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DC Breakdown Behaviour of Liquid-Solid Interfaces Formed in Silicone Based Materials

机译:硅基材料中形成的液固界面的直流击穿行为

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Constantly growing amount of renewables and storage installed in the power system results in an increased interest in the power transfer under Direct Current (DC), especially in the low and medium voltage (LV and MV) networks. This is valid for both already existing as well as for newly installed cable systems. Although there is virtually no experience with MV DC networks and accessories, it is widely known that the electric stress distribution within insulation is different for AC and DC voltage. Liquid filled joints utilize an insulating liquid to fill the inner volume of the joint. A moisture sensitive, silicone based liquid can be taken as one of the examples. Beside all dielectric and thermal properties, such liquid has a property of hardening when getting in contact with moisture. By measurements of such material, it has been confirmed that the dielectric permittivity for solid and liquid state is of the same value. Thus the hardening process does not have influence on the field distribution under AC stress. However, the resistivity of the material changes when the hardening starts. This in turn, has an influence on the field distribution under DC. In order to investigate the criticality of liquid-solid interfaces, the DC breakdown testing was performed. More specifically, the testing focused on the interface being normal and tangential with respect the electric field. The literature states that the interface of two different insulating materials is an electrically weak spot. In our experiments, the contrary has been observed. The interface between liquid-solid silicone materials is at least as strong as the liquid form of the dielectric. In the current contribution, we will also discuss the implication of the mentioned findings on the feasibility of utilizing a silicone liquid filled AC MV joint under DC stress
机译:电力系统中安装的可再生能源和存储的数量不断增长,导致人们对直流电(DC)下的电力传输越来越感兴趣,尤其是在中低压(LV和MV)网络中。这对于既有的电缆系统也适用于新安装的电缆系统。尽管实际上没有使用MV DC网络和附件的经验,但是众所周知,绝缘内部的电应力分布对于AC和DC电压是不同的。液体填充的接头利用绝缘液体填充接头的内部体积。湿气敏感的,基于硅酮的液体可以作为例子之一。除了所有的介电和热性质,这种液体在与湿气接触时具有硬化性质。通过测量这种材料,已经确认了固态和液态的介电常数为相同的值。因此,硬化过程对交流应力下的场分布没有影响。但是,硬化开始时,材料的电阻率会发生变化。反过来,这会影响DC下的场分布。为了研究液固界面的临界性,进行了直流击穿测试。更具体地说,测试集中在相对于电场为法线和切线的界面上。文献指出,两种不同绝缘材料的界面是电弱点。在我们的实验中,已经观察到相反的情况。液体-固体硅树脂材料之间的界面至少与电介质的液体形式一样牢固。在当前的贡献中,我们还将讨论上述发现对在直流应力下利用硅油填充的交流中压接头的可行性的暗示。

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