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Hybrid Power System Shafting Vibration Characteristic

机译:混合动力系统轴系振动特性

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Finite element model of diesel engine shafting and motor shafting were established. With finite element calculation, the first 5 order modal frequency and vibration shape of diesel engine shafting and motor shafting were obtained. Based on diesel engine shafting model and motor shafting model, hybrid power system shafting finite element model was established, and the first 10 order modal frequency and vibration shape were obtained. Calculation results show that every modal frequency of hybrid power system shafting is declined compared with ordinary power system. Reason for the decline is motor shafting modal frequency is significantly less than diesel engine shafting. The 1 order vibration shape of hybrid power system shafting is torsion vibration. Hybrid power system shafting vibration experiment table was established and shafting vibration testing were carried out. Torsion vibration experiment results show that f0and 2f0 are two peak frequency of shafting torsion vibration frequency spectrum, shafting peak frequency is less than shafting 1 order modal frequency 212 Hz and shafting torsion resonance can be avoided. Bending vibration experiment results show that bending vibration energy is focuses in x direction and y direction. Hybrid power system axial vibration can be ignored.
机译:建立了柴油发动机轴系和电机轴系的有限元模型。利用有限元计算,获得了柴油发动机轴系和电动轴系的前5个阶模态频率和振动形状。基于柴油发动机轴系模型和电机轴系模型,建立了混合动力系统轴系有限元模型,获得了前10个阶数模频和振动形状。计算结果表明,与普通电力系统相比,混合动力系统轴系的每个模态频率都被拒绝。下降的原因是电机轴向模态频率明显低于柴油发动机轴系。混合动力系统轴系的1阶振动形状是扭转振动。建立混合动力系统轴系振动实验表,进行了轴系振动测试。扭转振动实验结果表明,F0AND 2F0是两个轴向扭转振动频谱频率的峰值频率,轴系峰值频率小于朝向轴路1级频率212Hz,可以避免轴路扭转振荡谐振。弯曲振动实验结果表明,弯曲振动能量在x方向和y方向上聚焦。混合动力系统轴向振动可以忽略。

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