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Dynamic characteristics of the gear-rotor system in compressed air energy storage considering friction effects

机译:考虑摩擦效应的压缩空气储存中齿轮转子系统的动态特性

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The tooth surface friction effects and the resulting tooth surface contact temperature are important factors for the dynamic characteristics of a gear-rotor system in compressed air energy storage (CAES). Therefore, a 3 ° of freedom finite-element model of the system is set up in which the lubrication state of the gear pair, tooth surface friction, contact temperature of the tooth surface, backlash and unbalanced excitation are considered. The friction coefficient is calculated according to the variation of the lubrication state, and the tooth surface contact temperature is derived based on the friction coefficient. The tooth profile deformation caused by the change in the contact temperature is calculated, and the resulting effects on backlash and comprehensive meshing stiffness are considered. The influence of rotating speed, torque load and viscosity of lubricating oil on the system response is studied, and the variation of the friction coefficient, flash temperature of the tooth surface, pressure of the tooth surface and so on are discussed in detail. The results indicate that when the friction coefficient is derived according to the variation of the lubrication state, the variation of the contact temperature of the tooth surface with rotating speed is quite different from that calculated based on a friction coefficient which is set artificially. This leads to a new variation of the dynamic response of the gear-rotor system, and the method of stabilizing the operation of the system is put forward based on the optimization curve for the operation of the system. The results obtained in this paper will provide a reference for the study and design of a gear-rotor system in CAES.
机译:齿面摩擦效应和所得到的齿表面接触温度是压缩空气能量存储(CAES)中的齿轮转子系统的动态特性的重要因素。因此,建立了系统的3°的自由度,其中齿轮对的润滑状态,齿面摩擦,齿面的接触温度,齿面,间隙和不平衡激励的润滑状态。根据润滑状态的变化计算摩擦系数,并且基于摩擦系数导出齿面接触温度。计算由接触温度的变化引起的牙齿轮廓变形,考虑了对间隙和综合啮合刚度的产生效果。研究了旋转速度,扭矩载荷和润滑油粘度对系统响应的影响,并详细讨论了摩擦系数,齿面的闪光温度,齿面的压力等的变化。结果表明,当根据润滑状态的变化导出摩擦系数时,齿面的接触温度随旋转速度的变化与基于人为设定的摩擦系数的变化是完全不同的。这导致齿轮转子系统的动态响应的新变化,并且基于系统操作的优化曲线向稳定系统的操作的方法。本文获得的结果将为CAES的齿轮转子系统的研究和设计提供参考。

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