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Coupled heat and mass transfer in bi...
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Hu, Zhan-Chao.
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Coupled heat and mass transfer in binary mixtures at supercritical pressures
Record Type:
Electronic resources : Monograph/item
Title/Author:
Coupled heat and mass transfer in binary mixtures at supercritical pressures/ by Zhan-Chao Hu.
Author:
Hu, Zhan-Chao.
Published:
Singapore :Springer Singapore : : 2022.,
Description:
xxii, 159 p. :ill., digital ;24 cm.
Notes:
"Doctoral thesis accepted by Peking University, Beijing, P.R. China."
[NT 15003449]:
Introduction -- Mass Piston Effect: Theory on the Acoustic Timescale -- Mass Piston Effect: Dynamic Relaxation on the Diffusion Timescale -- Binary Rayleigh-Benard Instability: Model and Linear Theory -- Binary Rayleigh-Benard Instability: Nonlinear Theory -- A Novel Application: Coupled Extraction and Crystal Growth -- Conclusions.
Contained By:
Springer Nature eBook
Subject:
Supercritical fluids. -
Online resource:
https://doi.org/10.1007/978-981-16-7806-6
ISBN:
9789811678066
Coupled heat and mass transfer in binary mixtures at supercritical pressures
Hu, Zhan-Chao.
Coupled heat and mass transfer in binary mixtures at supercritical pressures
[electronic resource] /by Zhan-Chao Hu. - Singapore :Springer Singapore :2022. - xxii, 159 p. :ill., digital ;24 cm. - Springer theses,2190-5061. - Springer theses..
"Doctoral thesis accepted by Peking University, Beijing, P.R. China."
Introduction -- Mass Piston Effect: Theory on the Acoustic Timescale -- Mass Piston Effect: Dynamic Relaxation on the Diffusion Timescale -- Binary Rayleigh-Benard Instability: Model and Linear Theory -- Binary Rayleigh-Benard Instability: Nonlinear Theory -- A Novel Application: Coupled Extraction and Crystal Growth -- Conclusions.
Supercritical pressure fluids have been exploited in many engineering fields, where binary mixtures are frequently encountered. This book focuses on the coupled heat and mass transfer in them, where the coupling comes from cross-diffusion effects (i.e., Soret and Dufour effects) and temperature-dependent boundary reactions. Under this configuration, three main topics are discussed: relaxation and diffusion problems, hydrodynamic stability, and convective heat and mass transfer. This book reports a series of new phenomena, novel mechanisms, and an innovative engineering design in hydrodynamics and transport phenomena of binary mixtures at supercritical pressures. This book covers not only current research progress but also basic knowledge and background. It is very friendly to readers new to this field, especially graduate students without a deep theoretical background.
ISBN: 9789811678066
Standard No.: 10.1007/978-981-16-7806-6doiSubjects--Topical Terms:
728987
Supercritical fluids.
LC Class. No.: QC145.4.T5 / H8 2022
Dewey Class. No.: 530.42
Coupled heat and mass transfer in binary mixtures at supercritical pressures
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Introduction -- Mass Piston Effect: Theory on the Acoustic Timescale -- Mass Piston Effect: Dynamic Relaxation on the Diffusion Timescale -- Binary Rayleigh-Benard Instability: Model and Linear Theory -- Binary Rayleigh-Benard Instability: Nonlinear Theory -- A Novel Application: Coupled Extraction and Crystal Growth -- Conclusions.
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Supercritical pressure fluids have been exploited in many engineering fields, where binary mixtures are frequently encountered. This book focuses on the coupled heat and mass transfer in them, where the coupling comes from cross-diffusion effects (i.e., Soret and Dufour effects) and temperature-dependent boundary reactions. Under this configuration, three main topics are discussed: relaxation and diffusion problems, hydrodynamic stability, and convective heat and mass transfer. This book reports a series of new phenomena, novel mechanisms, and an innovative engineering design in hydrodynamics and transport phenomena of binary mixtures at supercritical pressures. This book covers not only current research progress but also basic knowledge and background. It is very friendly to readers new to this field, especially graduate students without a deep theoretical background.
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EB QC145.4.T5 H8 2022
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