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首页> 外文期刊>Journal of the Brazilian Society of Mechanical Sciences and Engineering >Study on the water-lubricated high-speed non-contact mechanical face seal supported by a disc spring
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Study on the water-lubricated high-speed non-contact mechanical face seal supported by a disc spring

机译:碟形弹簧支撑的水润滑高速非接触式机械面密封研究

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A type of non-contact mechanical face seal supported by a disc spring with high bending stiffness is proposed for actual working conditions and may be used in high-speed turbopumps with large axial loads and heavy random vibration. First, the separated speed of the seal is obtained, which shows that the initial contact mechanical seal can transform into a non-contact seal when the rotational speed is higher than the separated speed. Second, the steady-state model is proposed to describe the performance of the seal. The model includes the Reynolds equation, energy equation, lubricant temperature-viscosity relationship equation, and moment equilibrium equation, and the finite-difference method is used to solve the model. Third, with water as the sealed fluid, the effects of the geometric parameters and working parameters (e.g. spring stiffness, axial load, rotational speed) on the main performance parameters (film thickness, the maximum pressure, temperature, power loss, leakage) are obtained. The results show that with an increase in the stiffness of the spring, the film thickness and temperature increase change only slightly. With an increase in seal load, the film thickness decreases and the temperature increases. The film thickness increases and the temperature decreases with an increase in rotational speed. The results show that the proposed mechanical seal supported by such disc spring can be used in turbopump systems with higher speeds and smaller leakage requirements.
机译:针对实际工况,提出了一种由碟形弹簧支撑的高弯曲刚度的非接触式机械面密封,可用于轴向载荷大、随机振动大的高速涡轮泵。首先,得到密封件的分离速度,表明当转速高于分离速度时,初始接触式机械密封可以转变为非接触式密封件。其次,提出稳态模型来描述密封件的性能;该模型包括雷诺方程、能量方程、润滑油温度-粘度关系方程和力矩平衡方程,并采用有限差分法求解模型。第三,以水为密封流体,得到几何参数和工作参数(如弹簧刚度、轴向载荷、转速)对主要性能参数(膜厚、最大压力、温度、功率损耗、泄漏)的影响。结果表明:随着弹簧刚度的增加,膜厚和温度升高的变化不大;随着密封载荷的增加,膜厚减小,温度升高。随着转速的增加,薄膜厚度增加,温度降低。结果表明,所提出的由这种碟形弹簧支撑的机械密封可用于转速较高、泄漏要求较小的涡轮泵系统。

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