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Engineering Sustainable Energy Systems: How Reactive and Predictive Homeostatic Control Can Prepare Electric Power Systems for Environmental Challenges

机译:工程可持续能源系统:无功和预测性稳态控制如何为环境挑战制备电力系统

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Nowadays electric power generation and distribution systems are being faced with a number of challenges and concerns which emanate not so much from a shortage of energy supply but from environmental and operational issues. They are required to respond to such challenges very rapidly and effectively so as to preserve stability and continuity of operations at any time, regardless of what may occur in the surroundings. This in fact is the true measure of what sustainable energy systems (SES) are all about, and homeostatic control (HC) of energy systems seeks just that: to enable energy systems to become highly efficient and effective very rapidly, by attaining a state of equilibrium between energy supply and energy expenditure in electric power systems (EPS) operation. To accomplish so they ought to imitate homeostasis mechanisms present in all living organisms. Ever since Cannon (1929, 1935) first introduced the concept, attention on homeostasis and its applications have been the sole patrimony of medicine and biology to find cures for diseases like diabetes and obesity. Nevertheless, homeostasis is rather an engineering concept in its very essence―even more so than in the natural sciences―and its application in the design and engineering of sustainable hybrid energy systems (SHES) is a reality. In this paper we present the groundwork that supports the theoretical model underlining the engineering of homeostasis in SHES. Homeostasis mechanisms are present in all living organisms, and thus are also applicable to EPS in order to enable and maintain a sustainable performance when EPS are linked to energy efficiency (EE) and thriftiness. In doing so, both reactive and predictive homeostasis play a substantive role in the engineering of such mechanisms. Reactive homeostasis (RH) is an immediate response of the SES to a homeostatic challenge such as energy deprivation, energy shortage or imbalance. RH entails feedback mechanisms that allow for reactive compensation, reestablishing homeostasis or efficient equilibrium in the system. Predictive homeostasis (PH), on the other hand, is a proactive mechanism which anticipates the events that are likely to occur, sending the right signals to the central controller, enabling SES to respond early and proactively to environmental challenges and concerns. The paper explores both concepts based on previous work in order to advance the research in the field of HC applied to electric power systems.
机译:如今电力发电和分配系统面临着许多挑战和疑虑,这些挑战和担忧不会从能源供应短缺而且来自环境和运营问题。他们必须非常迅速,有效地响应这些挑战,以便随时保留运营的稳定性和连续性,无论周围可能发生什么。事实上,这是可持续能源系统(SES)的真正衡量标准,而且能源系统的稳态控制(HC)寻求:为了使能源系统能够通过实现状态而非常迅速地变得高效和有效电力系统(EPS)操作中能源供应与能源支出之间的平衡。为了实现,所以他们应该模仿所有生物体中存在的稳态机制。自加兰森(1929年,1935年)首先介绍了该概念,对稳态和其应用的关注是唯一的医学和生物学的遗产,以寻找糖尿病和肥胖等疾病的治疗。然而,稳态在其本质上是一种工程概念 - 甚至比在自然科学中更重要 - 它在可持续混合能源系统(SHES)的设计和工程中的应用是现实。在本文中,我们介绍了支持在她的稳定工程工程的理论模型的基础。所有生物体中存在稳态机制,因此也适用于EPS,以便在EPS与能效(EE)与节能相关时实现和维持可持续性。在这样做时,反应性和预测性稳态在这种机制的工程中起着实质性作用。反应性稳态(RH)是对SES对稳态挑战的直接反应,例如能源剥夺,能量短缺或不平衡。 RH需要反馈机制,可用于反应补偿,重新建立稳态或系统中的高效均衡。另一方面,预测性稳态(pH)是一种积极的机制,它预测可能发生的事件,向中央控制器发送正确的信号,使SES能够提前和积极地响应环境挑战和疑虑。本文根据以前的工作探讨了这两个概念,以便推进应用于电力系统的HC领域的研究。

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