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Lecture
Magnetic Energy: Saturation and Coenergy
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Related lectures (32)
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Explores the calculation of energy density in a magnetic field and its importance in electromagnetism.
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Covers the materials science of magnetic materials, focusing on properties, concepts, and optimization for functional applications.
Magnetic Interactions: Ferromagnetism & Exchange
Covers ferromagnetism, antiferromagnetism, and paramagnetism, explaining exchange interactions and magnetic domains.
Inductance and Magnetic Circuits
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Mutual Inductance and Self-Inductance
Explains mutual inductance, self-inductance, magnetic energy, and 'cross-talk' in circuits.
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Reluctance Effect
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Covers numerical differentiation, forward differences, Taylor's expansion, Big O notation, and error minimization.
Magnetic Materials: Properties and Behaviors
Explores the properties and behaviors of magnetic materials like ferromagnetic, paramagnetic, and diamagnetic materials, discussing magnetic susceptibility and permeability.
Magnetic Circuits: Interruptions and Magnetic Fields
Delves into interruptions in magnetic circuits and the calculation of required current.
Magnetic Fields and Induction
Explores magnetic dipoles, fields, induction, electromotive force, and applications like wireless energy transfer and magnetic levitation.
Lorentz Transmission Electron Microscopy: Theory and Practice
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Soft Magnets Applications
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Covers strategies to optimize magnets for soft magnetic materials applications, including losses in AC applications and historical progress.
Magnetostatics: Magnetic Field and Force
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Covers magnetic fields, Ampère's law, and magnetic dipoles with examples and illustrations.
Nanomagnetism: Magnetic Structures and Interactions
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Covers fundamental concepts of magnetism, types of magnetism, and techniques for investigating magnetic structures at the nanoscale.
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Explains magnetic circuits, focusing on inductance and Maxwell's equations in electromechanical systems.
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