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Numerical and Experimental Studies of Axial Stability of Rotors on Thrust Fluid-Film Bearings with Active Control

机译:主动控制推力液膜轴承转子轴向稳定性的数值和实验研究

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The present paper explores a possibility of the application of thrust fluid-film bearings with active control of rotor axial position control to enhance rotor stability and increase energy efficiency of rotor-bearing systems. A mathematical model has been developed that incorporates a detailed mathematical description of fluid flow in the bearing, a rotor-bearing dynamic model based on a linearization approach that helps to identify dynamic coefficients of the fluid film and a control system model based on a model of a servovalve, that acts as an actuator in the system, and a PID-controller. By means of controlling the flow rate through the servovalve, it is possible to adjust the supply pressure of the fluid to the area of friction in the bearing thus controlling the bearing reaction force and, consequently, the rotor's axial position. This would help one to enhance the rotor stability by means of maintaining a constant axial gap and increase energy efficiency by means of maintaining the value of the axial gap within the range of gap heights where the least power loss could be achieved due to friction. The present paper also features a description of the developed test rig designed to prove the theoretically substantiated hypothesis possibility and initial experimental results.
机译:本文探讨了在主动控制转子轴向位置控制中应用推力液膜轴承以增强转子稳定性并提高转子轴承系统的能效的可能性。已经开发出一种数学模型,其中包括对轴承中流体流动的详细数学描述,基于线性化方法(有助于识别流体膜的动态系数)的转子轴承动力学模型以及基于模型的控制系统模型。伺服阀(用作系统中的执行器)和PID控制器。通过控制通过伺服阀的流量,可以将流体的供应压力调节到轴承中的摩擦区域,从而控制轴承反作用力,进而控制转子的轴向位置。这将有助于通过保持恒定的轴向间隙来增强转子的稳定性,并通过将轴向间隙的值保持在间隙高度的范围内来提高能量效率,在间隙高度范围内,由于摩擦而导致的功率损失最小。本文还对已开发的测试台进行了描述,旨在证明其理论依据得到证实的假设可能性和初步的实验结果。

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