U.S.-Jordan Cooperative Research: Application of the Bifurcation and Chaos Theory to Soft-Switching Power Factor Correction Circuits
U.S.-Jordan Cooperative Research: Application of the Bifurcation and Chaos Theory to Soft-Switching Power Factor Correction Circuits
批准号:
0423645
负责人:
Issa Batarseh
金额:
$0.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-09-01 至 2006-08-31
中文摘要
0423645 Batarseh描述:该项目支持由佛罗里达州奥兰多中佛罗里达大学电气和计算机工程系Issa Batarseh博士和约旦伊尔比德约旦科技大学电气工程系Ahmed Harb博士开展的合作项目。本课题研究现代控制理论在软开关功率因数校正电路动态建模中的应用。基于软开关技术的高频交直流功率因数校正的混沌行为研究较少。拟议项目的主要目标是将现代控制技术应用于新开发的功率因数校正拓扑,以针对电力处理系统中不断下降的电能质量,从而改善系统性能。更具体地说,该项目的重点将是具有直接能量转移的高频谐振单级功率因数方案。PI将对PFC电路的动态稳定性进行解析、仿真和实验研究和分析。为这项研究选择的拓扑结构是基于PIS在以前资助的NSF项目中所做的研究。这项工作所采用的步骤是首先建立所提出的变流器在开环和闭环条件下的离散大信号模型,然后在Spice和Mat实验室中对所建立的模型进行验证。在PFC电路中使用分叉和混沌理论的影响是,它将导致非线性控制的发展,以减轻甚至消除可能的不稳定振荡。这将改善PFC电路的性能,并将对许多其他电力电子电路的动态研究产生影响。范围和更广泛的影响:研究结果可以导致开发适用于各种类型的转换器的分析方法,并导致设计更稳定的转换器的能力。功率因数校正对功率变流器的节能性能起着重要的作用。电能质量是一个主要问题,因为我们的社会需要处理如此多的电子设备,这些设备依赖于高质量的电力。该项目将促进中东地区能源效率领域的国际合作。
英文摘要
0423645 BatarsehDescription: This project supports a cooperative project by the Dr. Issa Batarseh, Department of Electrical and Computer Engineering at University of Central Florida, Orlando, Florida and Dr. Dr. Ahmed Harb, Electrical Engineering Department, Jordan University of Science and Technology, Irbid, Jordan. The project deals with the application of modern control theory to dynamic modeling of soft switching power factor correction circuits. Limited research work has been conducted on exploring the chaos behavior of high frequency ac-dc power factor correction with soft-switching technique. The main objective of the proposed project is to apply modern control techniques to newly developed power factor correction topologies that target declining power quality in power processing systems and thereby improve system performance. More specifically, the focus of the project will be on the high-frequency resonant single-stage power factor scheme with direct energy transfer. The PIs will study and analyze the dynamic stability of the PFC circuit analytically, simulation and experimentally. The topologies selected for this study were based on the research done by the PIs in previously funded NSF projects. The procedure adopted for this work is to first develop the discrete large-signal model of the proposed converters under open- and closed-loop conditions, and then verify the developed models in Spice and Mat lab. The impact of using bifurcation and chaos theory in PFC circuits is that it will lead to the development of a nonlinear control to mitigate or even to eliminate possible unstable oscillations. This will improve the performance of the PFC circuit and will have impact on dynamic study of much other power electronic circuit.Scope and broader impact: The research results can lead to developing analytical methods that are applicable to various types of converters and leading to the ability to design more stable converters. Power factor correction plays a major role in energy saving features of power converters. Power quality is a major issue, as our society has to deal with so many electronic equipments that depend on high-quality electric power. This project will promote international collaboration in the area of energy-efficiency in the Middle East region.
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