Rooftop Photovoltaic System with Battery Storage to Supply Power in a Sewage Water Pumping Station based Industrial Microgrid with Zero Grid Power

A. M. Mahfuz-Ur-Rahman, Ashif Buksh, Md. Rabiul Islam, K. Muttaqi, D. Sutanto
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Abstract

Achieving zero grid power in systems that utilize solar photovoltaic (PV) energy is a challenging task. This is because of the varying power output of solar PV due to the changing weather conditions and the controls required for a three-phase system. A system that operates induction motor loads, such as in the water pumping plant, increases this difficulty due to their high starting currents and power requirements, which can cause large voltage dips in a grid-connected system, and can have an even larger impact on isolated ones. A battery energy storage system (BESS), consisting of a large lithium-ion battery, a bi-directional dc-dc converter and a bi-directional dc-ac converter is considered in this paper to normalize the output power. A model is developed to accurately simulate the motor loads and the control strategies to operate the system to consume zero grid power at all times. These strategies are designed to limit the transients in the system, as well as to mitigate voltage dips and swells to create a more robust micro-grid. The proposed strategies are then applied for use in a water pumping plant equipped with solar PV and BESS and the simulation results show that the proposed strategy is effective in ensuring that the plant can maintain a zero grid power consumption when sufficient capacities of the solar PV and BESS are available that can be allocated to generate and store the required energy to meet the varying load.
基于零电网功率的污水泵站工业微电网屋顶光伏电池储能系统供电
在利用太阳能光伏(PV)能源的系统中实现零电网功率是一项具有挑战性的任务。这是因为由于天气条件的变化和三相系统所需的控制,太阳能光伏发电的输出功率会发生变化。一个运行感应电机负载的系统,如抽水设备,由于其高启动电流和功率要求,增加了这种困难,这可能导致电网连接系统中的大电压下降,并且可能对孤立的系统产生更大的影响。本文研究了一种由大型锂离子电池、双向dc-dc变换器和双向dc-ac变换器组成的电池储能系统(BESS),对输出功率进行归一化。建立了一个精确模拟电机负载和控制策略的模型,以使系统在任何时候都不消耗电网功率。这些策略旨在限制系统中的瞬变,以及减轻电压下降和膨胀,以创建更强大的微电网。将所提出的策略应用于一个配备太阳能光伏和BESS的抽水厂,仿真结果表明,当太阳能光伏和BESS有足够的容量可供分配以产生和存储所需的能量以满足变化负荷时,所提出的策略可以有效地确保该抽水厂保持零电网功耗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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