Analysis of Vibration and Noise for the Powertrain System of Electric Vehicles under Speed-Varying Operating Conditions

Whine noise from the electric powertrain system of electric vehicles, including electromagnetic noise and gear-meshing noise, significantly affects vehicle comfort and has been getting growing concern. In order to identify and avoid whine problems as early as possible in the powertrain development process, this paper presents a vibration and noise simulation methodology for the electric powertrain system of vehicles under speed-varying operating conditions. The electromagnetic forces on the stator teeth of the motor and the bearing forces on the gearbox for several constant-speed operating conditions are obtained first by electromagnetic field simulation and multi-body dynamic simulation, respectively. Order forces for the speed-varying operating condition are generated by interpolation between the obtained forces, before they are applied on the mechanical model whose natural modes have been calibrated in advance by tested modes. The whine noise radiated from the powertrain is then obtained based on acoustic boundary element analysis. The simulated bearing forces indicate that the overlooking of the motor torque ripple does not result in significant loss in simulation accuracy of electromagnetic noise. The simulation results and tested data show good consistency, with the relative frequency deviation of local peaks being less than 8% and the error of the average sound pressure level (SPL) being mostly below 10 dB (A).

[1]  Noureddine Bouhaddi,et al.  Structural dynamics of electric machine stators: Modelling guidelines and identification of three-dimensional equivalent material properties for multi-layered orthotropic laminates , 2015 .

[2]  Haijun Wu,et al.  A low-frequency fast multipole boundary element method based on analytical integration of the hypersingular integral for 3D acoustic problems , 2013 .

[3]  V. Lanfranchi,et al.  Coupled Numerical Simulation Between Electromagnetic and Structural Models. Influence of the Supply Harmonics for Synchronous Machine Vibrations , 2012, IEEE Transactions on Magnetics.

[4]  R. Krishnan,et al.  Noise in electric machines: a review , 1998, Conference Record of 1998 IEEE Industry Applications Conference. Thirty-Third IAS Annual Meeting (Cat. No.98CH36242).

[5]  L. G. Copley,et al.  Fundamental Results Concerning Integral Representations in Acoustic Radiation , 1968 .

[6]  Pierre Pellerey,et al.  Electromagnetic and Structural Coupled Simulation to Investigate NVH Behavior of an Electrical Automotive Powertrain , 2012 .

[7]  Yuan Fang,et al.  Vibroacoustic Characterization of a Permanent Magnet Synchronous Motor Powertrain for Electric Vehicles , 2018, IEEE Transactions on Energy Conversion.

[8]  S. Zuo,et al.  Test and Analysis of Electromagnetic Noise of an Electric Motor in a Pure Electric Car , 2019, SAE Technical Paper Series.

[9]  Haijun Wu,et al.  A fast multipole boundary element method for 3D multi-domain acoustic scattering problems based on the Burton-Miller formulation , 2012 .