Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy

This work is devoted to an investigation of ultra-fast processes of energy transport. There is a close link between ultra-fast and nano-scale processes. However, modern science lacks understanding of energy transport phenomena, which occurs at nano- space and time scales. In fact, a realistic model...

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Main Author: Yulia Levinskaya
Other Authors: Vladimir Vladimirovich Kulish
Format: Theses and Dissertations
Language:English
Published: 2013
Subjects:
Online Access:https://hdl.handle.net/10356/54797
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-547972023-03-11T17:41:47Z Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy Yulia Levinskaya Vladimir Vladimirovich Kulish School of Mechanical and Aerospace Engineering DRNTU::Science::Physics::Heat and thermodynamics This work is devoted to an investigation of ultra-fast processes of energy transport. There is a close link between ultra-fast and nano-scale processes. However, modern science lacks understanding of energy transport phenomena, which occurs at nano- space and time scales. In fact, a realistic model of such processes does not exist. It was recently found that the phase-lagging models used to model ultra-fast processes lead to the existence of superfluid regime without low temperature condition. Still, the existing models are phenomenological and the kinetic theory cannot be used to describe these processes in any medium due to its limitations. The research is focused on the existence of the fundamental time lag problem in the processes of heat transport. Quantum theory is a completely new approach in this area. It is used to solve the problem of the time lag existence and to estimate its value. It is proved in this thesis that the macroscopic equation for the second sound follows from the quantum equation for de Broglie’s wave packet. It was shown that the result is consistent with the outcomes obtained previously from different theories. The investigation of the behavior of the apparent thermal diffusivity and viscosity was conducted as well as a study of the steady state heat transfer within a nano-scale spatial domain and apparent sources. The experiment was conducted to validate the resulting mathematical model, which appears to be in good agreement with the data obtained. DOCTOR OF PHILOSOPHY (MAE) 2013-08-22T02:42:39Z 2013-08-22T02:42:39Z 2013 2013 Thesis Yulia Levinskaya. (2013). Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/54797 10.32657/10356/54797 en 205 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Physics::Heat and thermodynamics
spellingShingle DRNTU::Science::Physics::Heat and thermodynamics
Yulia Levinskaya
Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
description This work is devoted to an investigation of ultra-fast processes of energy transport. There is a close link between ultra-fast and nano-scale processes. However, modern science lacks understanding of energy transport phenomena, which occurs at nano- space and time scales. In fact, a realistic model of such processes does not exist. It was recently found that the phase-lagging models used to model ultra-fast processes lead to the existence of superfluid regime without low temperature condition. Still, the existing models are phenomenological and the kinetic theory cannot be used to describe these processes in any medium due to its limitations. The research is focused on the existence of the fundamental time lag problem in the processes of heat transport. Quantum theory is a completely new approach in this area. It is used to solve the problem of the time lag existence and to estimate its value. It is proved in this thesis that the macroscopic equation for the second sound follows from the quantum equation for de Broglie’s wave packet. It was shown that the result is consistent with the outcomes obtained previously from different theories. The investigation of the behavior of the apparent thermal diffusivity and viscosity was conducted as well as a study of the steady state heat transfer within a nano-scale spatial domain and apparent sources. The experiment was conducted to validate the resulting mathematical model, which appears to be in good agreement with the data obtained.
author2 Vladimir Vladimirovich Kulish
author_facet Vladimir Vladimirovich Kulish
Yulia Levinskaya
format Theses and Dissertations
author Yulia Levinskaya
author_sort Yulia Levinskaya
title Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
title_short Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
title_full Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
title_fullStr Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
title_full_unstemmed Investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
title_sort investigation and modelling of ultra-fast processes of energy transport : super-transport of energy
publishDate 2013
url https://hdl.handle.net/10356/54797
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