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Voltage Regulation using Probabilistic and Fuzzy Controlled Dynamic Voltage Restorer for Oil and Gas Industry

机译:用于油气工业概率和模糊控制动态电压恢复器的电压调节

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In a power distribution system, faults occurring can cause voltage sag that can affect critical loads connected in the power network which can cause serious effects in the oil and gas industry. The objective of this paper is to design and implement an efficient and economical dynamic voltage restorer (DVR) to compensate for voltage sag conditions in the oil and gas industry. Due to the complexity and sensitivity of loads, a short voltage sag duration can still cause severe power quality problems to the entire system. Dynamic Voltage Restorer (DVR) is a static series compensating type custom power device. The overall efficiency of the DVR largely relies on the effectiveness of the control strategy governing the switching of the inverters. It can be said that the heart of the DVR control strategy is the derivation of reference currents. This paper deals with the extraction of reference current values using a controller based on a combination of probabilistic and fuzzy set theory. The basis of the proposed controller is that Gaussian Mixture Model (GMM) which is a probabilistic approach can be translated to an additive fuzzy interface system i.e. Generalized Fuzzy Model (GFM). The proposed controller (GMM-GFM) initially optimizes the membership functions using GMM and the final output is calculated using GFM in a single iteration i.e. with no recursions. In the control scheme two control loops are used: a feed-forward loop that uses the Proportional and Integral (PI) controller and the feedback loop uses GMM-GFM based controller. The controller is implemented and respective simulations are performed in the MATLAB SIMULINK environment for three-phase, three-wire distribution system with various issues. A comparative analysis is then done amongst all the three controllers which are based on the T-S, ML, and GMM-GFM modes respectively. The simulation results of this comparison rank the DVR with the GMM-GFM controller first, followed by the fuzzy logic Mamdani model and then with the fuzzy logic T-S model.
机译:在配电系统中,发生故障可能导致电压凹陷,这可能影响电力网络中连接的临界负载,这可能对石油和天然气行业造成严重影响。本文的目的是设计和实施高效且经济的动态电压恢复器(DVR),以补偿石油和天然气工业中的电压下垂条件。由于负载的复杂性和灵敏度,短电压凹陷持续时间仍然可以对整个系统引起严重的电力质量问题。动态电压恢复器(DVR)是一种静态系列补偿式定制功率器件。 DVR的整体效率很大程度上依赖于控制逆变器切换的控制策略的有效性。可以说,DVR控制策略的核心是参考电流的推导。本文涉及基于概率和模糊集理论的组合使用控制器提取参考电流值。所提出的控制器的基础是,高斯混合模型(GMM),其是一种概率方法,可以转化为一种添加剂模糊界面系统I.E.广义模糊模型(GFM)。所提出的控制器(GMM-GFM)最初优化使用GMM的成员函数,最终输出在单个迭代中使用GFM计算,而没有递归。在控制方案中,使用两个控制循环:使用比例和积分(PI)控制器和反馈回路使用基于GMM-GFM的控制器的前馈回路。实现控制器,并在Matlab Simulink环境中执行各种问题的Matlab Simulink环境中的各种模拟。然后分别在基于T-S,ML和GMM-GFM模式的所有三个控制器中进行比较分析。该比较的仿真结果首先将DVR与GMM-GFM控制器进行排名,然后是模糊逻辑Mamdani模型,然后用模糊逻辑T-S模型。

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