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Novel HVDC Spacers in GIS/GIL by Adaptively Controlling Surface Charges - Insulation Compounding Scheme

机译:自适应控制表面电荷的GIS / GIL中的新型HVDC间隔物-绝缘复合方案

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The spacer is a challenging part of high voltage direct current (HVDC) gas-insulated switchgear (GIS) and gas- insulated transmission lines (GILs). Based on the charge adaptively controlling strategy verified by our previously published papers, this paper serves as an important step towards further industrialization of charge adaptively controlling spacers. The insulation compounding scheme based on previous researches is focused in this paper. Spacers composed of insulating regions and charge adaptive control regions with different mass fractions of nonlinear materials were prepared. The mechanical properties, as well as the DC and AC surface flashover performance of these spacers were investigated. The results show that the DC surface flashover voltage is greatly reduced using spacers with a pure insulating region and with a doped charge adaptive region. As the doping ratio of the nonlinear material in the insulating region increases, the surface flashover voltage increases remarkably. However, the mechanical stress decreases dramatically when the mass ratio of nonlinear material is beyond 35%. The different doping ratios of nonlinear materials does not make a difference in AC surface flashover voltage. However, these surface flashover values obtained by bowl shaped spacers are much more stable and higher than that of the values measured from traditional cone type spacers at AC. The results in this paper can be a key step and are helpful in further determining the preferred option of the industrial spacer that can be potentially used in HVDC GIS/GILs. Meanwhile, based on the advanced performance, the idea of the novel bowl shape has potentially possibility in the application field of AC GIS/GILs.
机译:隔离器是高压直流(HVDC)气体绝缘开关设备(GIS)和气体绝缘传输线(GIL)的具有挑战性的部分。基于我们之前发表的论文所验证的电荷自适应控制策略,该论文是朝着电荷自适应控制间隔件进一步工业化迈出的重要一步。本文重点研究了基于以往研究的绝缘配合方案。制备了由绝缘区域和电荷适应性控制区域组成的,具有不同质量分数的非线性材料的隔离物。研究了这些垫片的机械性能以及直流和交流表面闪络性能。结果表明,使用具有纯绝缘区和掺杂电荷自适应区的隔离层,可大大降低DC表面的击穿电压。随着绝缘区域中非线性材料的掺杂率增加,表面闪络电压显着增加。但是,当非线性材料的质量比超过35%时,机械应力急剧下降。非线性材料的不同掺杂比不会对交流表面闪络电压产生影响。但是,碗形间隔物所获得的这些表面闪络值比在AC处从传统圆锥形间隔物所测得的值要稳定得多,并且更高。本文的结果可能是关键步骤,有助于进一步确定可用于HVDC GIS / GIL的工业垫片的首选方案。同时,基于先进的性能,新颖的碗形形状的想法在AC GIS / GIL的应用领域中具有潜在的可能性。

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