26.4
異なる定格を持つ並列変圧器が関係するシナリオでは、単位ごとのモデルを開発するには、公称外巻数比に対応する必要があります。この状況は、選択したベース電圧が変圧器の電圧定格に比例していない場合に発生します。定格電圧が項 a によって関連付けられている変圧器を考えてみましょう。選択した電圧ベースが項 b…
単位数量モデルでは、実際の数量モデルと比較して変圧器の解析が簡素化されます。理想的には、電圧ベース比が巻線の電圧定格と一致すると、トランスの巻線がなくなります。
ただし、定格の異なる並列トランスでは、電圧ベースの選択は困難です。
このような場合、選択した基本電圧がトランスの電圧定格に比例しないオフノミナルターン比のユニット当たりモデルが開発されます。
定格電圧がaという用語で関連付けられるトランスについて考えてみます。
選択した電圧ベースが項bとの関係を満たす場合、項cはそれらの比率であり、定格電圧の関係に代入されます。
このセットアップは、2 つのトランスを直列に並べてモデル化できます。1 つは損失を含むユニットあたりの標準モデルを表し、もう 1 つは理想的なトランスです。このモデルでは、シャント励起分岐は単純化のために無視されています。
このモデルは、理想的な変圧器巻線に対応していないコンピュータープログラムには適さない場合があります。
別の方法として、ノード方程式が含まれ、コンピュータープログラムのオフノミナルターン比トランスを表すアドミタンスパラメータを提供します。
実数 c の場合、円周率回路ネットワークをモデル化できます。
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Q1: Why are per-unit models with off-nominal turns ratios needed for parallel transformers?
Per-unit models with off-nominal turns ratios are necessary when parallel transformers have different voltage ratings and selected base voltages are not proportional to the transformer's voltage ratings. Standard per-unit models assume voltage base ratios match winding voltage ratings, but this assumption fails for transformers with disparate ratings. Off-nominal models accommodate this mismatch, enabling accurate analysis of complex electrical systems with mixed transformer configurations.
Q2: How is an off-nominal turns ratio transformer represented in series modeling?
An off-nominal turns ratio transformer is modeled as two transformers in series: a standard per-unit model representing losses and practical aspects, and an ideal transformer representing the voltage ratio without losses. The ideal transformer component captures the non-standard turns ratio, while the per-unit model accounts for real transformer behavior. Shunt-exciting branches are typically neglected in this simplified representation.
Q3: What is the relationship between voltage bases and off-nominal turns ratios?
The off-nominal turns ratio, term c, is defined as the ratio of selected voltage bases divided by the transformer's rated voltage ratio. When chosen voltage bases satisfy a relationship involving term b and are substituted into the rated voltage relationship (term a), the resulting ratio c represents the deviation from nominal conditions. This ratio quantifies how far the selected bases deviate from the transformer's actual voltage ratings.
Q4: Why might series transformer models be unsuitable for computer programs?
Series transformer models with ideal transformer windings may not be compatible with computer programs that lack support for ideal transformer representations. These programs cannot process the ideal transformer component separately. To overcome this limitation, alternative modeling approaches using nodal equations and admittance parameters provide computer-compatible representations of off-nominal turns ratio transformers.
Q5: How do nodal equations help model off-nominal turns ratio transformers in software?
Nodal equations provide admittance parameters that represent off-nominal turns ratio transformers without requiring ideal transformer windings. This approach is compatible with most simulation software and computational tools. The admittance parameters derived from nodal equations offer a straightforward means of incorporating transformer behavior into computer-based analysis, making complex transformer networks easier to simulate.
Q6: What is a pi circuit network and when is it used for transformers?
A pi circuit network is a practical representation used to model transformers with off-nominal turns ratios when the turns ratio is a real number. The pi network effectively captures impedance characteristics and is compatible with most computational tools. This approach provides accurate representation of transformer behavior and is particularly useful for computer-based analysis of transformers with non-standard voltage bases.
Q7: How do per-unit models simplify transformer analysis compared to actual quantity models?
Per-unit models normalize transformer quantities to base values, eliminating the need to track actual voltage and current magnitudes. This normalization simplifies calculations and comparisons across transformers with different ratings. However, when voltage base ratios do not match winding voltage ratings, off-nominal turns ratios must be incorporated to maintain accuracy in the simplified model.