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- 21804788 Advanced Heat and Mass Transfer Preface
- Advanced heat and mass transfer
- Advanced Heat and Mass Transfer by Amir Faghri, Yuwen Zhang, and John R. Howell
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Articles Cited by. Title Sort Sort by citations Sort by year Sort by title. International Journal of Heat and Mass Transfer 48 , , International Journal of Heat and Mass Transfer 45 4 , , International journal of heat and mass transfer 39 15 , , International Journal of Heat and Mass Transfer 53 , , International journal of heat and mass transfer 32 7 , , Articles 1—20 Show more.
Help Privacy Terms. Heat pipe science and technology A Faghri Taylor and Francis , A variable density single-fluid model for two-phase flow with particular reference to steam-water flow SG Bankoff Journal of Heat Transfer US 82 , Heat Transfer 6 , , Challenges and opportunities of thermal management issues related to fuel cell technology and modeling A Faghri, Z Guo International Journal of Heat and Mass Transfer 48 , , Review and advances in heat pipe science and technology A Faghri Journal of heat transfer 12 , Thermal analysis of a micro heat pipe D Khrustalev, A Faghri.
Heat transfer enhancement in latent heat thermal energy storage system by using the internally finned tube Y Zhang, A Faghri International journal of heat and mass transfer 39 15 , , A numerical analysis of phase-change problems including natural convection Y Cao, A Faghri. A numerical analysis of Stefan problems for generalized multi-dimensional phase-change structures using the enthalpy transforming model Y Cao, A Faghri, WS Chang International journal of heat and mass transfer 32 7 , , Temperature regulation system for the human body using heat pipes A Faghri US Patent 5,, ,
21804788 Advanced Heat and Mass Transfer Preface
Generalities and fundamentals: Heat transfer by conduction, convection and radiation. Radiative heat transfer: Radiative properties of surfaces, View factors, Radiative exchange between gray and diffuse surfaces, Radiative exchange in enclosures having specular surfaces, Monte Carlo method for surface radiative exchange, Equation of radiative transfer in participating media, Radiative properties of molecular gases and particulate media, Exact solutions for 1D gray media, Approximate solution methods for 1D media, Monte Carlo method for participating media. Conductive heat transfer: Transient and steady state conduction in 0D, 1D, and 2D cases, Conduction in porous media. Convective heat transfer: Boundary layer theory, Laminar boundary layers, External and Internal convective heat transfer. Radiative Heat Transfer.
Advanced heat and mass transfer
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Advanced Heat and Mass Transfer by Amir Faghri, Yuwen Zhang, and John R. Howell
Copyright by Global Digital Press. All rights reserved. Except permitted under the United States Copyright Act of , no part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, including photocopy, recording, or any information storage and retrieval system, without writing permission from the publisher. Chapter 2 Generalized Governing Equations 2. Chapter 9 Fundamentals of Thermal Radiation 9. Preface Numerous heat and mass transfer textbooks have been published over the last several decades. The field of heat and mass transfer has advanced many-fold during its evolution due to the development of new knowledge, techniques, and applications.
Shahabeddin K. Curators' Distinguished Professor, University of Missouri. International Journal of Heat and Mass Transfer 45 4 , , International Journal of Heat and Mass Transfer 39 15 , , International Journal of Heat and Mass Transfer 52 , ,
The system can't perform the operation now. Try again later. Citations per year. Duplicate citations. The following articles are merged in Scholar. Their combined citations are counted only for the first article.
Alternate sustainable and renewable energy sources must be further developed to ensure an adequate supply of energy in the future. The latent heat thermal energy storage system, which utilizes phase-change materials PCMs to absorb and release heat, is widely used for this purpose. The PCM in the thermal energy storage system is molten when the system absorbs heat, and it solidifies when the system releases heat. It is becoming increasingly attractive alternatives to other conversion technologies, from small-scale passive devices like batteries to large-scale thermodynamic cycle engines. Unlike conventional power devices, i. A fuel cell generally functions as follows: 1.
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