Theoretical and Experimental Studies on Non-Fourier Heat Conduction Based on Thermomass Theory

Nonfiction, Science & Nature, Science, Physics, Thermodynamics, Technology, Material Science
Cover of the book Theoretical and Experimental Studies on Non-Fourier Heat Conduction Based on Thermomass Theory by Hai-Dong Wang, Springer Berlin Heidelberg
View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart
Author: Hai-Dong Wang ISBN: 9783642539770
Publisher: Springer Berlin Heidelberg Publication: February 7, 2014
Imprint: Springer Language: English
Author: Hai-Dong Wang
ISBN: 9783642539770
Publisher: Springer Berlin Heidelberg
Publication: February 7, 2014
Imprint: Springer
Language: English

This book mainly focuses on the theoretical and experimental study of non-Fourier heat conduction behavior. A novel thermomass theory is used as the theoretical basis, which provides a general heat conduction equation for the accurate prediction of non-Fourier heat conduction. In order to prove the validity of this thermomass theory, a large current was used to heat the metallic nanofilm at the minimum temperature of 3 K. The measured average temperature of the nanofilm was notably higher than the prediction of Fourier’s heat diffusion equation, while matching well with the general heat conduction equation. This is the first time that steady non-Fourier heat conduction has been observed. Moreover, this book concerns the role of electron-phonon interaction in metallic nanofilms, which involves the breakdown of the Wiedemann-Franz law at low temperatures and interfacial thermal resistance at femtosecond timescales. Readers will find useful information on non-Fourier heat conduction and the latest advances in the study of charge and heat transport in metallic nanofilms.

View on Amazon View on AbeBooks View on Kobo View on B.Depository View on eBay View on Walmart

This book mainly focuses on the theoretical and experimental study of non-Fourier heat conduction behavior. A novel thermomass theory is used as the theoretical basis, which provides a general heat conduction equation for the accurate prediction of non-Fourier heat conduction. In order to prove the validity of this thermomass theory, a large current was used to heat the metallic nanofilm at the minimum temperature of 3 K. The measured average temperature of the nanofilm was notably higher than the prediction of Fourier’s heat diffusion equation, while matching well with the general heat conduction equation. This is the first time that steady non-Fourier heat conduction has been observed. Moreover, this book concerns the role of electron-phonon interaction in metallic nanofilms, which involves the breakdown of the Wiedemann-Franz law at low temperatures and interfacial thermal resistance at femtosecond timescales. Readers will find useful information on non-Fourier heat conduction and the latest advances in the study of charge and heat transport in metallic nanofilms.

More books from Springer Berlin Heidelberg

Cover of the book Long-gap Esophageal Atresia by Hai-Dong Wang
Cover of the book Ambulant erworbene Pneumonie by Hai-Dong Wang
Cover of the book Power in the 21st Century by Hai-Dong Wang
Cover of the book Rechtsfragen der Obduktion und postmortalen Gewebespende by Hai-Dong Wang
Cover of the book Applications of Declarative Programming and Knowledge Management by Hai-Dong Wang
Cover of the book Project Management for Facility Constructions by Hai-Dong Wang
Cover of the book Aberration-Free Refractive Surgery by Hai-Dong Wang
Cover of the book Hypertrophic Cardiomyopathy by Hai-Dong Wang
Cover of the book Pediatric Uroradiology by Hai-Dong Wang
Cover of the book Minimal Neoplasia by Hai-Dong Wang
Cover of the book Technological Change and Skill Development in Sudan by Hai-Dong Wang
Cover of the book Dialyseshunts by Hai-Dong Wang
Cover of the book Molekulare Allergiediagnostik by Hai-Dong Wang
Cover of the book Thoraxdrainagen by Hai-Dong Wang
Cover of the book The Mesonephros of Cat and Sheep by Hai-Dong Wang
We use our own "cookies" and third party cookies to improve services and to see statistical information. By using this website, you agree to our Privacy Policy