【摘 要】
:
By the second law of thermodynamics,there exists a physical quantity Q that,at a given instant,is associated with each surface in a non-isothermal body.This
【机 构】
:
DepartmentofMechanicalEngineeringTheUniversityofHongKong,HongKong
【出 处】
:
The 2nd International Conference on Phononics and thermal En
论文部分内容阅读
By the second law of thermodynamics,there exists a physical quantity Q that,at a given instant,is associated with each surface in a non-isothermal body.This quantity can be interpreted as the heat flux through the surface and has two fundamental properties: behaving additively on compatible material surfaces and satisfying the first law of thermodynamics.These two properties,when rendered precise,imply the existence of the flux vector field q whose scalar product with the unit normal to the surface yields the surface density of the heat flux Q.The main aim of heat transfer studies is to predict and control q.For the heat transfer in a rigid body without macroscopic relative motion(pure heat conduction),q is proportionally related to the temperature gradient by the classical Fourier law of heat conduction,an empirical fundamental law in heat conduction.Such a relation is,however,not available for the heat transfer in a body with macroscopic relative motion such as moving fluids and solids in deformation (convective heat transfer).We develop this relation for both heat conduction and convective heat transfer by finding both the necessary and sufficient condition in a systematic,rigorous way for a heat transfer process to satisfy the principle of frame-indifference and the second law of thermodynamics.This leads to a generalized Fourier law that relates q to the temperature gradient and generalizes the classical Fourier law to the convective heat transfer.Such a study is of fundamental importance because heat transfer research aims to predict and control the rate at which the heat is transferred.
其他文献
Heat transfer at the nanoscale is fundamentally different from that at the macroscale and is determined by the distribution of the mean free paths of energy
I will explain a fundamental connection between integrability of non-equilibrium steady states of boundary driven markovian master equations for interacting
Geometric phase is a useful concept in many physical systems.The Zak phase is a special kind of geometric phase that describes the topological property of a
With molecular dynamics simulations,we systematically uncover a new kind of intrinsic thermal resistance that exists in two-dimensional materials under unev
Elastic metamaterial has a great potential in controlling low-frequency elastic waves.Negative material parameters are usually related to internal resonance
The coupling of light to structural vibrations is well known and results in phenomena like phonon polaritons,acousto-optics(where phonons modulate optical p
Bismuth selenide(Bi2Se3)belongs to the(Bi,Sb)2(Se,Te)3 family,which has been long known as excellent thermoelectric materials.Recently,various Bi2Se3 nanost
Recently,thermal rectifier with inhomogeneous thermal conductivity has been theoretically proposed and experimentally observed.We theoretically investigate
Sonic crystal,analogous to photonic crystal,has been studied over two decades.Some of important effects,such as band-gap,dispersion relation,have been well
In this work,we propose a nanoscale three dimensional(3D)Si phononic crystal(PnC) with spherical pores,which can reduce the thermal conductivity of bulk Si