首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Hybrid Gas Bearings Withcontrolled Supply Pressure Torneliminate Rotor Vibrations Whilerncrossing System Critical Speeds
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Hybrid Gas Bearings Withcontrolled Supply Pressure Torneliminate Rotor Vibrations Whilerncrossing System Critical Speeds

机译:在交叉系统临界速度下,具有受控供应压力的混合气体轴承使转子振动成转子

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Microturbomachinery implements gas bearings in compact units of enhanced mechanical reliability. Gas bearings, however, have little damping and wear quickly during transient rub events. Flexure pivot tilting pad bearings offer little or no cross-coupled stiffnesses with enhanced rotordynamic stability; and when modified for hydrostatic pressurization, demonstrate superior rotordynamic performance over other bearing types. External pressurization stiffens gas bearings thus increasing system critical speeds, albeit reducing system damping. Most importantly, measurements demonstrate that external pressurization is not needed for rotor supercritical speed operation. In practice, the supply pressure could be shut off at high rotor speeds with substantial gains in efficiency. This paper introduces a simple strategy, employing an inexpensive air pressure regulator to control the supply pressure into the hybrid bearings, to reduce or even eliminate high amplitudes of rotor motion while crossing the system critical speeds. Rotor speed coast-down tests with the pressure controller demonstrate the effectiveness of the proposed approach. A simple on-off supply pressure control, i.e., a sudden increase in pressure while approaching a critical speed, is the best since it changes abruptly the bearing stiffness coefficients and moves the system critical speed to a higher speed. A rotordynamic analysis integrating predicted bearing force coefficients forwards critical speeds in agreement with the test results. Predicted rotor responses for the controlled supply conditions show an excellent correlation with measured data. The experiments validate the predictive tools and demonstrate the controllable rotordynamic characteristics of flexure pivot hybrid gas bearings.
机译:Microturbomachinery在紧凑的单元中实现气体轴承,从而提高了机械可靠性。但是,气体轴承在短暂的摩擦事件中几乎没有阻尼并且很快磨损。挠性枢轴可倾瓦块轴承提供很少或没有交叉耦合的刚度,并具有增强的转子动力学稳定性;当进行静液压增压改造时,其转子动力学性能优于其他轴承类型。外部增压使气体轴承变硬,从而提高了系统临界速度,尽管降低了系统阻尼。最重要的是,测量结果表明,转子超临界转速运行不需要外部增压。实际上,可以在高转子转速时切断供给压力,从而显着提高效率。本文介绍了一种简单的策略,即使用便宜的气压调节器来控制进入混合轴承的供应压力,以减小甚至消除转子运动的高振幅,同时克服系统的临界速度。使用压力控制器进行的转子滑行降速测试证明了该方法的有效性。简单的开关量供应压力控制(即在接近临界速度时突然增加压力)是最好的,因为它会突然改变轴承刚度系数并将系统临界速度提高到更高的速度。结合了预测的轴承力系数的转子动力学分析将临界速度与测试结果相一致。在受控的供应条件下,预测的转子响应与测量数据显示出极好的相关性。实验验证了预测工具并证明了挠性枢轴混合气体轴承的可控转子动力学特性。

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