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Related Concept Videos

Wind Turbine Machine Models01:24

Wind Turbine Machine Models

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In the growing field of wind energy, incorporating wind turbine models into transient stability analysis is essential. Induction and synchronous machines are the primary models used, with induction machines being prevalent due to their simplicity and reliability.
Induction machines interact through the rotating magnetic field generated by the stator and the rotor. The key parameter is slip, which is the difference between synchronous speed and rotor speed relative to synchronous speed. Slip is...
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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.
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A three-phase AC generator has a rotor with a rotating magnet placed within the stator mounted with the stationary three-phase winding to generate three-phase voltages via mutual induction. These windings are evenly distributed around the inner circumference of the stator and are arranged 120 electrical degrees apart. Three-phase stator windings consist of three separate coils or groups of coils, known as phases, each connected in Y (star) configuration or Delta configuration.
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Three-phase systems have two configurations: the wye and delta. A star configuration can be three or four wires; in a delta configuration, the components are connected in a closed loop. Instantaneous power refers to the power value at a precise moment, and in a balanced three-phase system, it is constant. This is because the sum of the instantaneous powers in the three phases remains steady over time, despite individual fluctuations, due to the symmetry and phase relationship. The total...
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Power Factor Correction01:20

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The power transmission to a factory involves the transfer of apparent power, a combination of active and reactive power. The power factor measures how effectively electrical power is converted into useful work output. The ratio of the real power (KW) that does the work to the apparent power (KVA) supplied to the circuit.
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Moment-of-Momentum Equation01:09

Moment-of-Momentum Equation

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The moment-of-momentum equation is a critical tool for analyzing the torque produced by the rotating blades of a wind turbine. This equation is derived by applying Newton's second law to a fluid particle, which states that the rate of change of linear momentum is equal to the external force acting on the particle.
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Updated: May 2, 2026

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Comparison of three methods for wind turbine capacity factor estimation.

Y Ditkovich1, A Kuperman1

  • 1Hybrid Energy Sources Laboratory, Department of Electrical Engineering and Electronics, Ariel University Center of Samaria, 40700 Ariel, Israel.

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|March 4, 2014
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Summary

Three methods for calculating the capacity factor of fixed-speed wind turbines yield very similar results. These findings validate analytical approximations for evaluating wind turbine performance.

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Area of Science:

  • Renewable Energy Engineering
  • Wind Energy Systems
  • Turbine Performance Analysis

Background:

  • Accurate capacity factor calculation is crucial for wind energy assessments.
  • Existing methods for capacity factor calculation vary in complexity and accuracy.
  • Understanding these methods aids in reliable wind turbine performance evaluation.

Purpose of the Study:

  • To review and compare three distinct approaches for calculating the capacity factor of fixed-speed wind turbines.
  • To assess the accuracy and applicability of quasi-exact, analytic, and approximate methods.
  • To validate analytical approximations for wind turbine performance evaluation.

Main Methods:

  • Quasi-exact approach: Numerical calculation using discrete wind data and turbine power curves.
  • Analytic approach: Continuous probability distribution and fitted power curves for analytical solution.
  • Approximate approach: Nonlinear approximation for Rayleigh winds using rated power and rotor diameter.

Main Results:

  • All three methods produced highly comparable capacity factor values in the case study.
  • The analytic approach provides valuable insights into factors influencing capacity factor.
  • The validity of analytically derived approximations for performance evaluation is reinforced.

Conclusions:

  • The close agreement between methods confirms the reliability of analytical approximations.
  • The analytic approach offers a balance of accuracy and insight for wind turbine performance.
  • These validated methods can be applied to enhance wind energy assessments.