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Path Category
Guided learning journeys that build knowledge step by step.
category · Learning · slug · learning · 7819 Paths
7819 Paths · page 697 / 782
This learning path guides high school students from foundational concepts of electric and magnetic fields to the elegant unification described by Maxwell's equations. It covers Gauss's law, Ampere's law, Faraday's law, and introduces displacement current, culminating in the integral and differential forms of Maxwell's equations. The path emphasizes conceptual understanding and mathematical formulation suitable for intermediate learners.
This learning path guides high school students from fundamental AC concepts through phasor representation, impedance, and analysis of RLC circuits, culminating in resonance and power calculations. It emphasizes the conceptual and mathematical foundations needed to understand and solve AC circuit problems.
This learning path guides high school students from foundational electromagnetic induction concepts through self-inductance, mutual inductance, and RL circuit behavior, including transient analysis and energy storage. It builds a systematic understanding of how inductors behave in circuits and how to analyze their time-dependent responses.
A systematic high-school level learning path covering electromagnetic induction, starting from magnetic field basics and progressing through Faraday's law, Lenz's law, motional EMF, and eddy currents. The path emphasizes conceptual understanding and problem-solving skills.
This path introduces the fundamental concepts of magnetism, from magnetic fields to the microscopic origins of magnetic behavior in materials. It covers diamagnetism, paramagnetism, and ferromagnetism, along with magnetic susceptibility, providing a solid foundation for understanding magnetic materials.
This path guides high school students through the principles and calculations of magnetic fields produced by steady currents. It starts with foundational concepts of magnetism and vector calculus, then covers the Biot-Savart law and Ampère's law, and applies them to symmetric configurations like solenoids and toroids. The path also relates these fields to magnetic forces on moving charges and current-carrying wires, providing a comprehensive introduction to magnetostatics.
A systematic learning path for high school students beginning magnetism. It starts from electric field basics, builds up to the magnetic field and Lorentz force, then explores circular motion of charges and the Hall effect.
This learning path guides students from fundamental electrical concepts through systematic DC circuit analysis using Kirchhoff's laws. It covers circuit elements, Ohm's law, series and parallel resistor combinations, and the application of Kirchhoff's current and voltage laws to solve for currents and voltages, including power calculations.
This learning path guides high school students from foundational concepts of electric charge and electric field through the microscopic origin of current (drift velocity) to macroscopic circuit laws (Ohm's law, resistance, resistivity). It emphasizes the conceptual and mathematical links between fields, current, and material properties, culminating in the temperature dependence of resistance.
This path guides high school students from the basics of electrostatics and electric potential through the behavior of conductors in electrostatic equilibrium, culminating in a thorough understanding of capacitance and the geometry-specific formulas for parallel-plate, spherical, and cylindrical capacitors. It emphasizes the logical dependencies between concepts to build a solid foundation for circuit analysis.