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Electrical Engineering Course
More than 2 million students worldwide

Electrical Engineering Course

Master the full spectrum of electrical engineering — from Ohm's Law and AC circuit analysis to power systems, motor drives, and control systems. This course delivers the technical depth and practical tools that working engineers and aspiring professionals need to solve real-world problems with confidence. Whether you're entering the field or leveling up your expertise, this is the most complete electrical engineering program available.

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What you will learn:

You will build a solid foundation in circuit theory, then advance through AC analysis, electronic devices, and electrical machines. You will learn to analyze power systems, perform load flow and fault calculations, and design protective relay schemes. The course covers power electronics topologies, variable-speed motor drives, and renewable energy converters. You will also study feedback control systems, PID tuning, and stability analysis methods. Additional modules address electromagnetic fields, digital systems, instrumentation, energy efficiency, and emerging technologies including electric vehicles and AI-driven diagnostics.

How you study in practice Electrical Engineering Course

How you practice Electrical Engineering Course

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Course Content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Electrical Engineering

  • Lesson 1 • Electrical Safety Fundamentals

    Covers shock hazards, grounding, insulation, and safe work practices. Establishes safety awareness essential before any hands-on electrical work.

  • Lesson 2 • Series and Parallel Circuits

    Analyzes resistor networks in series, parallel, and combined configurations. Provides the structural framework for understanding complex circuit topologies.

  • Lesson 3 • Ohm's Law and Basic Relationships

    Derives and applies Ohm's Law to resistive elements. Connects voltage, current, and resistance as the core analytical tool for circuit behavior.

  • Lesson 4 • Kirchhoff's Laws

    Introduces KVL and KCL as universal circuit analysis tools. Enables systematic solution of multi-loop and multi-node networks.

  • Lesson 5 • Electrical Quantities and Units

    Covers charge, current, voltage, resistance, and power with SI units. Establishes the quantitative language used throughout all subsequent circuit analysis.

Chapter 2See details

Circuit Analysis Techniques

  • Lesson 1 • Thevenin and Norton Equivalents

    Reduces complex networks to simple two-terminal equivalents. Enables efficient load analysis and circuit simplification.

  • Lesson 2 • Mesh Analysis

    Applies KVL around independent loops to determine mesh currents. Complements nodal analysis for planar circuits with multiple loops.

  • Lesson 3 • Nodal Analysis

    Applies KCL at each node to form a system of equations for unknown voltages. Provides a structured method for circuits with multiple nodes.

  • Lesson 4 • DC Circuit Simulation Tools

    Introduces circuit simulation software for verifying analytical results. Bridges hand calculations with professional design verification workflows.

  • Lesson 5 • Superposition Theorem

    Decomposes multi-source circuits into single-source sub-problems. Reinforces linearity and simplifies analysis of circuits with independent sources.

Chapter 3See details

AC Circuit Analysis

  • Lesson 1 • AC Power Analysis

    Distinguishes real, reactive, and apparent power in AC systems. Connects power concepts to energy efficiency and utility billing practices.

  • Lesson 2 • Impedance and Admittance

    Extends resistance to complex impedance for capacitors and inductors. Enables application of Ohm's Law and circuit theorems to AC networks.

  • Lesson 3 • Sinusoidal Signals and Phasors

    Defines sinusoidal waveforms by amplitude, frequency, and phase. Introduces phasor representation to convert differential equations into algebra.

  • Lesson 4 • Resonance in AC Circuits

    Analyzes series and parallel resonance conditions and frequency response. Builds understanding of frequency-selective behavior used in filters and tuning.

  • Lesson 5 • Three-Phase AC Systems

    Introduces balanced three-phase wye and delta configurations. Prepares students for industrial power distribution and motor analysis.

Chapter 4See details

Electronic Devices and Components

  • Lesson 1 • Field-Effect Transistors

    Analyzes MOSFET and JFET characteristics, biasing, and amplifier configurations. Extends transistor knowledge to CMOS and power electronics applications.

  • Lesson 2 • Bipolar Junction Transistors

    Covers BJT operation, biasing, and small-signal models for amplification. Establishes transistor fundamentals required for analog circuit design.

  • Lesson 3 • Diodes and Rectifier Circuits

    Analyzes diode I-V characteristics, models, and rectifier topologies. Connects device behavior to power supply design and signal processing.

  • Lesson 4 • Operational Amplifiers

    Introduces ideal op-amp characteristics and fundamental linear configurations. Enables design of amplifiers, filters, and signal conditioning circuits.

