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ANALYSIS OF TILTING EFFECTS AND GEOMETRIC NON-UNIFORMITIES IN MICRO-HYDROSTATIC GAS THRUST BEARINGS

机译:微静压气体推力轴承中倾斜效果和几何非均匀性分析

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The MIT microengine rotors are supported by hydrostatic gas journal and hydrostatic gas thrust bearings. Due to the low length-to-diameter ratio of the devices, the thrust bearings play an important role in providing sufficient tilting stiffness to resist any tilting motion about the spinning axis of the rotor. The performance of the thrust bearings can be influenced by geometric non-uniformities such as thrust bearing clearances and orifice diameters and profiles which arise in the process of microfabrication. To enable stable high speed operation of the micro-devices, it is important to quantify these effects. Furthermore, a thrust bearing analysis tool needs to be developed that is able to explore different thrust bearing arrangements and configurations. In this work, an analytical model is established for analyzing the effects of rotor tilt and geometric non-uniformities in micro-hydrostatic gas thrust bearings for application to micro-turbomachinery. A previously developed model (Teo and Spakovszky) is generalized and extended for application to thrust bearings with orifices arranged in non-axisymmetric configurations. As a consequence of rotor tilt or geometric non-uniformities, the flow through individual orifices of the thrust bearing becomes non-uniform. The orifice flows are in turn coupled to the hydrostatic pressure field in the thrust bearing pad, and a Green's function approach is adopted to solve the coupled system. The hydrodynamic thrust bearing forces induced by the pumping action of the rotor rotation are determined by solving the Reynolds equation. The model is able to predict thrust bearing tilting stiffness and variations in the thrust bearing mass flow rates as a function of rotor tilting angle for a variety of orifice arrangements. The model can be applied to analyze the effects of non-uniformities in orifice diameter and the presence of clogged orifices on tilting and the concomitant reduction in tilting stiffness. In addition, the effects of orifice taper are analyzed using an influence-coefficient technique for 1-D compressible flows. Results obtained for various taper ratios are presented and discussed. The model serves as a useful tool for specifying design tolerances during the fabrication of micro-hydrostatic gas thrust bearings and is used in the experiments to estimate the tilting angle of the rotor during operation.
机译:麻省理工学院微发炎转子由静水压气体轴颈和静液压气体推力轴承支撑。由于装置的低长度到直径比,推力轴承在提供足够的倾斜刚度以抵抗围绕转子的纺纱轴线的任何倾斜运动来发挥重要作用。推力轴承的性能可以受到在微制造过程中出现的推力轴承间隙和孔径的几何不均匀性的影响。为了使微型器件稳定高速运行,可以量化这些效果非常重要。此外,需要开发推力轴承分析工具,其能够探索不同的推力轴承布置和配置。在这项工作中,建立了分析模型,用于分析转子倾斜和几何非均匀性在微静压气体推力轴承中的效果,以应用于微型涡轮机械。以前开发的型号(TEO和SPAKOVSZKY)是推广的,并且延伸以应用于以非轴对称配置排列的孔口推力轴承。作为转子倾斜或几何不均匀性的结果,通过止推轴承的各个孔的流动变得不均匀。孔口流又耦合到推力轴承垫中的静液压区域,采用绿色的功能方法来解决耦合系统。通过求解雷诺方程来确定由转子旋转的泵送作用引起的流体动力推力承载力。该模型能够预测推力轴承倾斜刚度和推力轴承质量流量的变化,作为各种孔口布置的转子倾斜角的函数。该模型可以应用于分析孔口直径的非均匀性的影响以及倾斜倾斜的堵塞孔的存在和倾斜刚度的伴随减少。此外,使用用于1-D可压缩流的影响系数技术来分析孔锥的效果。提出并讨论了各种锥度比获得的结果。该模型用作用于在制造微静压气体推力轴承期间指定设计公差的有用工具,并且在实验中用于估计操作期间转子的倾斜角度。

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