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PHYS-201(d): General physics: electromagnetism
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Lectures in this course (235)
Wave Equation for Mechanical Waves: Derivation and Interpretation
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Delves into deriving the wave equation for mechanical waves, analyzing forces in a rope, and interpreting wave characteristics.
Electromagnetic Waves: Wave Equation and Maxwell's Equations
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Explores the wave equation for electromagnetic waves, Maxwell's predictions, and the importance of polarization in defining wave properties.
Poynting Vector & Radiation Pressure
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Explores electromagnetic wave properties, energy transfer, momentum, Poynting vector, and radiation pressure.
Emission of Electromagnetic Waves
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Explores the emission of electromagnetic waves by accelerated charges and the generation of ultra high frequency waves.
Photon: Emission of Waves
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Covers the concept of a photon, its emission, coherence length, and the electromagnetic spectrum.
Electromagnetic Waves: Superposition and Interference
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Explores the radiation field of an oscillating dipole, interference patterns, and energy redistribution through interference.
Superposition and Interference in Electromagnetic Waves
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Explores the superposition and interference of electromagnetic waves, discussing energy redistribution and standing waves.
Magnetodynamics: Maxwell Equations and Induction Laws
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Explores magnetodynamics, Maxwell equations, Faraday's law, and induction experiments.
Fluid Mechanics: Concepts and Forces
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Covers key concepts in fluid mechanics, including forces, pressure differences, and fluid classification.
Reflection and Refraction in Transparent Matter
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Explores the laws of reflection and refraction in transparent matter, focusing on wave interaction with dielectric slabs.
Magnetostatics: Ampere's & Gauss's Laws
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Explores Ampere's law, magnetic field circulation, and Gauss's law applications.
Magnetic Moments and Motors
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Explores current loops, magnetic dipoles, motors, and galvanometers, demonstrating the interaction between magnetic fields and current-carrying wires.
Interaction of E-M Waves with Matter: Transmission, Absorption, Reflection
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Explores how electromagnetic waves interact with matter, emphasizing transmission, absorption, and reflection.
Pascal's Principle and Eulerian Concept
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Explores Pascal's principle and the Eulerian concept in fluid mechanics, demonstrating how pressure distributes forces and how velocity fields describe fluid movement.
Conservation Laws and Bernoulli Equation
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Covers conservation laws in fluid dynamics, including the Venturi effect and Bernoulli equation.
Magnetic Field and Vector Potential: Relation with Current, Galvanometer, and Maxwell's Equations
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Explores the relationship between magnetic field and vector potential, discussing galvanometers and Maxwell's equations.
Maxwell's Equations: Magnetodynamics & Faraday-Henry Induction Law
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Explores Maxwell's equations completion, Faraday-Henry law, induced emf, and experiments in magnetodynamics.
Continuity Equation, Newton's 2nd Law in Eulerian Concept
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Covers the continuity equation for steady laminar flow and Newton's 2nd law.
Electrostatics: Charging, Faraday Cage, Force on Conductor Sheet
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Explores charging by induction, Faraday cage, and force on conductor sheet.
Fluid Mechanics: Forces, Pressure, and Buoyancy
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Explores forces, pressure, and buoyancy in fluid mechanics, emphasizing fundamental concepts and practical applications.
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