Comparative Analysis of Single-Layer and Double-Layer Windings in Three-Phase Squirrel-Cage Induction Machines Using FEA and d-q Modelling — Oak Academic Publishing
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Comparative Analysis of Single-Layer and Double-Layer Windings in Three-Phase Squirrel-Cage Induction Machines Using FEA and d-q Modelling
Department of Electrical Engineering, Energy and Automation, National School of Agro-Industrial Sciences, University of Ngaoundere, Ngaoundere, Cameroon
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Department of Electrical Engineering, UIT, University of Ngaoundere, Ngaoundere, Cameroon
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Department of Electrical Engineering, UIT, University of Ngaoundere, Ngaoundere, Cameroon
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Department of Physics, Faculty of Sciences, University of Ngaoundere, Ngaoundere, Cameroon
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Department of Mathematics and Computer Sciences, National School of Agro-Industrial Sciences, University of Ngaoundere, Ngaoundere, Cameroon
1 Department of Electrical Engineering, Energy and Automation, National School of Agro-Industrial Sciences, University of Ngaoundere, Ngaoundere, Cameroon
2 Department of Electrical Engineering, UIT, University of Ngaoundere, Ngaoundere, Cameroon
3 Department of Electrical Engineering, UIT, University of Ngaoundere, Ngaoundere, Cameroon
4 Department of Physics, Faculty of Sciences, University of Ngaoundere, Ngaoundere, Cameroon
5 Department of Mathematics and Computer Sciences, National School of Agro-Industrial Sciences, University of Ngaoundere, Ngaoundere, Cameroon
This paper presents a comprehensive multi-method comparative study on the influence of single-layer and double-layer winding configurations on the static performance of three-phase squirrel-cage induction machines. By integrating high-fidelity finite element analysis (FEA) with dynamic modeling in the d-q reference frame using the Park transformation, we quantify their effects on magnetic flux distribution, magnetizing and leakage inductances, and core saturation behavior. The results reveal that double-layer windings provide superior flux homogeneity and improved inductive linearity, thus simplifying vector control. Despite increased manufacturing complexity and higher end-winding losses, this configuration improves overall electromagnetic performance, justifying its suitability for industrial applications requiring high efficiency and torque stability.
KeywordsInduction MachineWinding ConfigurationFinite Element Analysisd-q ModelFlux DistributionSaturation
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