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About the Negative Direct Static Stiffness of Highly Eccentric Straight Annular Seals

机译:关于高度偏心的直线环形密封件的负直接静刚度

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Experimental results indicating negative direct static stiffness of highly eccentric straight gas annular seals were very recently presented by Childs and Arthur (2013, "Static Destabilizing Behavior for Gas Annular Seals at High Eccentricity Ratios," ASME Paper No. GT2013-94201). This instability occurred at zero rotation speed and at high eccentricities. Up to then only gas annular seals with zero rotation speed, operating in centered position and with choked exit section were known as being susceptible of developing negative direct static stiffness. The seals and the working conditions presented by Childs and Arthur (2013, "Static Destabilizing Behavior for Gas Annular Seals at High Eccentricity Ratios," ASME Paper No. GT2013-94201) had clearly no choked exit section. The present work advances a theoretical explanation of results reported by Childs and Arthur (2013, "Static Destabilizing Behavior for Gas Annular Seals at High Eccentricity Ratios," ASME Paper No. GT2013-94201). The analysis is based on the numerical solution of the bulk flow equations of the flow in the annular seal. Theoretical results show a negative static stiffness at high eccentricities and zero rotation speeds. Other seal geometries and working conditions were tested and showed that the decrease of the direct static stiffness at high eccentricities and zero rotation speeds is a characteristic of all straight annular seals whether the fluid is compressible or not. Nevertheless with increasing rotation speed, the static stiffness becomes again positive and may increase with increasing eccentricity. The negative static stiffness is then limited to very specific working conditions: high eccentricities and zero rotation speed.
机译:Childs和Arthur最近提出了表明高度偏心的直型气体环形密封件具有负的直接静刚度的实验结果(2013年,“高偏心率下的气体环形密封件的静态失稳行为”,ASME文件GT2013-94201)。这种不稳定性发生在零转速和高偏心率下。直到那时,已知只有零转速,在居中位置操作且出口截面被阻塞的气环密封件才容易产生负的直接静刚度。查尔兹和亚瑟(2013年,“高偏心率下的气体环形密封件的静态失稳行为”,ASME文件GT2013-94201)提出的密封件和工作条件显然没有阻塞出口。本工作对Childs和Arthur报告的结果进行了理论解释(2013年,“高偏心率下的气体环形密封件的静态去稳定行为”,ASME文件GT2013-94201)。该分析基于环形密封中流动的整体流动方程的数值解。理论结果表明,在高偏心率和零转速下,负刚度为负。测试了其他密封件的几何形状和工作条件,结果表明,无论流体是否可压缩,在高偏心率和零转速下直接静态刚度的降低都是所有直线环形密封件的特征。然而,随着转速的增加,静态刚度会再次变为正,并且可能会随着偏心率的增加而增加。负的静态刚度则被限制在非常特殊的工作条件下:高偏心率和零转速。

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