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Pareto-based allocations of multi-type flexible AC transmission system devices for optimal reactive power dispatch using Kinetic Gas Molecule Optimization algorithm

机译:基于Pareto的多型柔性交流传输系统装置的分配,用于使用动力学分子优化算法进行最佳无功功率调度

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Optimal reactive power dispatch is one of the key factors to attain cost-effective and stable functioning of power system. It is a complicated non-linear optimization issue with a combination of discrete and continuous control variables. Due to this complex feature of optimal reactive power dispatch, optimization technique has become an efficient method to solve this problem. In this work, Kinetic Gas Molecule Optimization algorithm with Pareto optimality is proposed for solving multi-objective optimal reactive power dispatch problem. The presentation of Kinetic Gas Molecule Optimization is improved by computing inertia weight and acceleration coefficients dynamically rather than a fixed value. Because of this reason, the searching capability of the particles in each iteration is improved. However, to improve the power system performance in optimal reactive power dispatch scenario, additional flexible AC transmission system devices like static VAR compensator, thyristor-controlled series compensator, and unified power flow controller are introduced to provide stable results when compared to conventional output because flexible AC transmission system devices are capable of controlling the flow of real power and reactive power. These details are implemented and tested on IEEE 30-bus test system with various objectives. The performance of proposed method is validated from MATLAB, which shows the value of power loss as 4.3583 and voltage deviation as 0.26499 with cost of US$469.6417 per MVAR, which shows considerably superior results when compared with implemented particle swarm optimization results. The proposed method provides an efficient result for solving multi-objective optimal reactive power dispatch issues.
机译:最佳无功功率调度是获得功率系统成本效益和稳定功能的关键因素之一。它是一种复杂的非线性优化问题,具有离散和连续控制变量的组合。由于这种复杂的最佳无功派遣的特点,优化技术已成为解决此问题的有效方法。在这项工作中,提出了具有Pareto最优性的动力学气体分子优化算法,用于解决多目标最佳无功功率调度问题。通过动态计算惯性重量和加速度系数而不是固定值来提高动力学气体分子优化的呈现。因此,改善了每个迭代中粒子的搜索能力。然而,为了提高最佳功率调度场景中的电力系统性能,引入了诸如静电var补偿器,晶闸管控制系列补偿器和统一电流控制器等柔性交流发射系统设备,以提供与传统输出相比的稳定结果,因为灵活的输出相比AC传输系统设备能够控制实际功率和无功功率的流动。这些细节在具有各种目标的IEEE 30-Bus测试系统上实现和测试。所提出的方法的性能从MATLAB验证,其显示功率损耗的值为4.3583,电压偏差为0.26499,每MVAR的费用为469.6417美元,与实施的粒子群优化结果相比,显示出相当大的结果。该方法提供了解决多目标最佳无功功率调度问题的有效结果。

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