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Characteristics of partial discharge and AC electrical tree in XLPE and MgO/XLPE nanocomposites

机译:XLPE和MgO / XLPE纳米复合材料中局部放电和AC电气树的特性

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In order to investigate the effect of nano-doping on partial discharge (PD) and electrical tree growth in cross-linked polyethylene (XLPE), samples of 0.5 wt% magnesium oxide MgO/XLPE were prepared and an AC experiment was carried out. A color-coded diagram for PD signal was developed to describe the PD activity during the whole process of treeing. The results show that the PD intensity in positive half cycle of voltage (PHC) is larger than that in negative half cycle of voltage (NHC), and the PD magnitude in MgO/XLPE is lower than that in XLPE. Moreover, the tree length and morphology in MgO/XLPE are similar to those in XLPE. Furthermore, a finite element simulation based on the bipolar charge transport model was applied to investigate the effect of space charge on PD under AC voltage. Simulation results suggest that the characteristics of PD and tree growth may be associated with the accumulated charge around the needle tip. The distribution of negative charges in NHC would be wider than that of positive charges in PHC, which would weaken the electric field in NHC and lead to the less PD in NHC. Moreover, the range of charge shield in MgO/XLPE may be larger and is equivalent to increasing the effective radius of curvature of needle tip, which would lead to smaller electric field and lower PD magnitude in MgO/XLPE. However, the addition of nano-MgO reduces the crystallinity of material based on the differential scanning calorimetry (DSC) result. Hence, although the PD magnitude in MgO/XLPE is lower, the MgO/XLPE researched in this paper does not show significant resistance to AC tree growth.
机译:为了研究纳米掺杂对交联聚乙烯(XLPE)中的局部放电(Pd)和电树生长的影响,制备0.5wt%氧化镁MgO / XLP的样品并进行AC实验。开发了一种用于PD信号的颜色编码图来描述树木整个过程中的PD活动。结果表明,电压(PHC)的正半周期(PHC)中的PD强度大于电压(NHC)的负半周期,MgO / XLPE中的PD幅度低于XLPE中的PD幅度。此外,MgO / XLPE中的树长和形态与XLPE中的树长类似。此外,应用了基于双极电荷传输模型的有限元模拟,以研究AC电压下的空间电荷对PD的影响。仿真结果表明,Pd和树生长的特性可以与针尖周围的累积电荷相关联。 NHC中负电荷的分布将比PHC中的正电荷宽,这将削弱NHC中的电场,并导致NHC中的较少PD。此外,MgO / XLPE中的电荷屏蔽范围可以更大,并且等同于增加针尖的有效曲率半径,这将导致MgO / XLPE中的较小电场和更低的PD幅度。然而,基于差示扫描量热法(DSC)结果,添加纳米MgO减少了材料的结晶度。因此,尽管MgO / XLPE中的Pd幅度较低,但本文研究的MgO / XLPE对AC树生长没有显示出显着的抵抗力。

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