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Jumping Ring and Magnetic Levitation
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Related lectures (51)
Maxwell's Equations: Evaluating Magnetic Fields from Magnetization
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Covers the use of Maxwell's equations to evaluate magnetic fields from magnetization in materials.
Theory of Images and Equivalence Principle
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Explores the theory of images, equivalence principle, conductors, duality, and uniqueness in electromagnetism with practical examples.
Cyclotron Motion: Magnetic Force on Current-Carrying Wire
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Explores cyclotron motion and magnetic force on current-carrying wires, including trajectory analysis and force calculations.
Fundamental Forces: Gravitational and Electromagnetic Interactions
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Explores gravitational and electromagnetic forces, particle interactions, and magnetic field effects.
Electromagnetism: Historical Overview and Maxwell's Equations
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Explores the historical evolution of electromagnetism, from ancient discoveries to Maxwell's equations.
Newton's Laws
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Covers Newton's three laws of motion, fundamental forces, and exercises, including gravitational and electromagnetic forces.
Advanced Physics I
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Explores the foundation faces of the solar system, general relativity, and electromagnetic forces.
Isolated Magnetic Moments: Magnetic Susceptibility
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Explores the concept of magnetic susceptibility as a tensor of proportionality between magnetization and the magnetizing field.
Electrodynamics: Magnetic Fields and Induced Currents
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Explores electric and magnetic fields on closed paths, induction of current, and energy conversion.
Moving Charges to Magnetostatics: Cyclotron Motion and Magnetic Fields
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Explores time-dependent capacitors, cyclotron motion, and magnetic fields in electromagnetism.
Maxwell's Equations in Polarized Matter: Lorentz Transformation
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Explores Maxwell's equations in polarized matter and fields transformation under different frames.
Electromagnetic Induction: Empirical Law and Mathematical Formulas
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Explores electromagnetic induction, explaining how magnetic field changes induce current and electromotive force in conductors.
Magnetostatics: Magnetic Field and Force
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Covers magnetic fields, Ampère's law, and magnetic dipoles with examples and illustrations.
Understanding Displacement Vector and Plane Waves
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Explores the displacement vector D, plane waves, and magnetic vector potential, addressing student questions and clarifying key concepts.
General Physics: Fluids and Electromagnetism
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Covers hydrodynamic and electromagnetic principles for second-semester mathematics students.
Self-inductance and EMF
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Explores self-inductance, EMF, and the Lenz rule in Faraday's induction context.
Relativistic Equation of Motion
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Explores spacetime structure, 4-vectors, Lorentz force, and dispersion relation in relativistic motion.
Introduction to Electromagnetism
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Covers the nature of electromagnetic waves, including plane waves and photons, their wavelength, period, and dispersion relationship, and the electromagnetic spectrum.
Shielding Efficiency in Electromagnetic Fields
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Covers shielding efficiency, material thickness, earth loop minimization, guard rings, and synchronous modulation/demodulation.
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.
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