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A simplified model for estimating the monthly performance of autonomous wind energy systems with battery storage

机译:一种简化模型,用于估计带有电池存储的自主风能系统的每月性能

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This paper presents a simplified algorithm to estimate the monthly performance of autonomous small-scale wind energy systems with battery storage. The novel model is drawn based on the simulation results, using eight-year long hour-by-hour measured wind speed data from five different locations throughout the world. An hourly constant load profile is used. The renewable energy simulation program (ARES) of the Cardiff School of Engineering is used. The ARES simulates the battery state of voltage (SoV) and is able to predict the system performance. The monthly performance values obtained from the simulations are plotted against increasing energy to load ratios for varying battery storage capacities to obtain performance curves. The novel method correlates the monthly system performance with the parameters of the Weib-ull distribution function, thus offering a universal use. The monthly performance curves are mathematically represented using a 2-parameter function. The novel method is validated by comparing the simulated performance values with those estimated from the simplified algorithm. The standard errors calculated in estimation of the system performance using the simplified algorithm are further presented for each battery capacity.
机译:本文提出了一种简化算法,用于估计带有电池存储的自治小型风能系统的月度性能。基于仿真结果,使用来自世界各地五个不同地点的长达八年的逐小时实测风速数据,得出了新颖的模型。使用每小时不变的负载曲线。使用了加的夫工程学院的可再生能源模拟程序(ARES)。 ARES模拟电池的电压状态(SoV),并能够预测系统性能。从仿真获得的每月性能值针对不断变化的能量/负载比绘制,以改变电池存储容量以获得性能曲线。该新方法将月度系统性能与Weib-ull分布函数的参数相关联,因此具有普遍用途。月度绩效曲线使用2参数函数数学表示。通过将模拟性能值与从简化算法估计的性能值进行比较,验证了该新方法的有效性。对于每个电池容量,还介绍了使用简化算法估算系统性能时计算出的标准误差。

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