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Theoretical and Experimental Investigations of the Rotor Vibration Amplitude of the Turbocharger and Bearings Temperature

机译:涡轮增压器转子振动幅度与轴承温度的理论和实验研究

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One of the most urgent issues of the modern world and domestic automobile and tractor production is the problem of the production of efficient and reliable turbochargers. The rotor bearings largely determine the reliable operation of the turbocharger. By increasing the degree of the forcing of the engine the turbocharger rotor speed and the load increases significantly. Working conditions of bearings also complicated because of the temperature rise. In this case the bearing of the turbine and the compressor bearing works in different thermal conditions. The definition of the thermal state of the bearings can be performed experimentally. However, to perform these studies the sophisticated experimental equipment must be used. Researchers can't perform experiments for each type of turbocharger. Therefore, the applying of the theoretical approaches becomes more relevant. The peculiarity of the considered problem is the design of the bearings, which are made in the form of multilayer bearings with floating rings. Such designs increase the number of the parameters that affect the behaviour of the rotor. For the calculation of the multilayer bearings and turbocharger rotor dynamics a method and calculation algorithm was developed. A plan of the experiment based on the orthogonal central composite plan was drawn up. The regression equations for rotor amplitude and bearing temperature were obtained. As variable parameters the clearances (external and internal), rotor speed, pressure and lubricant temperature were used. The results of the calculation were compared with experimental results obtained at the plant. Non-Newtonian properties of the lubricants were taken into account in the calculations. Comparative results showed good agreement. In this way the resulting function can be applied to studies of the similarly multilayer bearings without complicated experimental studies.
机译:现代世界和国内汽车和拖拉机生产中最紧迫的问题之一是生产高效且可靠的涡轮增压器的问题。转子轴承在很大程度上决定了涡轮增压器的可靠运行。通过增加发动机的受力程度,涡轮增压器的转子速度和负载显着增加。由于温度上升,轴承的工作条件也变得复杂。在这种情况下,涡轮机轴承和压缩机轴承在不同的热工条件下工作。轴承热状态的定义可以通过实验进行。但是,要进行这些研究,必须使用复杂的实验设备。研究人员无法针对每种类型的涡轮增压器进行实验。因此,理论方法的应用变得更加重要。所考虑的问题的特殊性在于轴承的设计,该轴承以带有浮动环的多层轴承的形式制成。这种设计增加了影响转子性能的参数数量。为了计算多层轴承和涡轮增压器的转子动力学,提出了一种方法和计算算法。制定了基于正交中心综合计划的实验计划。得到了转子振幅和轴承温度的回归方程。使用间隙(外部和内部),转子速度,压力和润滑剂温度作为可变参数。将计算结果与在工厂获得的实验结果进行比较。计算中考虑了润滑剂的非牛顿特性。比较结果显示出良好的一致性。这样,可以将结果函数应用于类似的多层轴承的研究,而无需进行复杂的实验研究。

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