Feasibility Analysis of Different Energy Storage Systems for Solar Road Lighting Systems

Suntiti Yoomak, A. Ngaopitakkul
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引用次数: 9

Abstract

This study investigates and analyses the feasibility of different energy storage systems for solar road lighting systems. The energy storage systems used in this study are divided into two cases, namely homogenous energy storage system (lead-acid (LA) batteries, lithium-ion (LI) batteries, and ultracapacitors (UCs)) and hybrid energy storage systems (leadacid batteries with ultracapacitors (LA and UC) and lithium-ion batteries with ultracapacitors (LI and UC)). Various solar power schemes are implemented based on stable and unstable solar irradiance conditions using an experimental setup. Economic analysis of the solar road lighting systems is performed based on the presented energy storage systems using discounted payback period (DPP), net present value (NPV), and internal rate of return (IRR). The installation of energy storage systems with individual and central systems for the solar road lighting system is also discussed. Results show that LA batteries, LI batteries, and UCs yielded satisfactory active power quality for effective charging in all ranges of solar irradiance. However, the lifetimes of battery devices are degraded during dynamic active power charging. To overcome this shortcoming, hybrid energy storage systems are proposed using batteries and UCs. The use of LA batteries yields the lowest installation cost. However, LI batteries offer the best economic viability in the long term. The cost of UCs is too high to be used as an energy storage system for solar road lighting systems. However, the use of appropriate proportions of UCs with batteries to reduce current and active power fluctuations for charging the batteries is economically viable.
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太阳能道路照明系统不同储能系统的可行性分析
本研究调查并分析了太阳能道路照明系统中不同储能系统的可行性。本研究使用的储能系统分为两种情况,即均质储能系统(铅酸(LA)电池、锂离子(LI)电池和超级电容器(UCs))和混合储能系统(铅酸电池和超级电容器(LA和UC)和锂离子电池和超级电容器(LI和UC))。利用实验装置,在稳定和不稳定的太阳辐照条件下实现了各种太阳能发电方案。太阳能道路照明系统的经济分析是基于使用贴现回收期(DPP)、净现值(NPV)和内部收益率(IRR)的储能系统进行的。本文还讨论了太阳能道路照明系统中单体系统和中央系统储能系统的安装。结果表明,在所有太阳辐照度范围内,LA电池、LI电池和UCs都能获得令人满意的有效充电电能质量。然而,在动态有功充电过程中,电池器件的寿命会降低。为了克服这一缺点,提出了使用电池和UCs的混合储能系统。使用LA电池的安装成本最低。然而,从长远来看,锂电池提供了最佳的经济可行性。UCs的成本太高,不能用作太阳能道路照明系统的储能系统。然而,使用适当比例的UCs与电池,以减少电流和有功功率波动,为电池充电在经济上是可行的。
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