Zhu Yuanwei, Chen Haopeng, Chen Yu, Qu Guanghao, Lu Guanghao, Min Daomin, Nie Yongjie, Li Shengtao
State Key Laboratory of Electrical Insulation and Power Equipment, Frontier Institute of Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China.
Electric Power Research Institute, Yunnan Power Gird Co., Ltd., Kunming 650217, China.
Materials (Basel). 2022 Sep 2;15(17):6095. doi: 10.3390/ma15176095.
Gradually increasing power transmission voltage requires an improved high-voltage capability of polymeric insulating materials. Surface modification emerges as an easily accessible approach in enhancing breakdown and flashover performances due to the widely acknowledged modification of space-charge behaviors. However, as oxidation and fluorination essentially react within a limited depth of 2 μm underneath polymer surfaces, the nature of such bulk space-charge modulation remains a controversial issue, and further investigation is needed to realize enhancement of insulating performance. In this work, the surface oxidation-dependent space-charge accumulation in LDPE film was found to be dominated by an electrode/polymer interfacial barrier, but not by the generation of bulk charge traps. Through quantitative investigation of space-charge distributions along with induced electric field distortion, the functions of surface oxidation on the interfacial barrier of a typical dielectric polymer, LDPE, is discussed and linked to space-charge behaviors. As the mechanism of surface modification on space-charge behaviors is herein proposed, space-charge accumulation can be effectively modified by selecting an appropriate surface modification method, which consequentially benefits breakdown and flashover performances of polymeric insulating films for high-voltage applications.
逐渐提高输电电压需要提高聚合物绝缘材料的高压性能。由于空间电荷行为的改性得到广泛认可,表面改性成为提高击穿和闪络性能的一种易于实现的方法。然而,由于氧化和氟化主要在聚合物表面下方2μm的有限深度内发生反应,这种本体空间电荷调制的本质仍然是一个有争议的问题,需要进一步研究以实现绝缘性能的提高。在这项工作中,发现低密度聚乙烯(LDPE)薄膜中与表面氧化相关的空间电荷积累主要由电极/聚合物界面势垒主导,而不是由本体电荷陷阱的产生主导。通过对空间电荷分布以及感应电场畸变的定量研究,讨论了表面氧化对典型介电聚合物LDPE界面势垒的作用,并将其与空间电荷行为联系起来。由于本文提出了表面改性对空间电荷行为的作用机制,通过选择合适的表面改性方法可以有效地改变空间电荷积累,这相应地有利于高压应用中聚合物绝缘薄膜的击穿和闪络性能。