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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Measurement of Structural Stiffness and Damping Coefficients in a Metal Mesh Foil Bearing
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Measurement of Structural Stiffness and Damping Coefficients in a Metal Mesh Foil Bearing

机译:金属丝网箔轴承的结构刚度和阻尼系数的测量

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摘要

Engineered metal mesh foil bearings (MMFBs) are a promising low cost bearing technology for oil-free microturbomachinery. In a MMFB, a ring shaped metal mesh provides a soft elastic support to a smooth arcuate foil wrapped around a rotating shaft. This paper details the construction of a MMFB and the static and dynamic load tests conducted on the bearing for estimation of its structural stiffness and equivalent viscous damping. The 28.00 mm diameter 28.05 mm long bearing, with a metal mesh ring made of 0.3 mm copper wire and compactness of 20%, is installed on a test shaft with a slight preload. Static load versus bearing deflection measurements display a cubic nonlinearity with large hysteresis. The bearing deflection varies linearly during loading, but nonlin-early during the unloading process. An electromagnetic shaker applies on the test bearing loads of controlled amplitude over a frequency range. In the frequency domain, the ratio of applied force to bearing deflection gives the bearing mechanical impedance, whose real part and imaginary part give the structural stiffness and damping coefficients, respectively. As with prior art published in the literature, the bearing stiffness decreases significantly with the amplitude of motion and shows a gradual increasing trend with frequency. The bearing equivalent viscous damping is inversely proportional to the excitation frequency and motion amplitude. Hence, it is best to describe the mechanical energy dissipation characteristics of the MMFB with a structural loss factor (material damping). The experimental results show a loss factor as high as 0.7 though dependent on the amplitude of motion. Empirically based formulas, originally developed for metal mesh rings, predict bearing structural stiffness and damping coefficients that agree well with the experimentally estimated parameters. Note, however, that the metal mesh ring, after continuous operation and various dismantling and re-assembly processes, showed significant creep or sag that resulted in a gradual decrease in its structural force coefficients.
机译:工程金属丝网箔轴承(MMFBs)是一种用于无油微型涡轮机械的有前途的低成本轴承技术。在MMFB中,环形金属网为包裹在旋转轴上的光滑弧形箔提供了柔软的弹性支撑。本文详细介绍了MMFB的结构以及在轴承上进行的静态和动态载荷测试,以评估其结构刚度和等效粘性阻尼。直径28.00毫米,长28.05毫米的轴承,由0.3毫米的铜线制成的金属网环,紧实度为20%,安装在测试轴上并施加了很小的预紧力。静载荷与轴承挠度的测量结果显示出具有较大磁滞的立方非线性。轴承挠度在加载过程中呈线性变化,但在卸载过程中呈非线性变化。电磁振动器施加在频率范围内振幅受控的测试轴承上。在频域中,施加力与轴承挠度的比值表示轴承的机械阻抗,其实部和虚部分别表示结构刚度和阻尼系数。与文献中公开的现有技术一样,轴承刚度随着运动幅度而显着降低,并且随着频率显示出逐渐增加的趋势。轴承等效粘性阻尼与激励频率和运动幅度成反比。因此,最好用结构损耗因子(材料阻尼)来描述MMFB的机械能耗散特性。实验结果表明,尽管取决于运动幅度,损耗因子仍高达0.7。最初为金属网环开发的基于经验的公式预测了轴承的结构刚度和阻尼系数,这些系数与实验估算的参数非常吻合。但是请注意,金属网环在连续运行以及各种拆卸和重新组装过程后,显示出明显的蠕变或垂度,从而导致其结构力系数逐渐降低。

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