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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Performance Characteristics of Metal Mesh Foil Bearings: Predictions Versus Measurements
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Performance Characteristics of Metal Mesh Foil Bearings: Predictions Versus Measurements

机译:金属丝网箔轴承的性能特征:预测与测量

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摘要

Proven low-cost gas bearing technologies are sought to enable more compact rotating machinery products with extended maintenance intervals. The paper presents an analysis for predicting the static and dynamic forced performance characteristics of metal mesh foil bearings (MMFB_s) which comprise a top foil supported on a layer of metal mesh of a certain compactness. The analysis couples a finite element model of the top foil and underspring support with the gas film Reynolds equation. A comparison of the predictions against laboratory measurements with two bearings aims to validate the analysis. The predicted drag friction factor in one bearing (L = D = 28.00 mm) during full film operation is just f~ 0.03 at ~50,000rpm, in good agreement with measurements at increasing applied loads. The predictions further elucidate the effect of the applied load and rotor speed on the bearing minimum film thickness, journal eccentricity, and attitude angle. For a second bearing (L = 38.0 mm, D= 36.5 mm), predicted bearing force coefficients show magnitudes comparable with the measurements, with less than a 20% difference, in the 250-350 Hz excitation frequency range. While the predicted direct stiffness coefficients are rather constant, the experimental force coefficients increase with frequency (maximum 400 Hz), due mainly to the increasing amplitudes of dynamic force applied to excite the bearing with a set amplitude of motion. The analysis underpredicts the direct damping coefficients at high frequencies (>300 Hz). The cross-coupled stiffness and damping coefficients are typically lower (<40%) than the direct ones. The bearings operated stably at all speeds without any subsynchronous whirl. The reasonable agreement of the predictions with the available test data promote the better design and further development of MMFB supported rotating machinery.
机译:寻求可靠的低成本气体轴承技术,以使更紧凑的旋转机械产品具有更长的维护间隔。本文提出了一种分析方法,用于预测金属网箔轴承(MMFB_s)的静态和动态受力性能特征,该轴承包括支撑在具有一定致密性的金属网层上的顶部箔。该分析将顶部箔和弹簧支撑的有限元模型与气膜雷诺方程耦合在一起。将预测与两个轴承的实验室测量值进行比较,旨在验证分析结果。在全膜运行过程中,一个轴承(L = D = 28.00 mm)中的预计阻力摩擦系数在50,000 rpm时仅为f〜0.03,与增加载荷时的测量结果吻合良好。这些预测进一步阐明了施加的负载和转子速度对轴承最小薄膜厚度,轴颈偏心率和姿态角的影响。对于第二个轴承(L = 38.0 mm,D = 36.5 mm),预测的轴承力系数在250-350 Hz激励频率范围内显示出与测量值相当的幅度,相差不到20%。尽管预测的直接刚度系数相当恒定,但实验力系数却随频率(最大400 Hz)而增加,这主要是由于施加动力以设定的运动幅度激励轴承时,动力的幅度不断增加。该分析低估了高频(> 300 Hz)下的直接阻尼系数。交叉耦合的刚度和阻尼系数通常低于直接系数(<40%)。轴承在所有速度下均稳定运行,而没有任何次同步旋转。预测与可用测试数据的合理吻合促进了MMFB支持的旋转机械的更好设计和进一步开发。

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