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A methodology to analyze conservation voltage reduction performance using field test data

机译:使用现场测试数据分析节能降压性能的方法

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With an ever increasing demand and depleting energy resources, there has been a growing interest in conserving energy, such as the conservation voltage reduction (CVR) program to reduce energy consumption by decreasing feeder voltage. Several utilities are conducting pilot projects on their feeder systems to determine the feasibility and actual CVR payoff. One major challenge in analyzing the CVR field test data lies in the uncertainty of the power system load and a variety of dependent factors encompassing temperature and time. This paper proposes a methodology to facilitate the CVR performance analysis at the utilities by accounting all potentially influential factors. A linear relation to model the system power demand is presented, which allows a sparse linear regression method to obtain its sensitivity parameter to voltage magnitude and accordingly to quantify the CVR payoff. All input factors can also be ranked according to their statistical influence on representing the power demand output. The proposed method is first tested and validated using synthetic CVR data simulated for a 13.8 kV distribution feeder using OpenDss. It is further tested using the field CVR test data provided by a major U.S. Midwest electric utility. Both tests demonstrated the effectiveness of the proposed method as well as the usefulness and validity of the input factor ranking.
机译:随着需求的不断增长和能源的枯竭,人们越来越关注节能,例如通过降低馈线电压来降低能耗的节能降压(CVR)计划。几家公用事业公司正在其馈线系统上进行试点项目,以确定可行性和实际CVR收益。分析CVR现场测试数据的一个主要挑战在于电力系统负载的不确定性以及包括温度和时间在内的各种相关因素。本文提出了一种通过考虑所有潜在影响因素来促进公用事业公司CVR性能分析的方法。提出了一种用于对系统功率需求进行建模的线性关系,这允许使用稀疏线性回归方法来获取其对电压幅值的敏感度参数,从而量化CVR的回报。还可以根据它们对代表功率需求输出的统计影响来对所有输入因子进行排名。首先使用OpenDss为13.8 kV配电馈线模拟的合成CVR数据对所提出的方法进行测试和验证。使用美国中西部一家主要电力公司提供的现场CVR测试数据对它进行了进一步的测试。两项测试都证明了该方法的有效性以及输入因子排名的有效性和有效性。

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