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FCL : A solution to fault current problems in DC networks

机译:FCL:DC网络中故障电流问题的解决方案

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Within the context of the electric power market liberalization, DC networks have many interests compared to AC ones. New energy landscapes open the way of a diversified production. Innovative interconnection diagrams, in particular using DC buses, are under development. In this case it is not possible to defer the fault current interruption in the AC side. DC fault current cutting remains a difficult problem. FCLs (Fault Current Limiters) enable to limit the current to a preset value, lower than the theoretical short-circuit current. For this application Coated Conductors (CC) offer an excellent opportunity. Due to these promising characteristics we build a test bench and work on the implementation of these materials. The test bench is composed by 10 power amplifiers, to reach 4 kVA in many configurations of current and voltage. We carried out limiting experiments on DyBaCuO CC from EHTS, samples are about five centimeters long and many potential measuring points are pasted on the shunt to estimate the quench homogeneity. Thermal phenomena in FCLs are essential, numerical models are important to calculate the maximum temperatures. To validate these models we measure the CC temperature by depositing thermal sensors (Cu resistance) above the shunt layer and the substrate. An electrical insulation with a low thermal resistivity between the CC and the sensors is necessary. We use a thin layer of Parylene because of its good mechanical and electrical insulation properties at low temperature. The better quench behaviour of CC for temperatures close to the critical temperature has been confirmed. The measurements are in good agreement with simulations, this validates the thermal models.
机译:在电力市场自由化的背景下,与交流网络相比,直流网络具有许多利益。新能源格局为多元化生产开辟了道路。正在开发创新的互连图,尤其是使用DC总线的互连图。在这种情况下,不可能推迟交流侧的故障电流中断。切断直流故障电流仍然是一个难题。 FCL(故障电流限制器)可将电流限制为预设值,该值低于理论短路电流。对于这种应用,涂层导体(CC)提供了极好的机会。由于这些有希望的特性,我们建立了一个测试平台并致力于这些材料的实现。测试台由10个功率放大器组成,在许多电流和电压配置下均达到4 kVA。我们在EHTS的DyBaCuO CC上进行了极限实验,样品长约5厘米,并且在分流器上粘贴了许多潜在的测量点,以估计淬火的均匀性。 FCL中的热现象至关重要,数值模型对于计算最高温度很重要。为了验证这些模型,我们通过在分流层和衬底上方沉积热传感器(铜电阻)来测量CC温度。 CC和传感器之间必须具有低热阻的电绝缘。我们使用聚对二甲苯薄层,因为它在低温下具有良好的机械和电绝缘性能。已经证实,在接近临界温度的温度下,CC具有更好的淬火性能。测量结果与仿真吻合良好,从而验证了热模型。

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