Theoretical research on insulation thickness design of 66 kV AC submarine cables

Yuantao Zhao, Qianyu. Shan, Xuetong Zhao, Zerui Wang, C. Wang, Lijun Yang, R. Liao
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Abstract

With the accelerated green energy development, offshore wind power generation become more and more attractive. Currently, several types of research present that the application of array submarine cables operating at high-voltage 66 kV instead of medium-voltage 35 kV shows considerable advantages on offshore wind farm systems. Insulation thickness is one of the crucial factors for the safe and reliable operation of submarine cables. In engineering applications, a high safety margin is often maintained to ensure a low electrical field in the cable insulation. However, an excessively high insulation thickness design in submarine cables can block the heat dissipation of the conductor, lower the current-carrying capacity, and raise production costs. In this work, the theoretical design of insulation thickness for 66 kV AC submarine cable are studied based on AC and impulse breakdown test. The AC and impulse breakdown strength of XLPE insulation with various temperatures from 30°C to 90°C and thickness from 0.2 mm to 0.4 mm were carried out, respectively. The temperature coefficient under AC and impulse voltage are both obtained at around 1.10 and 1.23 by comparing the breakdown strength at 30°C and 90°C. Besides, it is found that the AC breakdown strength is increased with the temperature from 30°C to 90°C, and then decreased with the temperature further rising from 50°C to 90°C. The thickness coefficients are also obtained by fitting the AC and impulse breakdown strength of the specimens with a thickness of 0.2 mm, 0.3 mm, and 0.4 mm. Step-stress test is also carried out to calculate the life exponent and deterioration coefficient of XLPE insulation based on the inverse power model. The life exponent of the XLPE insulation is evaluated at 30°C and 90°C, which is 13.9 and 15.1, respectively. It is found that the internal maximum AC and impulse field strength that cable insulation can bear during operation are 60 kV/mm and 145 kV/mm, respectively. Finally, an appropriate insulation thickness of ~8.9 mm is recommended based on the obtained internal maximum field strength, which is considered to meet the demand for 66 kV AC submarine cable. This study could provide an experimental and theoretical reference for the thickness design of submarine cables and will be helpful for the future development of light AC submarine cables.
66kv交流海底电缆绝缘厚度设计的理论研究
随着绿色能源发展的加快,海上风力发电越来越具有吸引力。目前,几种类型的研究表明,在海上风电场系统中应用高压66kv阵列海底电缆而不是中压35kv显示出相当大的优势。绝缘厚度是影响海底电缆安全可靠运行的关键因素之一。在工程应用中,通常需要保持较高的安全裕度,以保证电缆绝缘具有较低的电场。但是,过高的海底电缆绝缘厚度设计会阻碍导体的散热,降低载流能力,提高生产成本。本文在交流试验和冲击击穿试验的基础上,对66kv交流海底电缆绝缘厚度的理论设计进行了研究。研究了30℃~ 90℃、0.2 mm ~ 0.4 mm不同温度下XLPE绝缘的交流强度和冲击击穿强度。通过比较30℃和90℃时的击穿强度,得到了交流和冲击电压下的温度系数分别为1.10和1.23左右。此外,发现从30℃到90℃,交流击穿强度随温度升高而升高,然后随着温度从50℃进一步升高到90℃而降低。通过拟合厚度为0.2 mm、0.3 mm和0.4 mm试件的交流强度和冲击击穿强度,得到了试件的厚度系数。并进行了阶跃应力试验,基于逆功率模型计算了交联聚乙烯绝缘的寿命指数和劣化系数。在30°C和90°C时,XLPE绝缘的寿命指数分别为13.9和15.1。研究发现,电缆绝缘在运行过程中所能承受的内部最大交流场强和冲击场强分别为60 kV/mm和145 kV/mm。最后,根据得到的内部最大场强,推荐了合适的绝缘厚度为~8.9 mm,以满足66 kV交流海底电缆的要求。该研究可为海底电缆的厚度设计提供实验和理论参考,对未来轻型交流海底电缆的发展有一定的帮助。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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