Improved optimal sizing of hybrid PV/wind/battery energy systems

Gunes Gursoy, M. Baysal
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引用次数: 16

Abstract

Renewable energy resources have come into prominence as a solution to increased energy demand worldwide. Since the nature of the some renewable energy resources (RES) such as solar and wind energy is intermittent, the reliability of the system supplied from those sources is low. A hybrid energy system combining the several RES is one of the viable solutions to increase the reliability of the system. This paper develops a optimal sizing method for hybrid energy systems incorporating photovoltaic (PV), wind and battery components. In the developed model, the effects of variations in air density and PV conversion efficiency on the generated energy amount are considered in the calculation resulting in more accurate optimal sizing. A remote area in Texas State, USA, is chosen for optimal sizing of hybrid PV/wind/battery energy system based on the case study. Meteorological data such as solar radiation, wind speed and ambient temperature is modified and then converted to useful energy. In order to avoid using excessive battery capacity, the demand response technique is applied for the situation in which energy demand is much more than energy generation. The results show that assuming air density and PV conversion efficiency to be constant causes about 15% and %20 deviation in calculation, respectively. The demand response method also provide saving of 28% in capital cost.
改进了光伏/风能/电池混合能源系统的最佳尺寸
可再生能源作为解决全球日益增长的能源需求的一种解决方案,已经变得越来越突出。由于一些可再生能源(如太阳能和风能)的性质是间歇性的,因此由这些资源提供的系统的可靠性很低。将多种可再生能源组合在一起的混合能源系统是提高系统可靠性的可行方案之一。本文提出了一种包含光伏、风能和电池组件的混合能源系统的优化尺寸方法。在该模型中,计算中考虑了空气密度和PV转换效率变化对发电量的影响,从而获得更准确的最佳尺寸。在案例研究的基础上,选择了美国德克萨斯州偏远地区的光伏/风能/电池混合能源系统的最佳规模。气象数据,如太阳辐射、风速和环境温度,经修正后转化为有用的能量。为了避免使用过多的电池容量,将需求响应技术应用于能量需求远大于能量产生的情况。结果表明,假设空气密度和PV转换效率不变,计算偏差分别约为15%和% 20%。需求响应法还可节省28%的资金成本。
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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