Computational Fluid Dynamics 2020

This book presents a collection of works published in a recent Special Issue (SI) entitled "Computational Fluid Dynamics". These works address the development and validation of existent numerical solvers for fluid flow problems and their related applications. They present complex nonlinear...

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Bibliographic Details
Other Authors: Shadloo, Mostafa Safdari (Editor)
Format: Electronic Book Chapter
Language:English
Published: Basel MDPI - Multidisciplinary Digital Publishing Institute 2022
Subjects:
MHD
Online Access:DOAB: download the publication
DOAB: description of the publication
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520 |a This book presents a collection of works published in a recent Special Issue (SI) entitled "Computational Fluid Dynamics". These works address the development and validation of existent numerical solvers for fluid flow problems and their related applications. They present complex nonlinear, non-Newtonian fluid flow problems that are (in some cases) coupled with heat transfer, phase change, nanofluidic, and magnetohydrodynamics (MHD) phenomena. The applications are wide and range from aerodynamic drag and pressure waves to geometrical blade modification on aerodynamics characteristics of high-pressure gas turbines, hydromagnetic flow arising in porous regions, optimal design of isothermal sloshing vessels to evaluation of (hybrid) nanofluid properties, their control using MHD, and their effect on different modes of heat transfer. Recent advances in numerical, theoretical, and experimental methodologies, as well as new physics, new methodological developments, and their limitations are presented within the current book. Among others, in the presented works, special attention is paid to validating and improving the accuracy of the presented methodologies. This book brings together a collection of inter/multidisciplinary works on many engineering applications in a coherent manner. 
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546 |a English 
650 7 |a Research & information: general  |2 bicssc 
650 7 |a Mathematics & science  |2 bicssc 
653 |a homogeneous-heterogeneous reactions 
653 |a porous medium 
653 |a first slip 
653 |a second slip 
653 |a exact solution 
653 |a fluid structure-interaction 
653 |a vibration suppression 
653 |a entropy generation minimization 
653 |a sloshing 
653 |a damping factor 
653 |a porous slider 
653 |a MHD flow 
653 |a reynolds number 
653 |a velocity slip 
653 |a homotopy analysis method 
653 |a Casson nanoliquid 
653 |a Marangoni convection 
653 |a inclined MHD 
653 |a Joule heating 
653 |a heat source 
653 |a third-grade liquid 
653 |a heat generation/absorption 
653 |a stretched cylinder 
653 |a series solution 
653 |a slip effects 
653 |a mixed convection flow 
653 |a cross fluid 
653 |a Darcy-Forchheimer model 
653 |a successive local linearization method 
653 |a swimming gyrotactic microorganisms 
653 |a Darcy law 
653 |a nanofluid 
653 |a unsteady flow 
653 |a non-axisymmetric flow 
653 |a MHD 
653 |a hybrid nanofluid 
653 |a stagnation-point flow 
653 |a ferrofluid 
653 |a Lie group framework 
653 |a unsteady slip flow 
653 |a stretching surface 
653 |a thermal radiation 
653 |a lattice Boltzmann method 
653 |a smoothed profile method 
653 |a hybrid method 
653 |a natural convection simulation 
653 |a concentric hexagonal annulus 
653 |a CMC-water 
653 |a Casson fluid 
653 |a mixed convection 
653 |a solid sphere 
653 |a scaling group analysis 
653 |a Sutterby fluid 
653 |a magnetohydrodynamics (MHD) 
653 |a stability analysis 
653 |a entropy 
653 |a nanoliquid 
653 |a moving wall 
653 |a unsteady stagnation point 
653 |a convective boundary condition 
653 |a Hyperloop system 
653 |a transonic speed 
653 |a aerodynamic drag 
653 |a drag coefficient 
653 |a pressure wave 
653 |a shockwave 
653 |a nanofluids 
653 |a heat generation 
653 |a sphere 
653 |a plume 
653 |a finite difference method 
653 |a gas turbine 
653 |a damaged rotor blade 
653 |a leading-edge modification 
653 |a aerodynamic characteristics 
653 |a micropolar hybrid nanofluid 
653 |a dual solution 
653 |a stretching/shrinking sheet 
653 |a Sisko fluid flow 
653 |a gold particles 
653 |a radiation effect 
653 |a slip effect 
653 |a curved surface 
653 |a Reiner-Rivlin nanofluid 
653 |a circular plates 
653 |a induced magnetic effects 
653 |a activation energy 
653 |a bioconvection nanofluid 
653 |a steady flow 
653 |a Tiwari and Das model 
653 |a Prandtl-Eyring nanofluid 
653 |a entropy generation 
653 |a implicit finite difference method 
856 4 0 |a www.oapen.org  |u https://mdpi.com/books/pdfview/book/5732  |7 0  |z DOAB: download the publication 
856 4 0 |a www.oapen.org  |u https://directory.doabooks.org/handle/20.500.12854/87534  |7 0  |z DOAB: description of the publication