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Electricity meters for coordinated voltage control in medium voltage networks with wind power

机译:风力发电中压网络中用于协调电压控制的电表

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During the last years the amount of electricity generated by Distributed Energy Resources (DER), especially wind turbines, has been increasing a lot. These Distributed Generation (DG) units are often connected to rural distribution networks, where they have a large impact on the voltage and the network losses. The network voltage at the customers point of connection is an important quality criteria and has to follow different standards as e.g. EN 50160. Therefore the voltage change caused by the integration of production units in the distribution network is an important aspect when integrating more DG in distribution networks and often a limiting factor for the maximum DG capacity which is possible to integrate into an existing network without reinforcement. Using the available voltage band more efficient by applying coordinated voltage control is a possibility to increase the hosted DG capacity in an existing distribution network without reinforcement of the network. To get the actual network status the new generation of electricity meters, which have the feasibility to communicate real time voltage measurements from the customers side to a network controller, give some benefits to a more flexible and coordinated voltage control in the network. The voltage range in the network will be used adapted to the actual load and generation situation instead of using worst case assumptions as it is good practice until now. A main part of the voltage control in medium voltage distribution networks is done by the on-load tap changer (OLTC) which takes the voltage at the consumers point of connection into account. A generic 10 kV distribution network with three typical types of feeders, as pure load, pure generation and mixed load and generation feeder, has been outlined. Coordinated voltage control is implemented by a central voltage controller. Simulations on the voltage and the network losses have been done and will be presented in this paper. The maximum DG capacity in the --test system increases most when introducing coordinated control of the OLTC but also the use of reactive power adds some benefit. Further increase of the DG capacity by more extensive use of curtailment is always possible but due to economical aspects not favoured.
机译:在过去几年中,分布式能源(DER),尤其是风力涡轮机产生的电力增加了很多。这些分布式发电(DG)单位通常与农村配送网络连接,在那里它们对电压和网络损耗具有很大影响。客户连接点的网络电压是重要的质量标准,必须遵循不同的标准,如例如,因此,在分配网络中的生产单元集成引起的电压变化是在分发网络中集成更多DG的一个重要方面,并且通常是最大DG容量的限制因素,这可以集成到现有网络而不加强的现有网络中。通过应用协调电压控制使用可用电压频带可以提高现有配送网络中的托管DG容量而不会加强网络。为了获得实际的网络状态新一代电表,具有从客户端传递实时电压测量的可行性,对网络中更灵活和协调的电压控制提供了一些好处。网络中的电压范围将用于适应实际的负载和生成情况,而不是使用最坏的情况假设,因为它直到现在很好。中压配电网络中的电压控制的主要部分是由负载分接开关(OLTC)完成的,该载接变换器(OLTC)考虑了消费者连接点的电压。已经概述了具有三种典型类型的馈线的通用10 kV配电网络,作为纯载荷,纯的发电和混合负载和发电器。协调电压控制由中央电压控制器实现。对电压和网络损耗进行了模拟,并将在本文中提出。最大的DG容量 - - 在引入OLTC的协调控制时,测试系统增加最多,但使用无功功率的使用增加了一些好处。通过更广泛使用缩减的DG容量的进一步增加,但由于不受欢迎的经济方面,因此可能是可能的。

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