Study of particle residence time in a pressurized fluidized bed with in-bed heat exchanger tubes

被引:3
|
作者
Seguin, M. -A. [1 ]
Hughes, R. W. [2 ]
Fitzsimmons, M. [3 ]
Macchi, A. [1 ]
Mehrani, P. [1 ]
机构
[1] Univ Ottawa, Dept Chem & Biol Engn, 161 Louis Pasteur St, Ottawa, ON K1N 6N5, Canada
[2] Nat Resources Canada, Canmet Energy, 1 Haanel Dr, Ottawa, ON K1A 1M1, Canada
[3] GTI, 5945 Canoga Ave, Woodland Hills, CA 91367 USA
基金
美国能源部;
关键词
Pressurized fluidized bed; Particle residence time; Horizontal tube bundle; Entrainment; HORIZONTAL TUBES; IMMERSED TUBES; BUBBLE-SIZE; ELUTRIATION; VELOCITY; HYDRODYNAMICS; TEMPERATURE; ENTRAINMENT; BEHAVIOR; POWDERS;
D O I
10.1016/j.powtec.2019.07.041
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Anthropogenic climate change is amongst the greatest of challenges to human civilization. A key area that will play a large role in mitigating its effects are clean fossil fuel applications. Clean coal combustion can be achieved with an oxygen-fired pressurized fluidized bed combustor incorporating carbon capture and storage. In relation to pressurized fluidization processes, understanding the influence of pressure on fluidized bed hydrodynamics and, in turn, their effect on parameters including fuel residence time is essential. For the combustor under consideration here, a fraction of the heat exchanger boiler tubes are submerged in the fluidized bed such that the effect of the horizontal tube bundle on the fuel residence time is of great importance. The main focus of the present work was to evaluate the impact of gas velocity, pressure, presence or absence of a horizontal tube bundle and fuel feed rate on the average fuel residence time in a dense gas-solid fluidized bed. Experiments were conducted under cold flow conditions in a pressurized fluidized bed with an inner diameter of 0.15 m. The fluidization material was large glass beads (1.0 mm in diameter) while fuel particles were simulated with smaller glass beads (64 and 83 mu m in Sauter mean diameter) that were susceptible to entrainment. Operating pressures and superficial gas velocities were maintained between 1013 and 1200 kPa and 1.5 and 3.2 U-mf, respectively. To simulate continuous fuel injection, experiments were conducted with the fuel surrogate particles being continuously fed to the fluidized bed of large particles over a desired period of time. Downstream, entrained particles were captured to determine the average entrainment rate and average mass of fuel particles inside the fluidized bed at steady state, which yielded the average fuel residence time. The combination of elevated pressure with the tube bundle present was found to have the most influential impact when compared to base conditions of atmospheric pressure and with no tube bundle present. It was found to enhance gas bubble break up and reduce the average gas bubble size substantially. In turn, this increased the average residence time of 83 mu m particles by nearly three-fold in comparison to the case of atmospheric pressure with no tube bundle present. The effect of gas velocity on particle residence time was not found to be statistically significant under the range tested. Similarly, the effect of increasing fuel feed rate by 50% had no statistically significant impact. (C) 2019 Published by Elsevier B.V.
引用
收藏
页码:201 / 212
页数:12
相关论文
共 50 条
  • [1] WASTAGE OF IN-BED HEAT-TRANSFER SURFACES IN THE PRESSURIZED FLUIDIZED-BED COMBUSTOR AT GRIMETHORPE
    ANDERSON, JS
    CARLS, EL
    MAINHARDT, PJ
    SWIFT, WM
    WHEELDON, JM
    BROOKS, S
    MINCHENER, AJ
    STRINGER, J
    [J]. JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 1987, 109 (03): : 298 - 304
  • [2] THE CIRCUMFERENTIAL DISTRIBUTION OF WASTAGE ON IN-BED TUBES IN FLUIDIZED-BED COMBUSTORS
    MACADAM, SS
    STRINGER, J
    [J]. WEAR, 1995, 186 (01) : 325 - 331
  • [3] Prediction of the effective thermal conductivity of the in-gap particle layer of heat exchanger tubes with wastage covers in a pressurized fluidized bed
    Sakata, Toro
    Iwase, Tetsuya
    Kambara, Shinji
    Moritomi, Hiroshi
    [J]. KAGAKU KOGAKU RONBUNSHU, 2006, 32 (03) : 246 - 252
  • [4] OPTIMIZING PARTICLE RESIDENCE TIME IN A FLUIDIZED-BED DRIER
    BERAN, Z
    LUTCHA, J
    [J]. CHEMICAL ENGINEER-LONDON, 1975, (303): : 678 - 681
  • [5] Particle residence time and pressure drop in a fluidized bed with internals
    Multiphase Reaction Laboratory, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100080, China
    不详
    [J]. Guocheng Gongcheng Xuebao, 2006, SUPPL. 2 (359-363):
  • [6] Heat transfer characteristics of horizontal immersed tubes in hot pressurized fluidized bed with ilmenite as bed materials
    Bao, Xu
    Huang, Yu
    Huang, Zhijun
    Duan, Yuanqiang
    Duan, Lunbo
    [J]. Zhongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Central South University (Science and Technology), 2022, 53 (12): : 4648 - 4656
  • [7] EFFECT OF PARTICLE-TUBE COLLISION FREQUENCY ON MATERIAL WASTAGE OF IN-BED TUBES IN THE BUBBLING FLUIDIZED-BED COMBUSTOR
    LEE, SW
    WANG, BQ
    [J]. WEAR, 1995, 184 (02) : 223 - 229
  • [8] Effect of HCl on the corrosion and wear of in-bed tubes in a laboratory simulated bubbling fluidized bed
    Hou, PY
    Niu, Y
    Sum, TJ
    Stringer, J
    [J]. WEAR, 1999, 233 : 635 - 646
  • [9] IN-BED SULFUR CAPTURE DURING PRESSURIZED FLUIDIZED-BED HYDRORETORTING OF EASTERN OIL SHALES
    ABBASIAN, J
    RUE, DM
    LAU, FS
    [J]. FUEL, 1991, 70 (11) : 1342 - 1346
  • [10] Heat transfer characteristics of horizontal tubes in the dilute phase of the pressurized fluidized bed
    Bao, Zhongkai
    Huang, Yu
    Duan, Lunbo
    Duan, Yuanqiang
    [J]. INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2021, 126