The surface wettability effect on phase change / Marco Marengo, Joel De Coninck, editors.
2022
QC301 .S84 2022
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Title
The surface wettability effect on phase change / Marco Marengo, Joel De Coninck, editors.
ISBN
9783030829926 (electronic bk.)
3030829928 (electronic bk.)
9783030829919
303082991X
3030829928 (electronic bk.)
9783030829919
303082991X
Published
Cham : Springer, [2022]
Copyright
©2022
Language
English
Description
1 online resource : illustrations (chiefly color)
Item Number
10.1007/978-3-030-82992-6 doi
Call Number
QC301 .S84 2022
Dewey Decimal Classification
530.4
Summary
The Surface Wettability Effect on Phase Change collects high level contributions from internationally recognised scientists in the field. It thoroughly explores surface wettability, with topics spanning from the physics of phase change, physics of nucleation, mesoscale modeling, analysis of phenomena such drop evaporation, boiling, local heat flux at triple line, Leidenfrost, dropwise condensation, heat transfer enhancement, freezing, icing. All the topics are treated by discussing experimental results, mathematical modeling and numerical simulations. In particular, the numerical methods look at direct numerical simulations in the framework of VOF simulations, phase-field simulations and molecular dynamics. An introduction to equilibrium and non-equilibrium thermodynamics of phase change, wetting phenomena, liquid interfaces, numerical simulation of wetting phenomena and phase change is offered for readers who are less familiar in the field. This book will be of interest to researchers, academics, engineers, and postgraduate students working in the area of thermofluids, thermal management, and surface technology.
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Includes bibliographical references.
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Online resource; title from PDF title page (SpringerLink, viewed November 17, 2021).
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Table of Contents
Introduction
The Physics of Phase Change
Wettability and Interfaces
Evaporation
Boiling
Condensation
Freezing
Colloidal Transition
Nanoscale Effects.
The Physics of Phase Change
Wettability and Interfaces
Evaporation
Boiling
Condensation
Freezing
Colloidal Transition
Nanoscale Effects.