29.7
중성 임피던스를 통해 접지된 이상적인 Y-Y 변압기는 균형 잡힌 양수 또는 음수 시퀀스 전류에 노출될 때 단일 위상 이상 변압기와 유사한 단위 시퀀스 네트워크를 표시합니다. 이러한 전류는 중성 전류와 관련 전압 강하를 생성하지 않습니다.
크기와 위상이 동일한 제로 시퀀…
중성 임피던스를 통해 접지된 이상적인 Y-Y 변압기는 균형 잡힌 양극 또는 음의 시퀀스 전류가 흐를 때 단상 변압기와 유사한 장치별 시퀀스 네트워크를 가지고 있어 중성 전류 및 전압 강하를 무효화합니다.
3상 모두의 제로 시퀀스 전류가 결합되어 중성 전류를 형성하여 중성 임피던스에서 전압 강하를 일으키고 저전압 권선 전압에 영향을 미칩니다.
실용적인 Y-Y 변압기는 장치당 시퀀스 네트워크에 외부 임피던스를 포함합니다. 각 위상은 자화 인덕턴스와 병렬로 연결된 코어 손실 저항기를 나타냅니다.
이 트랜스포머는 동일한 장치별 포지티브 및 네거티브 시퀀스 임피던스를 갖는 반면 제로 시퀀스 네트워크는 중성 임피던스에 따라 달라집니다.
델타-델타 변압기는 동일한 포지티브 및 네거티브 시퀀스 네트워크를 가지고 있으며, 권선 연결과 독립적인 단위당 임피던스를 가지고 있습니다.
3상에 대한 단위당 시퀀스를 모델링하기 위해 3권선 변압기는 공통 S-베이스 및 비례 전압 베이스를 사용하여 3개의 유사한 단상 변압기를 연결하여 생성됩니다.
제로 시퀀스 네트워크에서 고전압 연결은 고전압 권선의 구성에 따라 달라집니다.
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Q1: How do positive and negative-sequence currents behave in an ideal Y-Y transformer with grounded neutral?
In an ideal Y-Y transformer grounded via neutral impedances, balanced positive or negative-sequence currents flow without producing neutral currents or voltage drops. The per-unit sequence networks resemble those of a single-phase transformer. This symmetry simplifies analysis because positive and negative-sequence impedances are identical, allowing straightforward modeling of balanced fault conditions.
Q2: What happens to zero-sequence currents in a Y-Y transformer with an ungrounded neutral?
Zero-sequence currents cannot flow to ground through an ungrounded neutral but can still circulate within the windings. These identical-magnitude, in-phase currents combine to form a neutral current, causing voltage drops across the neutral impedance and affecting the low-voltage winding voltage. This circulation path allows zero-sequence analysis even without a ground connection.
Q3: How do practical Y-Y transformers differ from ideal transformers in per-unit sequence modeling?
Practical Y-Y transformers incorporate external impedances in their per-unit sequence networks. Shunt branches represent balanced-Y impedance loads, with each phase containing a core loss resistor in parallel with magnetizing inductance. Despite these additions, positive and negative-sequence impedances remain identical, while zero-sequence networks depend on neutral impedance configuration.
Q4: What is the relationship between positive and negative-sequence impedances in delta-delta transformers?
Delta-delta transformers have identical positive and negative-sequence networks with per-unit impedances independent of winding connections. This consistency simplifies fault analysis since both sequence types experience the same impedance. However, practical transformers may show variations depending on actual winding configuration and core design.
Q5: How are three-phase, three-winding transformers modeled using per-unit sequence networks?
Three-phase, three-winding transformers are modeled by connecting three identical single-phase transformers using a common S-base for all terminals and proportional voltage bases for each winding. This approach ensures consistent per-unit representation across all three phases and windings, enabling accurate analysis of sequence currents and voltages throughout the transformer.
Q6: Why does the high-voltage winding configuration matter in zero-sequence network analysis?
In the general zero-sequence network, the high-voltage winding configuration dictates the high-voltage connection and determines how zero-sequence currents flow through the transformer. Different configurations—such as grounded or ungrounded Y, or delta—create different zero-sequence paths and impedances, directly affecting fault current distribution and voltage response during unsymmetrical faults.
Q7: How do per-unit sequence models support analysis of unsymmetrical faults in power systems?
Per-unit sequence models decompose unsymmetrical faults into positive, negative, and zero-sequence components, each with defined impedances. By analyzing how sequence networks of rotating machines and transformers interact during faults, engineers can calculate fault currents and voltages. This approach enables proper circuit breaker and fuse selection for system protection.