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Circuit Characterization: Microwave Components and Impedance Matrix
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Related lectures (53)
Impedances and Impedance Networks
MOOC: Electrical engineering I
Covers the representation of impedances, voltage and current dividers, and impedance networks in electrical engineering.
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.
Microwave Circuit Characterization: Elements and Models
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Covers the characterization of microwave circuits and the concept of characteristic impedance.
AC Circuits Analysis: Impedance and Admittance
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Explores AC circuits analysis, focusing on impedance, admittance, phasors, and sinusoidal quantities.
Impedance Networks
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Explores impedance networks, Kirchhoff's laws, and voltage/current dividers in complex circuits.
Laplace Transforms: Circuit Analysis
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Explores Laplace transforms in circuit analysis, emphasizing pole-zero diagrams and s-domain concepts.
Basic Concepts: Electric Circuits
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Introduces the fundamental concepts of electric circuits, including basic elements and Kirchhoff's laws.
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.
Thévenin-Norton Theorems
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Explains the Thévenin and Norton theorems for simplifying electrical circuits with equivalent sources and impedances.
AC Circuits: Complex Impedance Analysis
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Covers the analysis of AC circuits, focusing on complex impedance and phase differences between current and voltage.
Quadripoles and Frequency Response
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Covers quadripoles, impedance matrices, reciprocity, and frequency response in circuits.
Kirchhoff's Laws and DC Circuits
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Explores Kirchhoff's laws in DC circuits, resistor analysis, and capacitor behavior.
Circuit Analysis: Thevenin and Norton Theorems
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Explores circuit analysis using Thevenin and Norton theorems to simplify complex circuits for analysis.
Noise in Two-port Networks
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Covers the analysis of noise in two-port networks, Y-parameters, substrate resistance extraction, and the noise factor.
Electrical Circuits Basics
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Introduces the basics of electrical circuits, covering elements, laws, Ohm's law, and series/parallel connections.
Electric Circuits: Analysis and Applications
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Covers the analysis of electric circuits using Kirchhoff's laws and Ohm's law to determine currents, voltages, and power.
Fundamental Theorems: Linear Circuits
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Covers fundamental theorems in linear circuits, including superposition and source conversion.
Mechanical Resonator in QUCS
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Covers using QUCS to solve simple harmonic oscillators and analyze mechanical resonators.
Transmission Line Models
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Explores transmission line models, including Taylor et al. and Agrawal et al., discussing equations and boundary conditions.
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