Dynamic Liquid Saturation in a Trickle Bed Reactor Involving Newtonian/non-Newtonian Liquid Phase

被引:9
|
作者
Bansal, Ajay [1 ]
Wanchoo, R. K. [2 ]
Sharma, S. K. [2 ]
机构
[1] Natl Inst Technol, Dept Chem Engn, Jalandhar 144011, India
[2] Panjab Univ, Dept Chem Engn & Technol, Chandigarh 160014, India
关键词
HOLDUP EXPERIMENTAL-DATA; 2-PHASE CONCURRENT FLOW; PRESSURE-DROP; MASS-TRANSFER; PULSING FLOW; PACKED-BEDS; HYDRODYNAMICS; DOWNFLOW; PERFORMANCE; PREDICTION;
D O I
10.1021/ie801399u
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Dynamic liquid saturation is an important hydrodynamic parameter that affects the performance of a trickle bed reactor. The parameters that affect the dynamic liquid saturation, by using Newtonian liquid phase, include gas and liquid flow rates, surface tension and viscosity of the liquid phase, and bed configurations. Additional rheological parameters affecting dynamic liquid saturation, in case of non-Newtonian viscoinelastic liquids, are observed to be flow consistency index K and flow behavior index n. The effect of viscoelasticity, in case of non-Newtonian viscoelastic fluids, was investigated in terms of Weisseriberg number. A set of 20 correlations were selected from the literature to see the applicability of these correlations under varied conditions of bed configurations and liquid-phase properties as studied in the present investigation. It was observed that the correlations are valid only for a restricted range of parameters and none of the correlations seem to be applicable over the entire range of parameters as investigated in the present study. On the basis of the experimental data obtained, correlations are first developed for Newtonian liquids. These correlations could reproduce the literature data satisfactorily to +/- 20%. Further, the correlations developed are extended to predict dynamic liquid saturation for viscoinelastic and viscoelastic liquid phases.
引用
收藏
页码:3341 / 3350
页数:10
相关论文
共 50 条
  • [21] The effect of surfactant addition on the performance of a bubble column containing a non-Newtonian liquid
    Passos, A. D.
    Voulgaropoulos, V. P.
    Paras, S. V.
    Mouza, A. A.
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2015, 95 : 93 - 104
  • [22] Empirical correlations and CFD simulations of vertical two-phase gas-liquid (Newtonian and non-Newtonian) slug flow compared against experimental data of void fraction
    Ratkovich, N.
    Majumder, S. K.
    Bentzen, T. R.
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2013, 91 (06) : 988 - 998
  • [23] Micromixing efficiency in a rotating packed bed with non-Newtonian fluid
    Ouyang, Yi
    Xiang, Yang
    Gao, Xue-Ying
    Li, Wen-Ling
    Zou, Hai-Kui
    Chu, Guang-Wen
    Chen, Jian-Feng
    CHEMICAL ENGINEERING JOURNAL, 2018, 354 : 162 - 171
  • [24] Analysis of single phase Newtonian and non-Newtonian velocity distribution in periodic packed beds
    Dasgupta, Soumendu
    Atta, Arnab
    CHEMICAL ENGINEERING JOURNAL, 2017, 324 : 182 - 193
  • [25] Liquid holdup and wetting efficiency in a rotating trickle-bed reactor
    Liu, Ya-Zhao
    Luo, Yong
    Chu, Guang-Wen
    Liu, Wei
    Shao, Lei
    Chen, Jian-Feng
    AICHE JOURNAL, 2019, 65 (08)
  • [26] Bed structure and its impact on liquid distribution in a trickle bed reactor
    Srivastava, Akarsha
    Nigam, Krishna
    Roy, Shantanu
    AICHE JOURNAL, 2023, 69 (01)
  • [27] Bubble columns with fine pore sparger and non-Newtonian liquid phase: Prediction of gas holdup
    Anastasiou, A. D.
    Passos, A. D.
    Mouza, A. A.
    CHEMICAL ENGINEERING SCIENCE, 2013, 98 : 331 - 338
  • [28] Liquid distribution in trickle-bed reactor
    Marcandelli, C
    Lamine, AS
    Bernard, JR
    Wild, G
    OIL & GAS SCIENCE AND TECHNOLOGY-REVUE D IFP ENERGIES NOUVELLES, 2000, 55 (04): : 407 - 415
  • [29] Mathematical model of gas-liquid or liquid-liquid Taylor flow with non-Newtonian continuous liquid in microchannels
    Rufat Sh. Abiev
    Journal of Flow Chemistry, 2021, 11 : 525 - 537
  • [30] Mathematical model of gas-liquid or liquid-liquid Taylor flow with non-Newtonian continuous liquid in microchannels
    Abiev, Rufat Sh.
    JOURNAL OF FLOW CHEMISTRY, 2021, 11 (03) : 525 - 537