Analyzing faulted transmission lines: Phase components as an alternative to symmetrical components

S. Chase, Sumit Sawai, Amol Kathe
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引用次数: 3

Abstract

Protection engineers are often interested in calculating the steady-state voltages and currents on faulted transmission lines. This necessitates the use of accurate fault solution techniques. The most commonly taught and used methods involve symmetrical components. Symmetrical components are advantageous in that they yield multiple decoupled systems that are simple to solve. This simplicity was crucial before the advent of digital computers. With modern computers, it is equally easy to perform calculations with phase components (A, B, C) or with symmetrical components (positive, negative, zero). With symmetrical components, different circuit topologies must be used for different fault types, which can be inconvenient in practice. Additionally, symmetrical component techniques commonly assume line transposition and give oversimplified results for real-life cases. This paper presents phase-domain solution methods as an alternative to symmetrical components. Phase-domain analysis allows all ten common shunt faults to be modeled using a single circuit topology. In exchange for this convenience, the phase-domain approach must account for mutual coupling between the three phases of a transmission line. However, this in turn allows phase-domain analysis to be used to model untransposed transmission lines without compromising the accuracy of the solution. This paper presents a general derivation for a steady-state, phase-domain transmission line solution and illustrates its practical use through several examples. Steady-state signals can be reliably used for testing traditional phasor-based relays. This steady-state solution is then translated into a time-domain equivalent, which numerically solves differential equations to accurately model the transition between prefault and fault states. Accurate modeling of state transitions makes this solution suitable for testing relays that use incremental quantities.
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分析故障传输线:相位分量作为对称分量的替代
保护工程师经常对计算故障传输线上的稳态电压和电流感兴趣。这就需要使用精确的故障解决技术。最常教授和使用的方法包括对称成分。对称组件的优势在于它们产生多个解耦系统,这些系统易于求解。在数字计算机出现之前,这种简单性至关重要。使用现代计算机,用相位分量(A、B、C)或对称分量(正、负、零)进行计算同样容易。由于元器件对称,不同的故障类型必须采用不同的电路拓扑结构,这在实际应用中很不方便。此外,对称分量技术通常假定线换位,并且在实际情况下给出过于简化的结果。本文提出相域解法作为对称分量的替代方法。相域分析允许使用单个电路拓扑对所有十种常见的并联故障进行建模。为了方便起见,相域方法必须考虑到传输线三相之间的相互耦合。然而,这反过来又允许相域分析用于模拟未转置的传输线,而不会影响解决方案的准确性。本文给出了稳态相域传输线解的一般推导,并通过实例说明了其实际应用。稳态信号可以可靠地用于传统相量继电器的测试。然后将该稳态解转换为时域等效解,用数值方法求解微分方程,以准确地模拟故障前状态和故障状态之间的转换。状态转换的精确建模使该解决方案适用于使用增量量的测试继电器。
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