Design and optimisation of energy‐efficient PM‐assisted synchronous reluctance machines for electric vehicles

Author:

Shao Lingyun1ORCID,Tavernini Davide2,Hartavi Karci Ahu Ece2,Sorniotti Aldo2

Affiliation:

1. College of Automation Engineering Nanjing University of Aeronautics and Astronautics Nanjing China

2. Department of Mechanical Engineering Sciences University of Surrey Guildford UK

Abstract

AbstractThe design and optimisation of a permanent magnet‐assisted synchronous reluctance (PMaSynR) traction machine is described to improve its energy efficiency over a selection of driving cycles, when installed on a four‐wheel‐drive electrically powered vehicle for urban use, with two on‐board powertrains. The driving cycle‐based optimisation is defined with the objective of minimising motor energy loss under strict size constraints, while maintaining the peak torque and restricting the torque ripple. The key design parameters that exert the most significant influence on the selected performance indicators are identified through a parametric sensitivity analysis. The optimisation brings a motor design that is characterised by an energy loss reduction of 8.2% over the WLTP Class 2 driving cycle and 11.7% over the NEDC and Artemis Urban driving cycles, at the price of a 4.7% peak torque reduction with respect to the baseline machine. Additional analysis, implemented outside the optimisation framework, revealed that different coil turn adjustments would reduce the energy loss along the considered driving cycles. However, under realistic size constraints, the optimal design solutions are the same.

Publisher

Institution of Engineering and Technology (IET)

Subject

Electrical and Electronic Engineering

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