
Synchronous Machine Course
Master synchronous machines from electromagnetic fundamentals to grid-connected operation and protection. This course covers equivalent circuits, phasor analysis, excitation control, transient stability, and maintenance testing in rigorous technical depth. Whether you work in power generation, industrial drives, or system engineering, you will gain the analytical tools professionals rely on every day.
What you will learn:
You will build a complete understanding of synchronous machine theory, starting with rotating magnetic fields and electromagnetic principles, then advancing through equivalent circuit modeling, phasor diagrams, and power-torque equations. You will learn how excitation systems and automatic voltage regulators control terminal voltage and reactive power. Generator synchronization procedures, governor droop characteristics, and active power dispatch are covered in full operational detail. Synchronous motor starting methods and power factor correction applications are also addressed. The course concludes with transient and sub-transient reactance analysis, short-circuit calculations, protection relay schemes, and standardized testing and maintenance procedures.
How you study in practice Synchronous Machine Course
How you practise Synchronous Machine Course
For companies looking to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course Content
8 Chapters • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Synchronous Machines
Fundamentals of Synchronous Machines
Lesson 1 • Basic Electromagnetic Principles
Covers magnetic flux, Faraday's law, and Ampere's law as applied to rotating machines. Establishes the electromagnetic foundation for all subsequent machine analysis.
Lesson 2 • Principle of Synchronous Operation
Describes how rotor field locks onto the stator rotating field to achieve synchronism. Introduces the concept of torque angle and its physical significance.
Lesson 3 • Machine Construction and Components
Examines stator, rotor, windings, and core materials used in synchronous machines. Component knowledge supports fault diagnosis and maintenance decisions.
Lesson 4 • Rotating Magnetic Field Theory
Explains how three-phase currents produce a rotating magnetic field in the stator. Links field rotation speed to supply frequency and pole count.
Chapter 2HideHide detailsSee detailsEquivalent Circuit and Phasor Analysis
Equivalent Circuit and Phasor Analysis
Lesson 1 • Salient Pole Machine Analysis
Applies two-reaction theory to model salient pole machines with direct and quadrature axis reactances. Extends phasor diagrams to account for rotor saliency.
Lesson 2 • Synchronous Reactance and Impedance
Introduces synchronous reactance, armature resistance, and their combination into synchronous impedance. Provides the circuit model used throughout performance analysis.
Lesson 3 • Per-Unit System Application
Normalizes machine quantities using the per-unit system to simplify multi-machine calculations. Demonstrates base quantity selection and conversion procedures.
Lesson 4 • Phasor Diagrams for Motors
Extends phasor analysis to synchronous motor operation under varying load and excitation. Distinguishes under-excited and over-excited motor behavior.
Lesson 5 • Phasor Diagrams for Generators
Constructs phasor diagrams for lagging, unity, and leading power factor generator operation. Visualizes voltage, current, and EMF relationships under each condition.
Chapter 3HideHide detailsSee detailsPower, Torque, and Performance Characteristics
Power, Torque, and Performance Characteristics
Lesson 1 • Capability Curves and Operating Limits
Constructs generator and motor capability diagrams showing thermal and stability boundaries. Uses capability curves to determine safe operating regions.
Lesson 2 • Voltage Regulation
Defines voltage regulation and computes it using equivalent circuit and phasor methods. Explains the impact of power factor on regulation magnitude and sign.
Lesson 3 • Torque-Angle Characteristics
Plots electromagnetic torque versus torque angle and identifies the stability limit. Analyzes the effect of excitation and saliency on the torque curve shape.
Lesson 4 • Active and Reactive Power Equations
Derives power equations from the equivalent circuit and phasor diagram for both machine types. Connects power expressions to torque angle and excitation level.
Lesson 5 • Losses and Efficiency Analysis
Categorizes copper, core, friction, windage, and stray losses and their dependence on load. Calculates overall efficiency and identifies dominant loss sources.
Chapter 4HideHide detailsSee detailsExcitation Systems and Voltage Control
Excitation Systems and Voltage Control
Lesson 1 • Excitation System Modeling
Presents standard block diagram models for excitation systems used in stability studies. Identifies key transfer functions and time constants in each model.
Lesson 2 • Power System Stabilizers
Introduces power system stabilizers that add damping signals to the AVR to suppress oscillations. Explains stabilizer input signals, lead-lag compensation, and tuning.
Lesson 3 • Reactive Power and Voltage Droop
Analyzes reactive power sharing between parallel generators using voltage droop characteristics. Demonstrates how droop settings affect reactive load distribution.
Lesson 4 • Types of Excitation Systems
Surveys DC, AC, and static excitation system configurations and their historical development. Compares response speed, reliability, and maintenance requirements of each type.
