Pressure drop and heat transfer in packed beds with small tube-to-particle diameter ratio

被引:23
|
作者
Raichura, RC [1 ]
机构
[1] Univ London Queen Mary & Westfield Coll, Dept Engn, London E1 4NS, England
关键词
D O I
10.1080/089161599269627
中图分类号
O414.1 [热力学];
学科分类号
摘要
Measurements of overall voidage, velocity distribution, and pressure drop in cylindrical packed beds of spherical particles in, which the tube-to-particle diameter ranged from 5 to 50 and the particle Reynolds number ranged from 30 to 1,700 are reported. Owing to the change in the packing structure within the bed, the overall voidage decreases with increasing diameter ratio, becoming constant for values of the latter greater than about Id. After exit from the bed, the velocity distribution changes continuously with distance downstream of the bed, toward that typical of flow in an empty pipe. As such, measurements made above the bed are not truly representative of flow within the bed. The pressure drop across the bed can be correlated by the Ergun-type equation, but the coefficients in this equation vary with diameter ratio. These variations can be explained by considering the effect of the tube wall on the local packing structure. Results of measurements on the heat transfer from an electrically heated rod placed coaxially within an annular bed of spherical particles, to air flowing in an outer annulus external to the can containing the particles are presented for a range of channel Reynolds number between 4 x 10(3) and 1.7 x 10(4). The use of a porous can instead of a smooth, nonporous one results in an increase in the rate of heat transfer, and this effect increases with increasing Reynolds number.
引用
收藏
页码:309 / 327
页数:19
相关论文
共 50 条
  • [41] Impact of the Channel- to Particle-Diameter Ratio on the Liquid-Liquid Mass Transfer and Pressure Drop in Micro Packed Bed Reactors
    Zhou, Chu
    Chen, Yanfu
    Cheng, Dang
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2024, 63 (39) : 16885 - 16893
  • [42] Heat transfer to kerosene at supercritical pressure in small-diameter tube with large heat flux
    Hu, Zhihong
    Chen, Tingkuan
    Luo, Yushan
    Zheng, Jianxue
    Huagong Xuebao/Journal of Chemical Industry and Engineering (China), 2002, 53 (02): : 134 - 138
  • [43] Wall effect on pressure drop in packed beds
    Cheng, Nian-Sheng
    POWDER TECHNOLOGY, 2011, 210 (03) : 261 - 266
  • [44] Pressure drop and flooding in rotating packed beds
    Hendry, James R.
    Lee, Jonathan G. M.
    Attidekou, Pierrot S.
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2020, 151
  • [45] Particle Scale Study of Heat Transfer in Packed and Bubbling Fluidized Beds
    Zhou, Z. Y.
    Yu, A. B.
    Zulli, P.
    AICHE JOURNAL, 2009, 55 (04) : 868 - 884
  • [46] MASS-TRANSFER FROM WALL IN SMALL DIAMETER PACKED-BEDS
    OLBRICH, WE
    POTTER, OE
    CHEMICAL ENGINEERING SCIENCE, 1972, 27 (09) : 1733 - &
  • [47] Influence of Macroscopic Wall Structures on the Fluid Flow and Heat Transfer in Fixed Bed Reactors with Small Tube to Particle Diameter Ratio
    Eppinger, Thomas
    Jurtz, Nico
    Kraume, Matthias
    PROCESSES, 2021, 9 (04)
  • [48] Heat transfer and pressure drop in empty, baffled and packed tubes
    Colburn, AP
    Chilton, TH
    King, WJ
    TRANSACTIONS OF THE AMERICAN INSTITUTE OF CHEMICAL ENGINEERS, 1931, 26 : 166 - 207
  • [49] Influence of the packing structure on the flow through packed beds with small cylinder diameter to particle diameter ratios
    van der Merwe, W. J. S.
    du Toit, C. G.
    Kruger, J-H
    NUCLEAR ENGINEERING AND DESIGN, 2020, 365 (365)
  • [50] Experimental study of flow transitions in random packed beds with low tube to particle diameter ratios
    Yang, Jian
    Bu, Shanshan
    Dong, Qingtai
    Wu, Jiangquan
    Wang, Qiuwang
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2015, 66 : 117 - 126