555. (in Chinese))
    [5]DU S, AL-RASHED A A A A, BARZEGAR GERDROODBARY M, et al. Effect of fuel jet arrangement on the mixing rate inside trapezoidal cavity flame holder at supersonic flow[J].International Journal of Hydrogen Energy,2019,44(39): 22231-22239.
    [6]郑杰, 张雅荣, 窦益华, 等. 微尺度阵列射流冲击流动与换热特性研究[J]. 汽轮机技术, 2016,58(6): 427-430. (ZHENG Jie, ZHANG Yarong, DOU Yihua, et al. Study on micro-scale jet array impingement flow and heat transfer characteristics[J].Turbine Technology,2016,58(6): 427-430. (in Chinese))
    [7]NGUYEN M, BOUSSUGE J F, SAGAUT P, et al. Large eddy simulation of a row of impinging jets with upstream crossflow using the lattice Boltzmann method[J].International Journal of Heat and Mass Transfer,2023,212: 124256.
    [8]陈晓丹, 刘华飞, 李伟. 多排密集圆孔气体冲击射流换热的实验研究[J]. 工业炉, 2016,38(2): 19-23. (CHEN Xiaodan, LIU Huafei, LI Wei. Experimental investigation of multiply intensive circular air impingement jets heat transfer[J].Industrial Furnace,2016,38(2): 19-23. (in Chinese))
    [9]徐惊雷, 徐忠, 张堃元, 等. 冲击高度对自由冲击射流影响的实验研究[J]. 力学与实践, 2002,24(1): 21-25. (XU Jinglei, XU Zhong, ZHANG Kunyuan, et al. Experimental study of the effect of the nozzle-to-plate space on the free turbulent impinging jet flow[J].Mechanics and Engineering,2002,24(1): 21-25. (in Chinese))
    [10]PAWAR S, PATEL D K. The impingement heat transfer data of inclined jet in cooling applications: a review[J].Journal of Thermal Science,2020,29(1): 1-12.
    [11]SHAH S. Numericalanalysis of heat transfer between multiple jets and flat moving surface[J].International Journal of Heat and Mass Transfer,2021,171: 121088.
    [12]OTERO-PEREZ J J, SANDBERG R D, MIZUKAMI S, et al. High-fidelity simulations of multi-jet impingement cooling flows[J].Journal of Turbomachinery,2021,143(8): 081011.
    [13]马朝, 严超, 曹学伟, 等. 阵列空气射流传热均匀性问题的数值研究[J]. 工程热物理学报, 2016,37(11): 2378-2384. (MA Zhao, YAN Chao, CAO Xuewei, et al. Numerical study on array air jet heat transfer uniformity[J].Journal of Engineering Thermophysics,2016,37(11): 2378-2384. (in Chinese))
    [14]李勇, 张迎春, 付虞, 等. NACA0021和NACA4822翼型肋通道中环境空气流动传热特性的实验研究[J]. 应用数学和力学, 2024,45(5): 594-605. (LI Yong, ZHANG Yingchun, FU Yu, et al. Experimental study on flow and heat transfer characteristics of ambient air in NACA0021and NACA4822 airfoil-fin channels[J].Applied Mathematics and Mechanics,2024,45(5): 594-605. (in Chinese))
    [15]LI Y, ZHOU Q, ZHANG Y, et al. Insight into jet-regeneration composite cooling technology employed in scramjet: significance of relative positions of two jet holes[J].International Journal of Heat and Mass Transfer,2024,219: 124858.
    [16]石宏岩, 刘捷, 卢文强. 水平紧密接触品字形三圆管自然对流换热的数值模拟[J]. 中国科学院大学学报, 2018,35(5): 595-601. (SHI Hongyan, LIU Jie, LU Wenqiang. Numerical simulation of laminar natural convection heat transfer from three horizontal attached cylinders[J].Journal of University of Chinese Academy of Sciences,2018,35(5): 595-601. (in Chinese))
    [17]刘凯, 陈叔平, 赵国锋, 等. 基于流固耦合传热的液氢管道流动特性仿真研究[J]. 真空与低温, 2024:30(5): 580-588. (LIU Kai, CHEN Shuping, ZHAO Guofeng, et al. Simulation study on flow characteristics of liquid hydrogen pipeline based on fluid-solid coupling heat transfer[J].Vacuum and Cryogenics,2024,30(5): 580-588. (in Chinese))
  • 加载中
计量
  • 文章访问数:  25
  • HTML全文浏览量:  5
  • PDF下载量:  3
  • 被引次数: 0
出版历程
  • 收稿日期:  2025-03-11
  • 修回日期:  2025-04-10
  • 网络出版日期:  2025-11-13

目录

    /

    返回文章
    返回