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Impacts of Demand Data Time Resolution on Estimates of Distribution System Energy Losses

机译:需求数据时间分辨率对配电系统能量损失估算的影响

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Copper losses in low voltage distribution circuits are a significant proportion of total energy losses and contribute to higher customer costs and carbon emissions. These losses can be evaluated using network models with customer demand data. This paper considers the under-estimation of copper losses when the spiky characteristics of real customer demands are smoothed by arithmetic mean averaging. This is investigated through simulation and by analysis of measured data. The mean losses in cables and equipment supplying a single dwelling estimated from half-hourly data were found to have significant errors of 40%, compared to calculations using high resolution data. Similar errors were found in estimates of peak thermal loading over a half-hour period, with significant variation between results for each customer. The errors reduce as the demand is aggregated, with mean losses for a group of 22 dwellings under-estimated by 7% using half-hourly data. This paper investigates the relationship between the demand data time resolution and errors in the estimated losses. Recommendations are then provided for the time resolution to be used in future measurements and simulation studies. A linear extrapolation technique is also presented whereby errors due to the use of averaged demand data can be reduced.
机译:低压配电电路中的铜损在总能耗中占很大比例,并导致更高的客户成本和碳排放量。可以使用带有客户需求数据的网络模型来评估这些损失。当算术平均求平均值使真实客户需求的尖峰特征平滑时,本文考虑了铜损的低估。这是通过模拟和对测量数据的分析来研究的。与使用高分辨率数据进行的计算相比,根据半小时数据估算出的提供单个住宅的电缆和设备的平均损失具有40%的显着误差。在半小时内的峰值热负荷估算中发现了类似的误差,每个客户的结果之间存在显着差异。随着总需求的增加,误差减少了,使用半小时的数据,一组22户住宅的平均损失被低估了7%。本文研究了需求数据时间分辨率与估计损失中的误差之间的关系。然后提供有关时间分辨率的建议,以用于将来的测量和模拟研究。还提出了一种线性外推技术,从而可以减少由于使用平均需求数据而引起的误差。

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