A new design approach for the acceleration region of vertical, dilute-phase pneumatic conveyors

被引:0
|
作者
Wheeldon, John M. [1 ]
Baeyens, Jan [2 ,3 ]
Li, Shuo [3 ]
Deng, Yimin [2 ]
机构
[1] European Powder & Proc Technol, Longfellow Dr, Kettering, England
[2] Katholieke Univ Leuven, Proc & Environm Technol Lab, Dept Chem Engn, St Katelijne Waver, Belgium
[3] Beijing Univ Chem Technol, Beijing Adv Ctr Smart Matter Sci & Engn, Beijing, Peoples R China
关键词
Dilute-phase; vertical pneumatic conveying; acceleration region; pressure drops; particulate materials; ESTABLISHED FLOW REGION; SOLID PARTICLE-VELOCITY; PRESSURE-DROP; SUSPENSION FLOW; TRANSPORT; LENGTH; MODEL; SHAPE;
D O I
10.1080/02726351.2022.2116373
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
An analysis has been completed for a comprehensive set of pressure drop data from the acceleration region of seven vertical, dilute-phase pneumatic conveyors. The data provided are for materials with terminal velocities from 2.05 to 22.4 m/s conveyed in risers with heights from 3 to 11.2 m and internal diameters from 0.028 to 0.083 m. Particle velocities derived from the pressure drop data were used to develop an equation of motion that includes terms for terminal velocity, and the distance traveled from the feed point. Despite covering a range of conditions, no effect of other variables was identified. Particle velocities were predicted by the equation of motion and used to calculate total pressure gradients that are within 97 Pa/m (95% confidence limits) of the measured values. The voidage correction of gas and terminal velocities recommended by other studies did not improve the pressure drop predictions. The spreadsheet model developed is simpler than the available complex numerical models and provides more accurate results. Acceleration lengths are longer than allowed for in many studies, and erstwhile established-flow data and correlations likely contain acceleration effects.
引用
收藏
页码:460 / 473
页数:14
相关论文
共 50 条
  • [1] A new design approach for the established flow region of vertical, dilute-phase pneumatic conveyors
    Wheeldon, John M.
    Baeyens, Jan
    Li, Shuo
    Deng, Yimin
    PARTICUOLOGY, 2022, 66 : 10 - 20
  • [2] A re-evaluation of design equations for the established flow region of vertical dilute-phase pneumatic conveyors
    Wheeldon, J. M.
    POWDER TECHNOLOGY, 2018, 336 : 516 - 526
  • [3] Computational model for prediction of particle degradation during dilute-phase pneumatic conveying: modeling of dilute-phase pneumatic conveying
    Chapelle, P
    Christakis, N
    Abou-Chakra, H
    Bridle, I
    Bradley, MSA
    Patel, M
    Cross, M
    ADVANCED POWDER TECHNOLOGY, 2004, 15 (01) : 31 - 49
  • [4] Air movers for dilute-phase pneumatic conveying
    Liu, Gary
    Chemical Engineering (United States), 2019, 126 (10): : 56 - 62
  • [5] DILUTE-PHASE PNEUMATIC CONVEYING: Instrumentation and Conveying Velocity
    Agarwal, Amrit
    CHEMICAL ENGINEERING, 2014, 121 (03) : 54 - 58
  • [6] DILUTE-PHASE PNEUMATIC CONVEYING - INSTRUMENT SELECTION GUIDE
    BOSWORTH, MA
    CHEMICAL ENGINEERING, 1991, 98 (09) : 166 - 172
  • [7] CFD simulation of dilute-phase pneumatic conveying of powders
    Miao, Zhen
    Kuang, Shibo
    Zughbi, Habib
    Yu, Aibing
    POWDER TECHNOLOGY, 2019, 349 : 70 - 83
  • [8] DEM simulation of particle attrition in dilute-phase pneumatic conveying
    Tamir Brosh
    Haim Kalman
    Avi Levy
    Granular Matter, 2011, 13 : 175 - 181
  • [9] The effect of oscillating flow on a horizontal dilute-phase pneumatic conveying
    Yan, Fei
    Rinoshika, Akira
    Zhu, Rui
    Tang, Wenxian
    PARTICULATE SCIENCE AND TECHNOLOGY, 2016, 34 (06) : 699 - 706
  • [10] DEM simulation of particle attrition in dilute-phase pneumatic conveying
    Brosh, Tamir
    Kalman, Haim
    Levy, Avi
    GRANULAR MATTER, 2011, 13 (02) : 175 - 181