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Techniques of Design-Oriented Analysis · LearnSpace
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Techniques of Design-Oriented Analysis

Курс от University of Colorado Boulder
Средний≈ 12.8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course can also be taken for academic credit as ECEA 5706, part of CU Boulder’s Master of Science in Electrical Engineering degree. This is Course #2 in the Modeling and Control of Power Electronics course sequence. The course is focused on techniques of design-oriented analysis that allow you to quickly gain insights into models of switching power converters and to translate these insights into practical converter designs. The design-oriented techniques covered are the Extra Element Theorem and the N-Extra Element Theorem (N-EET). Through practical examples, it is shown how the EET can be used to simplify circuit analysis, to examine the effects of initially unmodeled components, and to design damping of converters such as SEPIC and Cuk to achieve high-performance closed-loop controls. The N-EET will allow you to perform circuit analysis and to derive circuit responses with minimum algebra. Modeling and design examples are supported by design-oriented MATLAB script and Spice simulations. After completion of this course, the student will gain analytical skills applicable to the design of high-performance closed-loop controlled switching power converters. We strongly recommend students complete the CU Boulder Power Electronics specialization as well as Course #1 Averaged-Switch Modeling and Simulation before enrolling in this course (the course numbers provided below are for students in the CU Boulder's MS-EE program): ● Introduction to Power Electronics (ECEA 5700) ● Converter Circuits (ECEA 5701) ● Converter Control (ECEA 5702) ● Averaged-Switch Modeling and Simulation (ECEA 5705) After completing this course, you will be able to: ● Understand statement and derivation of the Extra Element Theorem ● Apply the Extra Element Theorem to converter analysis and design problems ● Understand the statement of the N-Extra Element Theorem ● Apply the N-Extra Element Theorem to converter analysis and design problems ● Apply techniques of design-oriented analysis to analysis, design, and simulations of switching converters

Навыки, которые вы освоите

Engineering AnalysisPower ElectronicsNetwork AnalysisElectronicsMatlabSimulation and Simulation SoftwareElectrical SystemsElectronic SystemsHardware DesignElectrical EngineeringControl SystemsElectrical Power

Программа курса

3 модулей · 38 учебных материалов

01Extra Element Theorem18 материалов

Introduction to Techniques of Design-Oriented Analysis

Course Updates and Accessibility SupportЧтениеNon-Credit Students: Welcome and Where to Find HelpЧтениеIntroduction to the CourseЧтениеIntroduce YourselfОбсуждение

Учитесь у экспертов

Dr. Dragan Maksimovic

Charles V. Schelke Endowed Professor

Techniques of Design-Oriented Analysis
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≈ 12.8 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Украинский, Китайский (Китай), Греческий, Итальянский, Бразильский португальский, Вьетнамский, Нидерландский, Корейский, Ория, Немецкий, Русский, Тайский, Индонезийский, Шведский, Турецкий, Испанский, Хинди, Японский, Казахский, Польский

Часть программы вашего университета
Accessing & Using MATLABЧтение
Accessing & Using LTspiceЧтение
Course MATLAB & LTspice ExamplesЧтение

Introduction to Extra Element Theorem

Introduction to Extra Element TheoremВидеоEET Questions and AnswersВидеоEET DerivationВидеоPractice Problem: Extra Element TheoremЗадание

Applications of the Extra Element Theorem

Practical Applications of EETВидеоPractice Problem: Zout Using EETЗаданиеEET Application - Effect of Capacitor ESRВидеоGraphical Comparison of ImpedancesВидеоComparison of Impedances Using MATLABЧтениеPractice Problem: Graphical Comparison of ImpedancesЗадание

Graded Quiz: Extra Element Theorem (EET)

Extra Element Theorem (EET)Задание
02Design example: SEPIC frequency responses9 материалов

Derivation of SEPIC frequency responses using EET

Analysis of SEPIC Frequency Responses Using EETВидеоSEPIC Example: ZNВидеоSEPIC Example: ZDВидеоDerivation of ZD Using EETВидеоSEPIC Example: Undamped Frequency ResponseВидео

Damping of SEPIC Frequency Responses

SEPIC Example: Impedance InteractionsВидеоPractical Design of DampingВидеоSEPIC Frequency Responses: MATLAB and LTspice examples Чтение

Graded Quiz: Cuk Converter Frequency Responses Using EET

Cuk Converter Frequency Responses Using EETЗадание
03N Extra Element Theorem (NEET)11 материалов

N Extra Element Theorem

Introduction to N Extra Element Theorem (NEET)Видео

NEET Application Examples

NEET Application Example: Two-Section FilterВидеоNEET: DiscussionВидеоTwo-section Filter Frequency Response Via MATLABЧтениеNEET - Application Example: Damped Filter Transfer FuncitonВидеоDamped Filter: A Solved NEET ExampleЧтение

Frequency inversion

NEET - Frequency InversionВидеоNEET Application Example: Output ImpedanceВидео

NEET Summary

NEET - SummaryВидеоPractice Problem: Analysis of SEPIC Frequency Responses Using NEETЗадание

Graded Quiz: N Extra Element Theorem (NEET)

Boost Analysis Using the N Extra Element Theorem (NEET)Задание