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EMT Simulation of Power Systems
This course is a hands-on course on electromagnetic transient (EMT) simulation In this course, you will learn not just what an EMT program computes, but how it does it: how each resistor, inductor, capacitor, line, transformer, and machine becomes something the computer can solve, and how those pieces are assembled and advanced one time step at a time. Every idea is paired with a circuit you build and run in NumaSim.
Who this course is for
Electrical engineers and senior/graduate students who want to understand and apply EMT simulation. You should be comfortable with:
- AC circuit theory (phasors, impedance, RLC transients);
- basic differential equations (first- and second-order responses);
- per-unit and three-phase power fundamentals;
- elementary linear algebra (solving
).
No prior simulation experience is assumed. No programming is required — the "lab" for every chapter is a NumaSim circuit in your browser.
What you will be able to do
By the end of the course you will be able to:
- Explain where EMT sits among power-system studies and when to reach for it instead of a load-flow or stability tool.
- Derive the companion (discrete) model of R, L, and C elements from the trapezoidal rule, and predict the numerical error and stability of a chosen time step.
- Assemble and solve the per-step network equations, including the handling of ideal sources and switches.
- Model travelling-wave transmission lines and explain reflections and the line-length / time-step relationship.
- Set up transformers, rotating machines, and their controls, and initialize them from a steady-state operating point.
- Build, run, and critically check an EMT study of a small power system, choosing the time step and reading the results with confidence.
How to use this course
Work the modules in order; each builds on the previous one. For every chapter:
- Read the theory and follow the derivations.
- Open the chapter's circuit with the Open in app link, run it, and reproduce the figure described in the text.
- Attempt the end-of-chapter problems before opening the solutions.
Circuits referenced in the text also appear in the sample gallery.
Course outline
Module 1 — Foundations of EMT (available now)
The core machinery every EMT program is built on.
- 1. What EMT simulation is and where it fits — transient time frames, EMT versus load-flow / stability studies, and the discretize-then-solve strategy.
- 2. Companion models: discretizing R, L, and C — the trapezoidal rule, the conductance-plus-history-source model, and a first look at numerical accuracy.
- 3. Building and solving the network each step — stamping the nodal system, updating history, the reference node, and switches.
Module 2 — Sources, switching, and power electronics (outline)
- Module 2 outline — sources and control signals, ideal switches, diodes / thyristors / IGBTs, numerical chatter and interpolation, and rectifier / converter examples.
Module 3 — Transmission lines and cables (outline)
- Module 3 outline — travelling waves, the Bergeron line model, frequency dependence, and line / cable parameter determination.
Module 4 — Transformers and rotating machines (outline)
- Module 4 outline — transformer models and saturation, the synchronous machine, and the induction machine.
Module 5 — Controls and machine controllers (outline)
- Module 5 outline — modeling control blocks in an EMT loop, excitation systems / AVRs, governors, power-system stabilizers, and controller auto-initialization.
Module 6 — System studies (outline)
- Module 6 outline — three-phase networks, faults, initialization from a load-flow, multi-rate subsystems, and the bridge to protection studies.
Appendices (outline)
- Appendices — numerical integration and stability, the per-unit system, choosing the time step, and a model-verification checklist.
Ready? Start with Chapter 1 — What EMT simulation is and where it fits.
