Mass and heat transfer intensification at the wall of a square agitated vessel by chemically active semicylindrical turbulence promoters
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[1] M. Waqas,et al. Investigation of cross-fluid flow containing motile gyrotactic microorganisms and nanoparticles over a three-dimensional cylinder , 2020 .
[2] D. Ganji,et al. Investigation of micropolar hybrid ferrofluid flow over a vertical plate by considering various base fluid and nanoparticle shape factor , 2020, International Journal of Numerical Methods for Heat & Fluid Flow.
[3] D. Ganji,et al. Hydrothermal analysis of ethylene glycol nanofluid in a porous enclosure with complex snowflake shaped inner wall , 2020, Waves in Random and Complex Media.
[4] H. Farag,et al. Effect of drag reducing polymers and impeller geometry on the rate of mass and heat transfer at the wall of a cylindrical stirred tank reactor in relation to catalytic reactor design , 2020 .
[5] D. Ganji,et al. Investigation of mixture fluid suspended by hybrid nanoparticles over vertical cylinder by considering shape factor effect , 2020, Journal of Thermal Analysis and Calorimetry.
[6] M. Goodarzi,et al. Experimental investigation and performance optimisation of a catalytic reforming micro-reactor using response surface methodology , 2019, Energy Conversion and Management.
[7] M. Goodarzi,et al. Reforming of methanol with steam in a micro-reactor with Cu–SiO2 porous catalyst , 2019, International Journal of Hydrogen Energy.
[8] A. Manassero,et al. Photocatalytic reactors with suspended and immobilized TiO 2 : Comparative efficiency evaluation , 2017 .
[9] I. A. Makaryan,et al. Experimental approvement of the filterless hydroprocess technology using slurry reactor system with inertial separation , 2017 .
[10] M. Soliman,et al. Mass and heat transfer behavior of a new heterogeneous stirred tank reactor with serpentine tube baffles , 2017 .
[11] Vivek V. Ranade,et al. Three‐phase slurry reactors , 2016 .
[12] M. H. Abdel-Aziz,et al. Liquid‐Solid Mass Transfer Behavior of a Stirred‐Tank Reactor with a Fixed Bed at Its Bottom , 2014 .
[13] M. H. Abdel-Aziz,et al. Mass and heat transfer enhancement at the wall of cylindrical agitated vessel by turbulence promoters , 2014 .
[14] A. A. Zaatout,et al. Liquid‐Solid Mass Transfer Behavior of a New Stirred‐Tank Reactor with a Packed Bed Fixed to its Wall , 2013 .
[15] Michel Cabassud,et al. Heat exchanger/reactors (HEX reactors) : Concepts, technologies: State-of-the-art , 2008 .
[16] F. Walsh,et al. The limiting current for reduction of ferricyanide ion at nickel: The importance of experimental conditions , 2008 .
[17] J. Karcz,et al. Distribution of local heat transfer coefficient values in the wall region of an agitated vessel , 2008 .
[18] Suzanne M. Kresta,et al. Batch blend time in square stirred tanks , 2006 .
[19] Gabriel Ascanio,et al. Measurement of power consumption in stirred vessels: A review , 2004 .
[20] A. El‐Shazly,et al. SOLID-LIQUID MASS TRANSFER AT THE WALLS OF A RECTANGULAR AGITATED VESSEL , 1997 .
[21] Michael Stamatoudis,et al. TURBULENT RANGE IMPELLER POWER NUMBERS IN CLOSED CYLINDRICAL AND SQUARE VESSELS , 1986 .
[22] R. H. Muller,et al. MASS TRANSFER ENHANCEMENT BY SMALL FLOW OBSTACLES IN ELECTROCHEMICAL CELLS , 1985 .
[23] J. Bourne,et al. Densities, viscosities, and diffusivities in aqueous sodium hydroxide-potassium ferri- and ferro-cyanide solutions , 1985 .
[24] W. Focke,et al. On the mechanism of transfer enhancement by eddy promoters , 1983 .
[25] Samah Mustafa,et al. Mass transfer at the outer surface of a spiral tube heat exchanger in a stirred tank reactor and possible applications , 2021 .
[26] A. Kiennemann,et al. Fischer-Tropsch Synthesis to Biofuels (BtL Process) , 2013 .
[27] H. Miyashita,et al. Heat transfer enhancement with an inclined semicylindrical turbulence promoter—The relationship between optimum clearance and film thickness , 1997 .
[28] J. Robert Selman,et al. Mass-Transfer Measurements by the Limiting-Current Technique , 1978 .