Design and Management of Battery-Supercapacitor Hybrid Electrical Energy Storage Systems for Regulation Services

Younghyun Kim;Vijay Raghunathan;Anand Raghunathan
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引用次数: 71

Abstract

Regulation services (RS) play an important role in maintaining the stability of electric grids by correcting for short-term mismatches between electricity generation and demand. RS providers dynamically supply electricity to the grid or consume electricity from it, in response to regulation signals, in return for economic compensation. This capability is commonly realized through large-scale electrical energy storage (EES) systems based on batteries. However, the highly transient nature of the regulation signals implies that the batteries used for RS are subject to frequent charge and discharge cycles, leading to shortened battery life and thereby impacting the profitability of RS. In this work, we explore the use of hybrid EES (HEES) systems, which combine batteries and supercapacitors, to improve the profitability of RS. HEES systems have the potential to reduce the cost of providing RS by utilizing supercapacitors to respond to the high-frequency components of the regulation signal, prolonging battery life. However, realizing this potential presents several challenges. First, the benefits of HEES systems have a profound dependence on the type of hybrid topology (i.e., active or passive), which results in a tradeoff between the implementation cost and the utilization of the supercapacitor capacity. Second, the allocation of energy storage capacity to batteries and supercapacitors should be carefully determined in the design phase because the reduction in battery replacement cost due to the use of supercapacitors must be balanced against the increased upfront cost for supercapacitors. Third, active HEES systems involve the problem of managing the power flows to batteries and supercapacitors so as to realize maximum cost benefits. To address these challenges, we present a framework for the design and management of a HEES system, so as to maximize the profit from the perspective of an RS provider. This framework consists of i) a design-time capacity optimization phase that determines the best allocation of capacity to batteries and supercapacitors and ii) a run-time management scheme that selects how the different storage devices are orchestrated considering their characteristics and the incoming regulation signal. Our experiments show that, with the proposed capacity optimization and management framework, the use of a passive or an active HEES system can improve the profit of RS providers by 1.16× or 5.44×, respectively.
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用于调节服务的电池超级电容器混合电能存储系统的设计与管理
调节服务(RS)通过纠正发电和需求之间的短期不匹配,在维护电网稳定方面发挥着重要作用。RS提供商响应监管信号,动态向电网供电或消耗电网电力,以换取经济补偿。这种能力通常通过基于电池的大规模电能存储(EES)系统来实现。然而,调节信号的高度瞬态性质意味着RS所用的电池会经历频繁的充电和放电循环,导致电池寿命缩短,从而影响RS的盈利能力。在这项工作中,我们探索了使用混合EES(HEES)系统,该系统结合了电池和超级电容器,以提高RS的盈利水平。HEES系统有可能通过利用超级电容器响应调节信号的高频分量来降低提供RS的成本,从而延长电池寿命。然而,实现这一潜力带来了若干挑战。首先,HEES系统的优点严重依赖于混合拓扑的类型(即,有源或无源),这导致了实现成本和超级电容器容量利用率之间的权衡。其次,应在设计阶段仔细确定电池和超级电容器的储能容量分配,因为使用超级电容器导致的电池更换成本的降低必须与超级电容器前期成本的增加相平衡。第三,有源HEES系统涉及管理流向电池和超级电容器的功率流的问题,以实现最大的成本效益。为了应对这些挑战,我们提出了一个HEES系统的设计和管理框架,以便从RS提供商的角度实现利润最大化。该框架包括i)设计时容量优化阶段,该阶段确定电池和超级电容器的最佳容量分配,以及ii)运行时管理方案,该方案考虑不同存储设备的特性和传入的调节信号来选择如何协调不同存储设备。我们的实验表明,在所提出的容量优化和管理框架下,使用被动或主动HEES系统可以分别将RS提供商的利润提高1.16倍或5.44倍。
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