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Equivalent Circuits for Practical Transformers01:28

Equivalent Circuits for Practical Transformers

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The practical equivalent circuits of single-phase two-winding transformers exhibit significant deviations from their idealized versions due to the inherent properties of winding resistance and finite core permeability. These properties result in real and reactive power losses, affecting the transformer's performance. Understanding these deviations is crucial for designing more efficient transformers.
In a practical transformer, each winding exhibits resistance and leakage reactance. The...
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Transformers with Off-Nominal Turns Ratios01:25

Transformers with Off-Nominal Turns Ratios

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In scenarios involving parallel transformers with disparate ratings, developing per-unit models requires accommodating off-nominal turns ratios. This situation arises when the selected base voltages are not proportional to the transformer’s voltage ratings. Consider a transformer where the rated voltages are related by the term a. If the chosen voltage bases satisfy a relationship involving term b, term c is defined as the ratio of these bases. This ratio is then substituted into the...
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Power System Three-Phase Short Circuits01:21

Power System Three-Phase Short Circuits

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Determining the subtransient fault current in a power system involves representing transformers by their leakage reactances, transmission lines by their equivalent series reactances, and synchronous machines as constant voltage sources behind their subtransient reactances. In this analysis, certain elements are excluded, such as winding resistances, series resistances, shunt admittances, delta-Y phase shifts, armature resistance, saturation, saliency, non-rotating impedance loads, and small...
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The Ideal Transformer01:26

The Ideal Transformer

964
In single-phase two-winding transformers, two windings are coiled around a magnetic core characterized by cross-sectional area A and magnetic permeability μ. A phasor current i1 enters the left winding while i2 exits the right winding, establishing the fundamental working of the transformer through electromagnetic principles.
Ampere's Law forms the basis of understanding the magnetic field within the transformer. It states that the integral of the magnetic field intensity's...
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Three-Winding Transformers01:19

Three-Winding Transformers

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Three identical single-phase transformers can be configured to form a three-phase transformer connection, which involves high-voltage and low-voltage windings. The high-voltage windings are denoted by capital letters A-B-C, while the low-voltage windings are labeled with lowercase letters a-b-c, representing their respective phases. This notation helps distinguish between the high and low voltage sides of the transformer.
In the per-unit equivalent circuit of a grounded Y-Y three-phase...
335
Three-Phase Short Circuit—Unloaded Synchronous Machine01:21

Three-Phase Short Circuit—Unloaded Synchronous Machine

270
Conducting a three-phase short circuit test on an unloaded synchronous machine helps understand its impact on the system. The AC fault current's oscillogram, with the DC offset removed, reveals that the waveform amplitude decreases from an initially high value to a steady-state level for one phase of the machine.
This behavior occurs due to the magnetic flux produced by the short-circuit armature currents. Initially, these currents follow high-reluctance paths but eventually shift to...
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An Approach to Steady-State Power Transformer Modeling Considering Direct Current Resistance Test Measurements.

Henrique Pires Corrêa1, Flávio Henrique Teles Vieira1

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Summary

This study introduces an improved transformer model that accounts for connection resistance, offering more accurate parameter estimation. The new method accurately separates winding and contact resistance, crucial for detailed power system modeling.

Keywords:
connection resistancepower transformersteady-state model

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Area of Science:

  • Electrical Engineering
  • Power Systems Analysis

Background:

  • Transformer steady-state model parameters are typically computed using short circuit and open circuit tests.
  • Existing models often use approximations like the cantilever circuit, neglecting connection resistance.

Purpose of the Study:

  • To propose an extended transformer model that explicitly includes connection resistance.
  • To develop a parameter estimation method using direct current (DC) resistance tests alongside traditional tests.
  • To validate the model's ability to decompose total resistance into winding and contact components.

Main Methods:

  • An extended transformer model was developed, avoiding the cantilever circuit approximation.
  • Direct current (DC) resistance tests were incorporated to gather additional measurements.
  • Parameter estimation was performed using the extended model and the new measurement set.
  • The model was experimentally validated on a real distribution power transformer.

Main Results:

  • The proposed model and parameter computation successfully decomposed total transformer resistance.
  • Winding and contact resistance components were accurately distinguished.
  • Contact resistance was found to be significant, particularly in low voltage windings.

Conclusions:

  • The extended model provides a more detailed and accurate representation of transformer resistances.
  • Explicitly accounting for contact resistance enhances the precision of load flow simulations and power system modeling.
  • The proposed method is valuable for accurate power transformer characterization.