Control Issues in Robust High-efficiency Energy Conversion with Application to Renewable Energy Systems
Control Issues in Robust High-efficiency Energy Conversion with Application to Renewable Energy Systems
批准号:
RGPIN-2015-03811
负责人:
Moallem, Mehrdad
金额:
$2.19万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2018
资助国家:
加拿大
项目状态:
已结题
起止时间:
2018-01-01 至 2019-12-31
中文摘要
现代可再生能源系统在其发展过程中面临两大挑战:(1)生产可靠和经济能源的基础科学和技术;(2)将能源可靠和最佳转化为可用形式的能源加工技术。虽然电子技术在过去几十年中已经完善,但它必须重新设计和适应新的挑战。为此,控制,通信和计算技术,沿着,随着新的电力电子转换器和设备,预计将在现代RES中变得越来越重要。一个特别重要的领域是稳定和鲁棒的间歇电源,负载和能量存储设备的控制。特别地,开关功率转换器本质上是非线性的,受到严格的输入/状态约束,并且遭受各种不确定性。大多数现有的控制方法利用线性化的稳态模型,忽略了上述约束或不能用于设计间歇性能源所需的鲁棒控制器。RES能量转换器的另一个共同特征是存在最佳功率操作点,其取决于可用输入功率和负载条件。为了最大限度地利用这种转换器,功率处理级必须以可靠和准确的方式自主跟踪最佳点。此外,可再生能源系统通常具有固有的非线性特性,具有显著的参数和动态不确定性。因此,基于线性化的设计方法可能由于忽略非线性效应而不能提供反馈系统的全部优点。* 为应付上述挑战,建议的研究将探讨以下研究课题:(a)发展创新的极值搜索算法,透过先进的控制,尽量提高能源利用效率;(B)解决电力电子转换器的动态稳定性问题,包括升压转换器的内部动态不稳定性,以及因恒定和可变电力负载而引起的负阻不稳定性;(c)通过先进的信号处理减少功率转换器和容错控制中的传感器数量;(d)对(a)-(c)部分所列关于实验室规模设置的研究活动进行实验性概念验证,以展示拟议的解决方案。这项研究计划的动机是现代能源转换技术的迫切需求。因此,它将导致创新的控制设计方法的功率转换,解决一些关键的技术障碍,在RES,如稳定性,感官的要求,并最大限度地提高能源利用能力。该计划将为RES文献做出新的贡献,开发新的专业知识,并将进一步用于启动与加拿大相关行业的合作活动。**
英文摘要
Modern renewable energy systems (RES) face two main challenges in their evolution: (1) Fundamental sciences and technologies to produce reliable and economical energy sources; and (2) Energy processing technologies for reliable and optimal conversion of energy into usable forms. Although the electronics technology has been perfected in the past decades, it has to be redesigned and adapted to match new challenges. To this end, control, communication, and computing technologies, along with new power electronics converters and devices are expected to become increasingly important in modern RES. An area of particular importance is stable and robust control of intermittent power sources, loads, and energy storage devices. In particular, switching power converters are intrinsically nonlinear, subject to strict input/state constraints, and suffer from various uncertainties. Most existing control methods utilize linearized steady state models that neglect the above constraints or cannot be used to design robust controllers required by intermittent energy sources. Another common feature of RES energy converters is the existence of an optimal power operating point, which is dependable on the available input power and load conditions. To maximally utilize such converters, the power processing stage has to autonomously track the optimal point in a reliable and accurate manner. Furthermore, renewable energy systems often have inherently nonlinear characteristics with significant parametric and dynamic uncertainties. Hence, design methods based on linearization may fail to provide the full benefits of feedback systems due to neglecting nonlinear effects. ***To address the above challenges, the proposed research will investigate the following research topics: (a) Development of innovative extremum seeking algorithms to maximize energy harnessing efficiency through advanced controls; (b) Addressing dynamic stability issues in power electronics converters, including internal dynamics instability of boost converters and negative resistance instability due to constant and variable power loads; (c) Reduction of the number of sensors in power converters and fault tolerant control through advanced signal processing; and (d) Experimental proof-of-concept validation of the research activities listed in parts (a)-(c) on laboratory scale setups to demonstrate the proposed solutions. This research program is motivated by pressing needs in modern energy conversion technology. As such, it would lead to innovative control design methods for power conversion by addressing some key technology barriers in RES such as stability, sensory requirement, and maximization of energy harnessing capability. The program will make new contributions to the RES literature, develop new expertise, and will further be utilized to initiate collaborative activities with relevant Canadian industries. **
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