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Optimization of natural gas transmission network using genetic algorithm

机译:基于遗传算法的天然气传输网络优化

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In this paper, an Evolutionary approach for optimization of cyclic Gas Transmission Network (GTN) is presented. The GTNs comprise of nodes, links, compressor stations and valves where the last one is a main component of GTNs which generally not considered in similar works. In this approach, at first a reduced network will be generated from the original GTN and the cycles of the reduced network will be identified. Then an iterative approach will be used to find the cycles flows which optimize the objective function. This approach calculates the pressure variables at fixed flow rates using dynamic programming (DP) and updates the gas flow rates to improve the objective function in every iteration. The objective function is a weighted summation of total number of running compressor stations and their total fuel consumption. The flow rates will be updated using Genetic Algorithm (GA) which is modified to speed up its convergence. The main modifications are related to decomposing of chromosomes to subchromosomes and finding the upper and lower limits for crossover and mutation. A number of real examples of Iranian GTN are exploited to support the proposed approach.
机译:本文提出了一种用于循环气体传输网络(GTN)优化的进化方法。 GTN由节点,链接,压缩站和阀门组成,其中最后一个是GTN的主要组成部分,通常在类似的工作中不予考虑。在这种方法中,首先,将从原始GTN生成简化网络,并将识别简化网络的周期。然后,将使用迭代方法来找到优化目标函数的循环流。该方法使用动态编程(DP)计算固定流量下的压力变量,并更新气体流量以提高每次迭代中的目标函数。目标函数是运行中的压缩机站总数及其总燃料消耗的加权总和。流量将使用遗传算法(GA)进行更新,该算法经过修改以加快其收敛速度。主要修饰与将染色体分解为亚染色体以及寻找交叉和突变的上限和下限有关。利用伊朗GTN的许多真实示例来支持所建议的方法。

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