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Impact of forced and unforced system parameter variations on network stability and system economics of radial MTDC networks

机译:强制和非强制系统参数变化对径向MTDC网络的网络稳定性和系统经济性的影响

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This paper focuses on investigating the impact of system parameters uncertainty on voltage droop-controlled Multi-Terminal High-Voltage DC (MTDC) networks. The voltage droop typically controls the power-sharing among the receiving end-nodes for minimum transmission power loss. The hierarchical control layers are used to update the droop constants to cope with the system power/parameter variations. In this paper, a study is presented elucidating the effect of unforced system parameter variations, as transmission line resistance uncertainty and the power injection variation, on the droop characteristic settings for radial MTDC networks, from system economics and network steady-state and dynamic stability perspectives. Moreover, forced system parameter variations, such as those due to cyber-attacks, are addressed in this paper. Cyber threat with a malicious attack on the communication system in the hierarchical control layers is considered particularly during power variations to investigate the impact of falsifying the DC voltage droop characteristics. Towards generalization, two different droop-controlled radial MTDC networks, with optimal droop gains adjusted for minimum transmission loss, are employed for explicating and assessing the presented concept.
机译:本文着重研究系统参数不确定性对电压降控制的多端子高压直流(MTDC)网络的影响。电压下降通常控制接收端节点之间的功率共享,以实现最小的传输功率损耗。分层控制层用于更新下垂常数,以应对系统功率/参数变化。本文进行了一项研究,从系统经济学以及网络稳态和动态稳定性的角度,阐明了非强制性系统参数变化(如传输线电阻不确定性和功率注入变化)对径向MTDC网络的下垂特性设置的影响。 。此外,本文还解决了强制性系统参数变化,例如由于网络攻击造成的变化。特别是在功率变化期间,应考虑在分层控制层中对通信系统进行恶意攻击的网络威胁,以研究伪造直流电压下降特性的影响。为了概括起见,采用两个不同的下垂控制的径向MTDC网络,并针对最小的传输损耗调整了最佳的下垂增益,以阐明和评估所提出的概念。

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