Impact of Solid Particle Concentration and Liquid Circulation on Gas Holdup in Counter-Current Slurry Bubble Columns

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Abstract

In this study, in a three-phase reactor with a rectangular cross-section, the effects of liquid circulation rates and solid particle concentration on gas holdup and bubble size distribution (BSD) were investigated. Air, water, and glass beads were used as the gas, liquid, and solid phases, respectively. Different liquid circulation velocities and different solid loads were applied. The results demonstrate that increasing solid content from 0% to 6% can decrease gas holdup by 50% (due to increased slurry phase viscosity and promotion of bubble coalescence). Also, increasing the liquid circulation rate showed a weak effect on gas holdup, although a slight incremental effect was observed due to the promotion of bubble breakup and the extension of bubble residence time. The gas holdup in counter-current slurry bubble columns (CCSBCs) was predicted using a novel correlation that took into account the combined effects of solid concentration and liquid circulation rate. These findings are crucial for the design and optimization of the three-phase reactors used in industries such as mining and wastewater treatment.
Original languageEnglish
Article number14
Number of pages17
JournalFluids
Volume10
Issue number1
DOIs
Publication statusPublished - 16 Jan 2025

Fields of science

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  • 210006 Nanotechnology
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  • 203038 Ventilation technology
  • 211203 Food processing engineering
  • 104027 Computational chemistry
  • 207111 Environmental engineering
  • 204008 Membrane technology
  • 502058 Digital transformation
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  • 203024 Thermodynamics
  • 204003 Chemical process engineering
  • 202029 Microwave engineering
  • 502059 Circular economy
  • 204002 Chemical reaction engineering
  • 207106 Renewable energy
  • 211908 Energy research
  • 209006 Industrial biotechnology
  • 204 Chemical Process Engineering
  • 203016 Measurement engineering
  • 104028 Per- and polyfluoroalkyl substances (PFAS)

JKU Focus areas

  • Sustainable Development: Responsible Technologies and Management

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