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Operation Optimization of Natural Gas Transmission Pipelines Based on Stochastic Optimization Algorithms: A Review

机译:基于随机优化算法的天然气传输管道运行优化:综述

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摘要

Operation optimization of natural gas pipelines has received increasing attentions, due to such advantages as maximizing the operating economic benefit and the gas delivery amount. This paper provides a review on the most relevant research progress related to the steady-state operation optimization models of natural gas pipelines as well as corresponding solution methods based on stochastic optimization algorithms. The existing operation optimization model of the natural gas pipeline is a mixed-integer nonlinear programming (MINLP) model involving a nonconvex feasible region and mixing of continuous, discrete, and integer optimization variables, which represents an extremely difficult problem to be solved by use of optimization algorithms. A survey on the state of the art demonstrates that many stochastic algorithms show better performance of solving such optimization models due to their advantages of handling discrete variables and of high computation efficiency over classical deterministic optimization algorithms. The essential progress mainly with regard to the applications of the Genetic Algorithm (GA), Particle Swarm Optimization (PSO), Ant Colony Optimization (ACO), Simulated Annealing (SA) algorithms, and their extensions is summarized. The performances of these algorithms are compared in terms of the quality of optimization results and the computation efficiency. Furthermore, the research challenges of improving the optimization model, enhancing the stochastic algorithms, developing an online optimization technology, researching the transient optimization, and studying operation optimization of the integrated energy network are discussed.
机译:由于最大化运营经济效益和煤气交货量,因此自然气体管道的运行优化已收到增加的关注。本文介绍了与天然气管道稳态运行优化模型相关的最相关的研究进展以及基于随机优化算法的相应解决方法。天然气管道的现有操作优化模型是混合整数非线性编程(MINLP)模型,涉及非凸起可行区域和连续,离散和整数优化变量的混合,这代表了通过使用解决的极其困难问题优化算法。关于本领域技术的调查表明,由于处理离散变量和高计算效率,许多随机算法求出了求解这种优化模型的性能,以及通过古典确定性优化算法的优点。总结了主要关于遗传算法(GA),粒子群优化(PSO),蚁群优化(ACO),模拟退火(SA)算法及其延伸的基本进展。在优化结果的质量和计算效率方面比较了这些算法的性能。此外,讨论了改进优化模型的研究挑战,增强随机算法,开发在线优化技术,研究瞬态优化以及研究集成能量网络的研究操作优化。

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