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Ride through of OWC-based wave power generation plant with air flow control under symmetrical voltage dips

机译:基于OWC的波浪发电设备在对称电压骤降下的气流控制的穿越

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The suitability of distributed power generation systems working at medium and high capacity as it is the case of wave power generation plants, requires a reliable Fault-Ride-Through capability. When a grid fault occurs on the transmission system, the speed of the turbo-generator group increases uncontrolled, the induction generator injects large peak currents that can potentially damage the rotor converters and the plant tends to increase the reactive power consumption, so that it might intensify the voltage dip and contribute to the collapse of the power network. A simple solution would be the automatic disconnection of the plant from the grid in response to the power fault, but this policy could lead to a series of chain disconnections that would produce a massive power network failure. This is why new Grid Codes oblige the distributed power generation systems to remain connected to the power network, even in case of balanced voltage dips. In this paper, an Oscillating Water Column (OWC)-based wave power generation plant equipped with a Doubly Fed Induction Generator is modeled and controlled to overcome these balanced grid faults. The improvement relays on the implementation of a control scheme that suitably coordinates the air flow control, the crowbar, the rotor and the grid side converters to allow the plant to remain in service during the grid fault, and to contribute to its attenuation by supplying reactive power to the network. The simulated results show how it is obtained a great reduction in the rotor currents, improving the transient power stability and avoiding the rotor acceleration, complying with new Grid Codes requirements.
机译:在中高容量上工作的分布式发电系统的适用性,就像波发电厂一样,需要可靠的故障驾驶能力。当在传输系统上发生电网故障时,涡轮发电机组的速度不受控制地增加,感应发电机注入了可能损坏转子转换器的大峰值电流,并且该设备趋于增加无功功耗,因此它可能会增加无功功耗强化电压倾度并有助于电网的崩溃。一个简单的解决方案是响应电力故障的植物从电网自动断开,但是这一政策可能导致一系列链接,这会产生大量电网故障。这就是为什么新网格代码迫使分布式发电系统保持连接到电力网络,即使在平衡电压倾斜情况下也是如此。在本文中,建模和控制配备有双馈感应发电机的振荡水柱(OWC)基波发电厂,以克服这些平衡网格故障。适当地协调空气流量控制,撬棍,转子和电网侧转换器的控制方案的改进继电器,以允许工厂在网格故障期间保持服务,并通过供应反应来促进其衰减对网络的电源。模拟结果表明,如何在转子电流中获得大大减小,提高瞬态功率稳定性并避免转子加速度,符合新的网格码要求。

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