改善制浆造纸厂中压变压器保护

W. Hartmann
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引用次数: 10

摘要

在纸浆和造纸厂,电力变压器在过程连续性中起着至关重要的作用。这些变压器容易发生内部短路、外部短路和异常运行情况。本文将探讨电力变压器面临的以下保护挑战,以及改进所提供保护的方法:电流互感器(CT)中的剩余物可能由于CT性能受损而导致相差保护误操作。重通断、交感涌流和恢复涌流都会引起大电流。这与高剩余通量相结合,可能会产生安全问题。IEEE CT性能计算将用于支持双斜率差分特性的使用,以促进在CT性能不均匀的情况下安全的差分保护操作。在变压器励磁方面,传统上采用二次谐波电流作为防止相差误动的手段。某些变压器可能不会表现出足够高的二次谐波,如果限制设置过低,会导致可靠性问题。使用第2次和第4次谐波进行涌流检测将被证明可以提高在励磁涌流情况下的可靠性。电力系统的异常运行或电厂的励磁控制都可能引起过励磁。过激励的原因将概述和使用伏特每赫兹保护探索。对于系统电压上升引起的过励磁,传统上采用五次谐波抑制相差动保护。如果变压器过度励磁时发生内部故障,这可能会导致相差保护不运行,从而导致跳闸延迟和变压器严重损坏。本文将介绍一种使用自适应相位差拾取值的技术来克服这一挑战。在电阻接地的电力变压器上,相差保护对中性点附近接地故障的灵敏度降低。将探讨对地差动保护的使用,并展示其提高的灵敏度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving pulp and paper plant MV transformer protection
In pulp and paper plants, power transformers play a critical role in process continuity. These transformers are subject to internal short circuits, external short circuits and abnormal operating conditions. The following protection challenges to power transformers will be explored, and methods to improve the protection provided: Remanence in a current transformer (CT) may cause misoperation of phase differential protection due to compromised CT performance. Heavy through-faults, sympathetic inrush and recovery inrush all cause high current. This combined with high remanent flux, can create a security issue. IEEE CT performance calculations will be used to support the use of dual slope differential characteristics to promote secure differential protection operation when challenged with unequal CT performance.; On transformer energizing, 2nd harmonic current has been traditionally used as a means to prevent phase differential misoperation. Certain transformers may not exhibit high enough 2nd harmonic, causing a dependability issue if the restraint is set too low. The use of 2nd and 4th harmonics for inrush detection will be shown to enhance reliability during energizing inrush situations.; Overexcitation can occur from abnormal operation of the utility system or the plant's excitation control. Causes of overexcitation will be outlined and use of volts per hertz protection explored. With overexcitation occurring from system voltage rise, the phase differential protection has been traditionally blocked using 5th harmonic restraint. This may cause an undesired non-operation of the phase differential protection if an internal fault occurs while the transformer is overexcited, causing a delay in tripping and severe damage to the transformer. A technique using adaptive phase differential pick-up value will be illustrated to overcome this challenge.; On resistance-grounded power transformers, phase differential protection sensitivity for ground faults near the neutral is decreased. The use of ground differential protection will be explored and the increased sensitivity gained will be demonstrated.
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