Power Engineering: Power System Analysis – Part 3
Power Engineering: Power System Analysis – Part 3, available at $64.99, has an average rating of 4.7, with 38 lectures, based on 145 reviews, and has 1848 subscribers.
You will learn about Power flow (load flow) analysis Calculate the bus admittance matrix of a power system Short circuit analysis of balanced and unbalanced faults Symmetrical Components Advanced concepts in Power Engineering Introduction to Power System Protection Importance of Symmetrical Components in Protective Relays This course is ideal for individuals who are Anybody with an interest in learning about power systems and power engineering It is particularly useful for Anybody with an interest in learning about power systems and power engineering.
Enroll now: Power Engineering: Power System Analysis – Part 3
Summary
Title: Power Engineering: Power System Analysis – Part 3
Price: $64.99
Average Rating: 4.7
Number of Lectures: 38
Number of Published Lectures: 38
Number of Curriculum Items: 38
Number of Published Curriculum Objects: 38
Original Price: $199.99
Quality Status: approved
Status: Live
What You Will Learn
- Power flow (load flow) analysis
- Calculate the bus admittance matrix of a power system
- Short circuit analysis of balanced and unbalanced faults
- Symmetrical Components
- Advanced concepts in Power Engineering
- Introduction to Power System Protection
- Importance of Symmetrical Components in Protective Relays
Who Should Attend
- Anybody with an interest in learning about power systems and power engineering
Target Audiences
- Anybody with an interest in learning about power systems and power engineering
This course is the third part of a multi-part course series about one of the main areas of electrical engineering: power system analysis. Power system analysis is the core of power engineering and its understanding is therefore essential for a career in this field. In this third course of the multi-part course series, you will learn about power flow (load flow) analysis and short circuit analysis and their use in power systems. The course is divided into the following sections:
1. Power Flow (Load Flow) Analysis: in section 2, we will introduce the concept of power flow. Also referred to as load flow, power flow is the analysis of how apparent, real, and reactive power flows between parts of a power system, from generation to the loads. One of the most widely used methods of Power Flow analysis will be covered: the Gauss-Seidel method method. A full example will be solved to help explain how this method is used for power flow analysis.
2. Short Circuit Analysis of Balanced Faults: in section 3, we will introduce short circuits. Also referred to as faults, short circuits are undesired occurrences in power systems when conductors are shorted between each other, to ground, or a combination of these. This is the basis for the field of power system protection and control which is widely important for the safe and reliable operation of power systems. To introduce how short circuits (faults) affect power systems, we will begin by discussing balanced (i.e., three-phase) short circuits. We will also introduce the concept of the short circuit capacity and the bus impedance matrix.
3. Short Circuit Analysis of Unbalanced Faults: in section 4, we will continue discussing short circuits (faults), but will discuss the more complex analysis of unbalanced faults (e.g., single-line-to-ground, line-to-line, and line-to-line-to-ground faults). To do this, we will introduce the technique of symmetrical components, which allows us to analyze unbalanced power systems more easily. This will allow you to further your career in power system protection and protective relaying.
In each section, several examples are solved to illustrate how to analyze real-world power systems.
By learning about power flow analysis and short circuit analysis and how they are used in power systems, you will be able to continue your study of power system analysis for a career in power engineering and electrical engineering.
Remember that Udemy offers a 30-day money-back guarantee. I am also always available for questions while you go through the course to ensure everything is clear.
See you in the course!
Course Curriculum
Chapter 1: Course Introduction
Lecture 1: Welcome to the Course
Lecture 2: About Your Instructor
Lecture 3: Outline and Objectives
Chapter 2: Power Flow (Load Flow) Analysis in Power Systems
Lecture 1: Introduction to Power Flow Analysis in Power Systems
Lecture 2: The Bus Admittance Matrix of a Power System
Lecture 3: Example – Calculating the Bus Admittance Matrix of a Power System
Lecture 4: Power Flow (Load Flow) Studies in Power Systems
Lecture 5: The Power Flow Equation
Lecture 6: The Gauss-Seidel Power Flow Method – Part 1
Lecture 7: The Gauss-Seidel Power Flow Method – Part 2
Lecture 8: Example – Gauss-Seidel Power Flow Method – Part 1
Lecture 9: Example – Gauss-Seidel Power Flow Method – Part 2
Lecture 10: Example – Gauss-Seidel Power Flow Method – Part 3
Lecture 11: Example – Gauss-Seidel Power Flow Method – Part 4
Lecture 12: Example – Gauss-Seidel Power Flow Method – Part 5
Lecture 13: Example – Gauss-Seidel Power Flow Method – Part 6
Chapter 3: Short Circuit Analysis of Balanced Faults in Power Systems
Lecture 1: Introduction to Short Circuit Analysis of Power Systems
Lecture 2: Balanced (Three-Phase) Faults in Power Systems
Lecture 3: Example – Balanced Faults (1 of 2)
Lecture 4: Example – Balanced Faults (2 of 2)
Lecture 5: The Short Circuit Capacity (SCC)
Lecture 6: The Bus Impedance Matrix
Lecture 7: Example – The Bus Impedance Matrix
Chapter 4: Short Circuit Analysis of Unbalanced Faults in Power Systems
Lecture 1: Introduction to Symmetrical Components and its use in Power Engineering
Lecture 2: Positive, Negative, and Zero Sequence Voltages in Power Systems
Lecture 3: Positive, Negative, and Zero Sequence Currents in Power Systems
Lecture 4: Positive, Negative, and Zero Sequence Impedances in Power Systems
Lecture 5: Example – Sequence Components Calculation (1 of 2)
Lecture 6: Example – Sequence Components Calculation (2 of 2)
Lecture 7: Example – Phase Components Calculation (1 of 2)
Lecture 8: Example – Phase Components Calculation (2 of 2)
Lecture 9: Single-Line-to-Ground Faults
Lecture 10: Example – Single-Line-to-Ground Fault Analysis
Lecture 11: Line-to-Line Faults
Lecture 12: Example – Line-to-Line Fault Analysis
Lecture 13: Double-Line-to-Ground Faults
Lecture 14: Example – Double-Line-to-Ground Fault Analysis
Chapter 5: Bonus Section
Lecture 1: Bonus Lecture
Instructors
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Ricardo Romero, PE
Professional Engineer | Owner at Romero Engineering Company
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- 2 stars: 2 votes
- 3 stars: 10 votes
- 4 stars: 59 votes
- 5 stars: 74 votes
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