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Lecture
Thermal Equivalent Circuits: Basics
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Transient Heat Diffusion: Lumped Capacitance Model
Introduces the lumped capacitance model for solving transient heat conduction under convective cooling, emphasizing the importance of the Biot number.
Thermal Conduction: Stationary vs. Unsteady
Explores thermal conduction, comparing stationary and unsteady regimes, the Fourier equation, and material thermal conductivity.
Thermal Effects: Conduction, Convection, and Radiative Heat Transfer
Explores thermal effects, including conduction, convection, and radiation, emphasizing the impact of thin films and nanowires on thermal conductivity reduction.
Heat Transfer in Fluids
Covers the fundamentals of heat transfer in fluids, focusing on conduction, convection, and thermal equilibrium.
Heat Diffusion Equation
Explores the heat diffusion equation, thermal conductivity, and transport laws in heat transfer.
Heat Conduction: Equations and Methods
Covers the equations and methods used to describe heat transfers in a similar way to the analysis of diffusion.
Fourier Equation in 2D: Stationary Regime
Explores the Fourier equation in 2D for a stationary regime without heat production in a semi-infinite wall.
Heat Transfer Applications
Explores the applications of the Fourier equation in heat transfer phenomena.
Conduction in Solids
Explores heat conduction in solids, covering energy carriers, transient conduction, and effective conductivity in heterogeneous media.
Transient Heat Transfer: Examples and Solutions
Explores transient heat transfer, Biot number, and practical applications in cooling metal.