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Hybrid Energy Storage Implementation in DC and AC Power System for Efficiency, Power Quality and Reliability Improvements

机译:在直流和交流电力系统中实现混合能量存储,以提高效率,电能质量和可靠性

摘要

Battery storage devices have been widely utilized for different applications. However, for high power applications, battery storage systems come with several challenges, such as the thermal issue, low power density, low life span and high cost. Compared with batteries, supercapacitors have a lower energy density but their power density is very high, and they offer higher cyclic life and efficiency even during fast charge and discharge processes. In this dissertation, new techniques for the control and energy management of the hybrid battery-supercapacitor storage system are developed to improve the performance of the system in terms of efficiency, power quality and reliability.To evaluate the findings of this dissertation, a laboratory-scale DC microgrid system is designed and implemented. The developed microgrid utilizes a hybrid lead-acid battery and supercapacitor energy storage system and is loaded under various grid conditions. The developed microgrid has also real-time monitoring, control and energy management capabilities.A new control scheme and real-time energy management algorithm for an actively controlled hybrid DC microgrid is developed to reduce the adverse impacts of pulsed power loads. The developed control scheme is an adaptive current-voltage controller that is based on the moving average measurement technique and an adaptive proportional compensator. Unlike conventional energy control methods, the developed controller has the advantages of controlling both current and voltage of the system. This development is experimentally tested and verified. The results show significant improvements achieved in terms of enhancing the system efficiency, reducing the AC grid voltage drop and mitigating frequency fluctuation.Moreover, a novel event-based protection scheme for a multi-terminal DC power system has been developed and evaluated. In this technique, fault identification and classifications are performed based on the current derivative method and employing an artificial inductive line impedance. The developed scheme does not require high speed communication and synchronization and it transfers much less data when compared with the traditional method such as the differential protection approach. Moreover, this scheme utilizes less measurement equipment since only the DC bus data is required.
机译:电池存储设备已被广泛用于不同的应用。然而,对于高功率应用,电池存储系统面临一些挑战,例如散热,低功率密度,低寿命和高成本。与电池相比,超级电容器具有较低的能量密度,但其功率密度非常高,即使在快速充电和放电过程中,它们也可以提供更高的循环寿命和效率。本文研究了混合动力电池-超级电容器存储系统的控制和能量管理新技术,以从效率,电能质量和可靠性方面改善系统性能。为了评估本文的研究结果,实验室规模化直流微电网系统的设计与实现。开发的微电网利用混合铅酸电池和超级电容器储能系统,并在各种电网条件下加载。开发的微电网还具有实时监控,控制和能源管理功能。针对主动控制的混合直流微电网,开发了一种新的控制方案和实时能源管理算法,以减少脉冲功率负载的不利影响。所开发的控制方案是基于移动平均测量技术和自适应比例补偿器的自适应电流-电压控制器。与传统的能量控制方法不同,开发的控制器具有控制系统电流和电压的优势。此开发经过实验测试和验证。结果表明,在提高系统效率,减少交流电网压降和减轻频率波动方面取得了显着改善。此外,已开发并评估了一种基于事件的新型多端子直流电力系统保护方案。在该技术中,基于电流导数方法并采用人工感应线阻抗来执行故障识别和分类。所开发的方案不需要高速通信和同步,并且与传统方法(例如差动保护方法)相比,传输的数据要少得多。而且,由于仅需要DC总线数据,因此该方案使用较少的测量设备。

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    Farhadi Mustafa;

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  • 年度 2016
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