  • Lesson 5 • Semiconductor Physics Basics

    Covers intrinsic and extrinsic semiconductors, doping, and carrier behavior. Provides the physical foundation for understanding all active electronic devices.

Chapter 5See details

Electrical Machines and Transformers

  • Lesson 1 • Three-Phase Induction Motors

    Analyzes rotating magnetic fields, slip, and equivalent circuit of induction motors. Covers the most widely used industrial motor type.

  • Lesson 2 • DC Machines

    Covers DC generator and motor construction, excitation types, and torque-speed characteristics. Prepares students to select and control DC drives.

  • Lesson 3 • Machine Selection and Efficiency

    Guides selection of machines based on load requirements, duty cycle, and efficiency standards. Applies energy efficiency ratings to real-world procurement decisions.

  • Lesson 4 • Synchronous Machines

    Examines synchronous generator and motor operation, excitation, and phasor diagrams. Connects to grid-connected generation and power factor control.

  • Lesson 5 • Magnetic Circuits and Transformers

    Applies magnetic circuit concepts to transformer analysis including losses and efficiency. Links electromagnetic theory to practical power conversion equipment.

Chapter 6See details

Power Systems and Distribution

  • Lesson 1 • Unsymmetrical Fault Analysis

    Uses symmetrical components to analyze single-line-to-ground and line-to-line faults. Extends fault analysis to the most common real-world fault types.

  • Lesson 2 • Power System Structure

    Describes generation, transmission, and distribution network components and voltage levels. Establishes the system-level context for all power engineering analysis.

  • Lesson 3 • Symmetrical Fault Analysis

    Calculates three-phase fault currents using Thevenin equivalents and impedance matrices. Provides data for protective relay and breaker sizing.

  • Lesson 4 • Power System Protection

    Covers relay types, coordination, and circuit breaker operation for system protection. Ensures students can design protective schemes that isolate faults safely.

  • Lesson 5 • Load Flow Analysis

    Applies Gauss-Seidel and Newton-Raphson methods to solve bus voltages and power flows. Enables steady-state network performance evaluation.

Chapter 7See details

Control Systems for Electrical Engineers

  • Lesson 1 • Time-Domain Response Analysis

    Analyzes first- and second-order system responses to step and ramp inputs. Connects pole locations to transient performance specifications.

  • Lesson 2 • Frequency-Domain Compensation

    Designs lead, lag, and lead-lag compensators using Bode and root locus methods. Improves bandwidth, stability margins, and steady-state accuracy.

  • Lesson 3 • System Modeling and Transfer Functions

    Derives Laplace-domain transfer functions from differential equations of electrical systems. Establishes the mathematical framework for all control analysis.

  • Lesson 4 • PID Controller Design

    Designs proportional, integral, and derivative controllers to meet performance specs. Directly applicable to motor drives, power converters, and process control.

  • Lesson 5 • Stability Analysis

    Applies Routh-Hurwitz, root locus, and Bode methods to assess closed-loop stability. Provides multiple perspectives on system stability margins.

Chapter 8See details

Power Electronics and Drives

  • Lesson 1 • Variable-Speed Motor Drives

    Applies converter topologies to induction and permanent-magnet motor speed control. Covers V/f, vector, and direct torque control strategies.

  • Lesson 2 • Renewable Energy Converters

    Analyzes PV inverters, wind turbine converters, and grid interconnection requirements. Prepares students for design of clean energy power electronics systems.

  • Lesson 3 • Rectifiers and Inverters

    Covers controlled rectifiers and voltage-source inverter topologies with PWM control. Links AC-DC and DC-AC conversion to drive and grid-tie applications.

  • Lesson 4 • Power Semiconductor Switches

    Covers IGBT, MOSFET, thyristor, and diode characteristics for power conversion. Establishes device selection criteria based on voltage, current, and switching speed.

  • Lesson 5 • DC-DC Converter Topologies

    Analyzes buck, boost, and buck-boost converters in continuous and discontinuous modes. Provides design equations for output voltage, inductor, and capacitor sizing.

Certification

Your valid completion certificate

This course is for you:

  • Electrical technician: ready to move into engineering design and analysis roles.

  • Engineering student: seeking structured reinforcement beyond what lectures provide.

  • Mechanical engineer: expanding expertise to cover electrical machines and drives.

  • Career changer: building verified electrical engineering skills from a technical background.

  • Facilities or maintenance engineer: aiming to take on power system responsibilities.

  • Renewable energy professional: needing deeper electrical theory for grid-tied projects.

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