利用紫外线接枝改性显著提高商用BOPP薄膜的高温储能性能

iEnergy Pub Date : 2022-09-01 DOI:10.23919/IEN.2022.0046
Qingguo Chi;Tianqi Wang;Changhai Zhang;Hainan Yu;Xindong Zhao;Xu Yang;Qingquan Lei;Hong Zhao;Tiandong Zhang
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引用次数: 3

摘要

商用双向拉伸聚丙烯(BOPP)薄膜电容器在电气和电子工程领域有着广泛的应用。然而,由于导电损耗随着温度的升高而急剧增加,BOPP薄膜的储能性能在高温下严重退化。在本研究中,接枝改性方法简单且适用于大规模工业生产,并首次提出提高商业BOPP薄膜的高温储能性能。具体地,使用丙烯酸(AA)作为极性有机分子,通过使用紫外线照射(简称BOPP-AA)将其接枝到商业BOPP膜的表面上。结果表明,AA接枝改性不仅略微提高了介电常数,而且显著降低了高温下的漏电流密度,大大提高了高温储能性能。改性BOPP-AA薄膜在370kV/mm和125°C下的放电能量密度为1.32J/cm3,效率>90%,比原始BOPP薄膜高474%。这项工作表明,利用紫外线接枝改性是提高商业BOPP薄膜高温储能性能的一种非常有效的方法,并为大规模可扩展的生产应用提供了迄今为止尚未探索的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Significantly improved high-temperature energy storage performance of commercial BOPP films by utilizing ultraviolet grafting modification
Commercial biaxially oriented polypropylene (BOPP) film capacitors have been widely applied in the fields of electrical and electronic engineering. However, due to the sharp increase in electrical conduction loss as the temperature rises, the energy storage performance of BOPP films seriously degrades at elevated temperatures. In this study, the grafting modification method is facile and suitable for large-scale industrial manufacturing and has been proposed to increase the high-temperature energy storage performance of commercial BOPP films for the first time. Specifically, acrylic acid (AA) as a polar organic molecular is used to graft onto the surface of commercial BOPP films by using ultraviolet irradiation (abbreviated as BOPP-AA). The results demonstrate that the AA grafting modification not only slightly increases the dielectric constant, but also significantly reduces the leakage current density at high-temperature, greatly improving the high-temperature energy storage performance. The modified BOPP-AA films display a discharged energy density of 1.32 J/cm 3 with an efficiency of >90% at 370 kV/mm and 125 °C, which is 474% higher than that of the pristine BOPP films. This work manifests that utilizing ultraviolet grafting modification is a very efficient way to improve the high-temperature energy storage performance of commercial BOPP films as well as provides a hitherto unexplored opportunity for large-scalable production applications.
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