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Effects of macro-parameters on vibration and radiation noise for high speed wheel gear transmission in electric vehicles

机译:宏观参数对电动汽车高速轮齿轮传动振动和辐射噪声的影响

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摘要

Considering flexible shafts, a coupled dynamic model for the gear transmission system of wheel reducer used in electric vehicle was developed. By combining the acoustics finite element modal for housing in Virtual Lab and the coupled dynamic model for gear transmission system, a simulation method was proposed for the prediction of the radiation noise for the wheel reducer. Then, the effects of different macro geometry gear parameters including pressure angle and helical angle on the dynamic response and radiation noise were investigated under the rated working condition. Results show that the peak-peak value of the transmission error dramatically falls in the starting zone, followed by an upward trend with the increase of the pressure angle for the low speed stage gear pair. The minimum transmission error and vibration acceleration occur when the pressure angle is 17 degrees. The increase of the pressure angle does not affect the sound pressure level at the field point obviously. The design case with 17 degrees pressure angle shows the optimum radiation noise level, which is 4.41dB less than the original model. Compared to the pressure angle, the helix angle has a major influence on the transmission error, vibration acceleration and acoustic radiation noise. With the increase of the helix angle, the time-varying transmission error curve becomes more smooth with a lower peak-peak value. Besides, the increase of helix angle results in lowering the varying and fluctuating trend of both vibration acceleration and acoustic radiation noise. The design case with 24 degrees helix angle shows the prime radiation noise level, which is 7 dB less than the original scheme.
机译:考虑到柔性轴,开发了一种用于电动车辆中使用的轮减速器齿轮传动系统的耦合动态模型。通过组合用于齿轮传输系统的虚拟实验室和耦合动态模型的壳体的声学有限元模态,提出了一种用于预测轮减速器的辐射噪声的模拟方法。然后,在额定工作状态下研究了不同宏观几何齿轮参数在动态响应和辐射噪声上的螺旋角度的影响。结果表明,传动误差的峰值峰值显着落入起始区域,随后是低速级齿轮对的压力角的增加而上升趋势。当压力角为17度时,会发生最小传输误差和振动加速度。压力角的增加显然不会影响场景点处的声压级。具有17度压力角的设计案例显示出最佳的辐射噪声水平,比原始模型小4.41dB。与压力角相比,螺旋角对透射误差,振动加速度和声学辐射噪声具有主要影响。随着螺旋角度的增加,时变频率误差曲线变得更平滑,峰值峰值较低。此外,螺旋角的增加导致振动加速度和声学辐射噪声的变化和波动趋势降低。具有24度螺旋角的设计案例显示了优质辐射噪声水平,比原始方案小7 dB。

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