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IDENTIFICATION OF STRUCTURAL STIFFNESS AND DAMPING COEFFICIENTS OF A SHOED BRUSH SEAL

机译:鞋刷密封的结构刚度和阻尼系数的识别

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摘要

The multiple-shoe brush seal, a variation of a standard brush seal, accommodates arcuate pads at the bristles free ends. This novel design allows reverse shaft rotation operation, and reduces and even eliminates bristle wear, since the pads lift off due to the generation of a hydrodynamic film during rotor spinning. This type of seal, able to work at both cold and high temperatures, not only restricts secondary leakage but also acts as an effective vibration damper. The dynamic operation of the shoed-brush seals, along with the validation of reliable predictive tools, relies on the appropriate estimation of the seal structural stiffness and energy dissipation features. Single frequency external load tests conducted on a controlled motion test rig and without shaft rotation allow the identification of the structural stiffness and equivalent damping of a 20-pad brush seal, 153 mm in diameter. The seal energy dissipation mechanism, represented by a structural loss factor and a dry friction coefficient, characterizes the energy dissipated by the bristles and the dry friction interaction of the brush seal bristles rubbing against each other. The physical model used reproduces well the measured system motions, even for frequencies well above the identification range.
机译:多靴式刷子密封件是标准刷子密封件的变体,可在刷毛自由端容纳弧形垫。这种新颖的设计可以使轴反向旋转,并减少甚至消除了刷毛的磨损,这是因为在转子旋转过程中,由于产生了液力膜而使垫块脱落。这种类型的密封件能够在低温和高温下工作,不仅限制了二次泄漏,而且还充当了有效的减振器。蹄刷式密封件的动态运行以及可靠的预测工具的验证,都取决于对密封件结构刚度和能量耗散特征的适当估计。在受控运动试验台上进行的单频外部载荷试验,且无轴旋转,因此可以识别直径为153 mm的20垫电刷密封的结构刚度和等效阻尼。由结构损耗因子和干摩擦系数表示的密封能量耗散机制表征了刷毛耗散的能量以及刷式密封毛之间相互摩擦的干摩擦相互作用。所使用的物理模型可以很好地重现所测得的系统运动,即使频率远高于识别范围也是如此。

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