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Lecture
Fundamental Theorems of Circuits and Systems
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Related lectures (50)
Thevenin and Norton Theorems in Alternating Regime: Superposition Principle
MOOC: Electrical engineering I
Explores Thevenin and Norton theorems in alternating regime, emphasizing superposition principle and complex time domains.
Superposition Principle: Circuits Analysis
MOOC: Electrical engineering I
Covers the superposition principle in circuit analysis, simplifying complex circuits for easier evaluation through individual component analysis and result summation.
Thevenin and Norton Theorems
Covers the Thevenin and Norton theorems for simplifying complex circuits into equivalent sources and internal resistances.
Thevenin and Norton Theorems
Covers Thevenin and Norton theorems for simplifying complex circuits into equivalent ones.
Analysis and Resolution Methods
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Covers the analysis of circuits, real voltage and current sources, and circuit processing.
Electrotechnique: Basics and Applications
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Electrotechnique: Basics and Applications
Covers the basics of electrotechnique, including linear elements, regimes, power types, and practical applications.
Transforming Sources: Voltage to Current
Demonstrates transforming voltage sources into current sources and simplifying circuits for efficient analysis.
Ideal Sources of emf in Circuits
Discusses ideal sources of emf in circuits and Kirchoff's rules for circuit analysis.
Circuit Elements: Voltage and Current Sources
Covers voltage and current sources in circuits, explaining their characteristics and equivalence.
Analysis of Circuits with Dependent Sources
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Explores the analysis of circuits with dependent sources, node-voltage analysis, Thévenin equivalent circuits, and OPAMP fundamentals.
Circuit Analysis: Thevenin and Norton Theorems
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Explores circuit analysis using Thevenin and Norton theorems to simplify complex circuits for analysis.
Circuit Analysis: Thevenin and Norton Equivalents
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Explores Thevenin and Norton equivalents, mesh and nodal analysis, and planar circuits.
Fundamental Theorems: Linear Circuits
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Covers fundamental theorems in linear circuits, including superposition and source conversion.
Linear Circuits in Sinusoidal Regime
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Explores linear circuits in sinusoidal regime, covering phasors, impedance, power calculations, Thevenin/Norton equivalents, and frequency analysis.
Thévenin-Norton Theorems
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Explains the Thévenin and Norton theorems for simplifying electrical circuits with equivalent sources and impedances.
S-Domain Circuit Analysis: Part 2
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Delves into s-domain circuit analysis, covering theorems, analysis methods, and stability concepts.
Step Response of RLC Circuits and Quadrupoles
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Analyzes the step response of RLC circuits and introduces the concept of quadrupoles.
Matrix Representation: Circuit Equations
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Covers the process of writing circuit equations in matrix form and solving for currents using the inversion method.
Linear Passive Circuits: Thevenin and Norton Theorems
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Explains Thevenin's and Norton's theorems, superposition principle, dividers, and RC circuits.
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