Techniques of Design-Oriented Analysis

所在平台: Coursera

课程主页: https://www.coursera.org/learn/techniques-of-design-oriented-analysis

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课程简介

课程名称:设计导向分析技术 课程概述:此课程可作为学分修读,编号为ECEA 5706,是科罗拉多大学博尔德分校电气工程硕士学位的一部分。该课程是电源电子建模与控制系列课程中的第2门,专注于设计导向分析技术,旨在帮助学生快速深入理解开关电源转换器的模型,并将这些见解转化为实际的转换器设计。课程涵盖的设计导向技术包括额外元素定理(Extra Element Theorem,EET)和N额外元素定理(N-Extra Element Theorem,N-EET)。通过实践案例,展示如何利用EET简化电路分析、评估初始未建模组件的影响以及设计SEPIC和Cuk等转换器的阻尼以实现高性能闭环控制。N-EET则允许学生进行电路分析并最小化代数推导。建模和设计实例将通过设计导向的MATLAB脚本和Spice仿真进行支持。完成该课程后,学生将掌握适用于高性能闭环控制开关电源转换器设计的分析技能。 建议学生在报名此课程之前,完成科罗拉多大学博尔德分校的电源电子专业课程以及第1门课程:平均开关建模与仿真(Averaged-Switch Modeling and Simulation)。 课程目标包括: - 理解额外元素定理的表述及推导 - 将额外元素定理应用于转换器分析和设计问题 - 理解N额外元素定理的表述 - 将N额外元素定理应用于转换器分析和设计问题 - 运用设计导向分析技术进行开关转换器的分析、设计和仿真 大纲: - 名称:额外元素定理 描述:介绍额外元素定理的表述、推导及应用示例 - 名称:设计示例:SEPIC频率响应 描述:将额外元素定理应用于复杂转换器传递函数的分析与设计 - 名称:N额外元素定理 (NEET) 描述:介绍N额外元素定理的表述及应用示例 通过本课程,学员将能够掌握和运用设计导向的分析技术,为电源电子领域的进一步学习和研究奠定扎实基础。

课程大纲

Name:Extra Element Theorem

Description:Introduction to Extra Element Theorem: statement, derivation, and application examples

Name:Design example: SEPIC frequency responses

Description:Application of the Extra Element Theorem to analysis and design of complex converter transfer functions

Name:N Extra Element Theorem (NEET)

Description:Introduction to N Extra Element Theorem: statement, and application examples

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课程详情

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

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