Energization of subsea power transformers

T. Hazel, P. Taillefer, Scott C. Williams, R. Paes
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引用次数: 1

Abstract

Energizing large transformers often cannot be done direct-on-line due to the negative effects of the inrush current. The typical schemes used in the past are energization via a high impedance, or via a tertiary winding connected to an auxiliary AC power source. These schemes require additional equipment resulting in increased foot print and complexity. For offshore and subsea installations, the increase in foot print often greatly exceeds the cost of the additional equipment. This paper presents an alternative solution allowing direct-on-line energization of large transformers, both topsides and subsea. Different solutions for subsea auxiliary AC power supplies not requiring high-voltage circuit-breakers are presented. For offshore and subsea power systems, the circuitbreakers supplying power to the transformers are standard 3.3 kV to 36 kV class devices having a 3-pole operating mechanism. The solution presented allows circuitbreakers to be switched such that the closing of the poles occurs at the point on the voltage waveform where the resulting inrush current is the least. For subsea power distribution systems, the auxiliary power required for the subsea control equipment is provided by a high-voltage DC auxiliary power link from the shore station and the control and communication link is via optical fiber. The solutions presented use standard proven technology and can be integrated within the subsea modules required for supplying power to the loads. This keeps the number of penetrators and subsea connector systems to a minimum. The importance of redundancy and maintenance in obtaining and keeping the required system availability are discussed.
海底电力变压器的通电
由于浪涌电流的负面影响,大型变压器的通电通常不能直接在线进行。过去使用的典型方案是通过高阻抗或通过连接到辅助交流电源的第三绕组通电。这些方案需要额外的设备,从而增加了占地面积和复杂性。对于海上和海底设施,占地面积的增加往往大大超过了额外设备的成本。本文提出了一种替代方案,可以直接在线为大型变压器供电,包括上部和下部。提出了不需要高压断路器的海底辅助交流电源的不同解决方案。对于海上和海底电力系统,为变压器供电的断路器是标准的3.3 kV至36 kV级设备,具有3极操作机构。所提出的解决方案允许断路器的开关,使得两极的闭合发生在电压波形上产生的涌流最小的点上。对于海底配电系统,海底控制设备所需的辅助电源由岸上站的高压直流辅助电源链路提供,控制和通信链路通过光纤。所提出的解决方案采用标准的成熟技术,可以集成到为负载供电所需的海底模块中。这可以将穿透器和海底连接器系统的数量降至最低。讨论了冗余和维护在获得和保持所需系统可用性方面的重要性。
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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