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A design methodology for installing reactive compensation equipment in ultra high voltage AC transmission system based on a modified particle swarm optimisation method

机译:基于改进粒子群算法的超高压交流输电系统无功补偿装置安装设计方法

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Ultra high voltage (UHV) AC system operates at 1000kV or above and is characterised with having a large transmission capacity (5000MW or above per single circuit) and long transmission distances. It is capable of producing over 4 times more reactive power gains than a conventional 500kV transmission line, and also absorbing a significant amount of reactive power when power flow across the line is high. Managing UHV AC voltage profile across a range of operating conditions is a major design challenge, especially in the early stage of development in UHV AC transmission systems. It requires an appropriate amount of inductive and capacitive compensation equipments with different characteristics installed at appropriate locations. This paper presents a practical method for designing, installing and operating reactive power compensation schemes for UHV AC systems. The method takes into account the cost of different types of reactive power compensation equipment, such as mechanically switched capacitors, static var compensators, fixed shunt reactors, controllable shunt reactors, etc, and minimises the overall cost of reactive compensations such that the system operates satisfactorily across a range of operational conditions whilst satisfying system constraints, including voltage and thermal constraints. The optimisation problem is solved by a modified particle swarm optimisation algorithm. The design framework is applied to a real UHV system design as case study, and is compared with conventional design method.
机译:超高电压(UHV)AC系统在1000kV或更高的操作中操作,其特征在于具有大的传动容量(每单电路5000mW或更高)和长传输距离。它能够产生比传统的500kV传输线更多的功率提升超过4倍,并且当电力流过线的功率高时,也吸收大量的无功功率。在一系列操作条件下管理UHV交流电压型材是一个主要的设计挑战,特别是在UHV交流传输系统的早期开发阶段。它需要适当数量的电感和电容补偿设备,其具有安装在适当位置的不同特性。本文介绍了用于UHV AC系统的设计,安装和操作无功补偿方案的实用方法。该方法考虑了不同类型的无功补偿设备的成本,例如机械开关电容,静态VAR补偿器,固定的并联电抗器等,可控制的并联电抗器等,并最大限度地减少了反应性补偿的总成本,使系统令人满意地操作在满足系统约束的同时,包括电压和热约束的一系列操作条件。优化问题由修改的粒子群优化算法解决。设计框架应用于真实的UHV系统设计作为案例研究,并与传统的设计方法进行比较。

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