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March 3, 2026Ain Shams Engineering Journal6 citationsOpen Access

Parallel operation of induction generators in grid-connected micro-hydro systems

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MRMrinal Kanti RajakJSJotirmoy SamantaRPRajen Pudur

Key Points

  • Optimal performance is achieved with identical slip operation, resulting in 5,262 W active power generation—a 126% increase from differing slips.
  • Reactive power consumption is reduced to 2,618 VAR, representing a 15% decrease compared to different slip operation.
  • Comprehensive steady-state mathematical model is developed using per-phase equivalent circuits to analyze system behavior effectively.
  • The technique maintains voltage stability within ± 5% tolerance, improving power factor from 0.76 to 0.95, promoting renewable energy use.

Abstract

This paper presents a novel experimental approach for grid integration of parallel-connected induction generators (IGs) with different power ratings (2.2 kW and 5.5 kW) in micro-hydro power plants, eliminating the need for power electronics converters. A comprehensive steady-state mathematical model using per-phase equivalent circuits is developed, with system equations solved efficiently through the lower–upper (LU) decomposition method in MATLAB. Three experimental scenarios validate the approach: IGs at different slips, identical slips, and variable speed operation. Results demonstrate that identical slip operation (Case B) achieves optimal performance with 5,262 W active power generation, a 126% increase over the different slip operation, and 2,618 VAR reactive power consumption, representing a 15% reduction. The methodology effectively reduces inrush currents during grid connection, maintains voltage stability within ± 5% tolerance, and improves power factor from 0.76 to 0.95. This cost-effective solution advances renewable energy integration for remote applications without complex power electronics.

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Cite This Study

Rajak et al. (2026) studied this question.

synapsesocial.com/papers/69a768a4badf0bb9e87e56cbhttps://doi.org/10.1016/j.asej.2026.104021
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