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Fast Quasi-Static Time-Series (QSTS) for yearlong PV impact studies using vector quantization

机译:快速准静态时间序列(QSTS),用于使用矢量量化进行为期一年的PV影响研究

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The rapidly growing penetration levels of distributed photovoltaic (PV) systems requires more comprehensive studies to understand their impact on distribution feeders. IEEE P.1547 highlights the need for Quasi-Static Time Series (QSTS) simulation in conducting distribution impact studies for distributed resource interconnection. Unlike conventional scenario-based simulation, the time series simulation can realistically assess time-dependent impacts such as the operation of various controllable elements (e.g. voltage regulating tap changers) or impacts of power fluctuations. However, QSTS simulations are still not widely used in the industry because of the computational burden associated with running yearlong simulations at a 1-s granularity, which is needed to capture device controller effects responding to PV variability. This paper presents a novel algorithm that reduces the number of times that the non-linear 3-phase unbalanced AC power flow must be solved by storing and reassigning power flow solutions as it progresses through the simulation. Each unique power flow solution is defined by a set of factors affecting the solution that can easily be queried. We demonstrate a computational time reduction of 98.9% for a yearlong simulation at 1-s resolution with minimal errors for metrics including: number of tap changes, capacitor actions, highest and lowest voltage on the feeder, line losses, and ANSI voltage violations. The key contribution of this work is the formulation of an algorithm capable of: (i) drastically reducing the computational time of QSTS simulations, (ii) accurately modeling distribution system voltage-control elements with hysteresis, and (iii) efficiently compressing result time series data for post-simulation analysis.
机译:分布式光伏(PV)系统的快速增长的渗透水平需要更全面的研究,以了解其对配电馈线的影响。 IEEE P.1547强调了在进行分布式资源互连的分布影响研究中需要准静态时间序列(QSTS)模拟。与传统的基于场景的模拟不同,时间序列模拟可以现实地评估与时间有关的影响,例如各种可控元件(例如调压分接开关)的运行或功率波动的影响。但是,由于与以1 s粒度运行一年的模拟相关的计算负担,QSTS模拟仍未在行业中广泛使用,这是捕获响应PV变量的设备控制器效应所必需的。本文提出了一种新颖的算法,该算法通过在仿真过程中存储和重新分配潮流解决方案,从而减少了非线性三相不平衡交流潮流必须解决的次数。每个独特的潮流解决方案均由影响解决方案的一系列因素定义,这些因素可以轻松查询。我们展示了以1 s分辨率进行为期一年的仿真所需要的98.9%的计算时间,并且最小的度量误差包括:抽头变化次数,电容器动作,馈线上的最高和最低电压,线路损耗和ANSI电压违规。这项工作的关键贡献在于制定了一种算法,该算法能够:(i)大大减少QSTS仿真的计算时间;(ii)带有滞后性的配电系统电压控制元件的精确建模;以及(iii)有效地压缩结果时间序列用于后仿真分析的数据。

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