Lesson 5 • Automatic Voltage Regulators
Explains AVR sensing, error amplification, and control signal generation for voltage regulation. Connects AVR action to terminal voltage stability under load changes.
Chapter 5HideHide detailsSee detailsSynchronous Generator Operation and Control
Synchronous Generator Operation and Control
Lesson 1 • Starting and Run-Up Procedures
Covers pre-start checks, prime mover startup, and speed run-up to rated synchronous speed. Establishes safe operational sequences before grid connection.
Lesson 2 • Active Power and Frequency Control
Analyzes governor droop characteristics and their role in active power sharing and frequency regulation. Links governor settings to system frequency response.
Lesson 3 • Shutdown and Unloading Procedures
Describes systematic load reduction, reactive power withdrawal, and breaker opening before shutdown. Ensures safe de-energization and equipment protection.
Lesson 4 • Reactive Power and Voltage Control
Manages reactive power output by adjusting field excitation while monitoring terminal voltage. Coordinates AVR settings with system voltage requirements.
Lesson 5 • Synchronization to the Grid
Explains the four synchronization conditions and methods for achieving them before closing the breaker. Covers manual, semi-automatic, and automatic synchronization techniques.
Chapter 6HideHide detailsSee detailsSynchronous Motor Applications and Starting
Synchronous Motor Applications and Starting
Lesson 1 • Synchronous Motor Operating Characteristics
Examines speed-torque behavior, constant-speed operation, and load angle variation under changing mechanical load. Distinguishes synchronous motor behavior from induction motor behavior.
Lesson 2 • Power Factor Correction Applications
Demonstrates how over-excited synchronous motors supply reactive power to improve system power factor. Calculates required excitation for target power factor correction.
Lesson 3 • Starting Methods for Synchronous Motors
Covers damper winding starting, variable-frequency drive starting, and pony motor methods. Evaluates starting torque, current, and transition to synchronous speed.
Lesson 4 • Industrial Drive Applications
Reviews synchronous motor use in compressors, pumps, mills, and other constant-speed industrial drives. Matches motor characteristics to load torque requirements.
Chapter 7HideHide detailsSee detailsTransient and Dynamic Behavior
Transient and Dynamic Behavior
Lesson 1 • Transient and Sub-Transient Reactances
Defines transient and sub-transient reactances and their time constants from physical winding behavior. Explains how these parameters govern fault current magnitude and decay.
Lesson 2 • Transient Stability Analysis
Applies the equal-area criterion to assess transient stability following a fault and clearance. Identifies critical clearing time and methods to improve stability margins.
Lesson 3 • Swing Equation and Rotor Dynamics
Derives the swing equation relating rotor acceleration to net torque and inertia constant. Uses the equation to predict rotor angle response to power imbalances.
Lesson 4 • Small-Signal Stability and Oscillations
Linearizes machine equations to analyze small-signal stability and inter-machine oscillations. Identifies damping and synchronizing torque components affecting oscillation modes.
Lesson 5 • Short-Circuit Analysis
Calculates three-phase and asymmetrical short-circuit currents using transient parameters. Applies results to protective relay setting and switchgear rating.
Chapter 8HideHide detailsSee detailsTesting, Protection, and Maintenance
Testing, Protection, and Maintenance
Lesson 1 • Factory and Commissioning Tests
Describes resistance, open-circuit, short-circuit, and heat-run tests performed to verify machine parameters. Links test results to equivalent circuit parameter determination.
Lesson 2 • Insulation and Condition Monitoring
Covers insulation resistance, polarization index, and partial discharge tests for winding health assessment. Introduces online condition monitoring techniques for continuous surveillance.
Lesson 3 • Fault Diagnosis and Remediation
Develops systematic fault diagnosis using symptoms, test data, and condition monitoring trends. Guides corrective actions for common winding, bearing, and excitation faults.
Lesson 4 • Preventive Maintenance Practices
Establishes scheduled maintenance tasks for windings, bearings, cooling systems, and slip rings. Prioritizes tasks by failure risk and operational impact.
Lesson 5 • Protection Relay Schemes
Surveys differential, overcurrent, loss-of-excitation, and out-of-step protection functions for generators. Explains the operating principles and setting guidelines for each relay type.
Your valid completion certificate
This course is for you:
Electrical engineers seeking deeper expertise in rotating machine behavior.
Power plant operators wanting to understand the machines they run daily.
Recent engineering graduates bridging the gap between theory and industry.
Maintenance technicians ready to move into engineering or specialist roles.
Energy consultants who need to evaluate generator performance and reliability.
Hobbyist engineers fascinated by how large-scale power generation actually works.
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