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QUADRUPLE FLOW AND ACOUSTIC COINCIDENT RESONANCE OF ROTATING BLADED DISKS INTERACTING WITH STATIONARY ELEMENTS

机译:旋转叶片磁盘的四端流和声学一致共振与固定元件相互作用

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In recent years it has been discovered that besides non-uniform flow excitation such as from stator wakes; acoustic pressure pulsation can be a concern, especially for high pressure centrifugal compressor impellers. This has been termed "triple coincidence" and explains rare failures and likely a reason, at least partially, for some previous undocumented failures. Bladed disk interaction resonance discovered by the author in the mid 1970's can be avoided such as for centrifugal impellers as needed, depending on vibratory mode involved, available damping, and potential excitation level. Especially for stages having vanes in the diffuser near impeller tips, concern for high cycle fatigue is very high as certain numbers of vanes combined with number of rotating blades can give correct phase to excite a highly responding mode. Intentional mistuning of disk-dominated modes has potential for reducing response. A similar but more complex interaction is with transverse acoustic modes having a specific number of nodal diameters. In this case acoustic gas modes in cavities at sides of impellers can match rotating acoustic pulsations at BPF (blade passing frequency) and/or harmonics, termed Tyler-Sofrin modes with increased noise. Also acoustic mode matching impeller structural mode can give the triple coincidence causing resonant response of the impeller. The concern for this coincidence is often difficult to evaluate. For some cases, calculations give enough evidence to modify number of vanes or blades to correct a possible cause of a fatigue failure. This coincidence can add to the direct response, e.g. from either upstream wakes or downstream diffuser vane interacting "potential flow" excitation, herein termed "quadruple coincidence resonance". Dimensions of impeller side cavities are axisymmetric and are set by aerodynamics, so that outer and inner radii define transverse modes with small radial dimensional changes available. Often a minor aerodynamic performance compromise can be used to change designs to avoid serious resonances, e.g. revise numbers of vanes and/or blades, avoid the response of a matching diameter mode or have a different less responsive mode to alleviate concern. Besides turbomachinery e.g. compressors and pumps, some other methods as described could be utilized for any cavity that has diametrical mode shapes, or possibly other patterns for pressure pulsation frequencies. These modification(s), including patent-pending method, PCT/US2018/020880 described herein can alleviate if not eliminate concern for any mechanism having structural vibration excitation and/or environmental noise issues.
机译:近年来,已经发现,除了从定子唤醒等非均匀流激发之外;声压脉动可以是一个问题,特别是对于高压离心压缩机叶轮。这已被称为“三重巧合”,并至少部分地解释罕见的失败,并且可能是一个以前的未记录失败。作者在1970年代中期发现的Bladed磁盘交互谐振可以避免,例如根据需要的离心叶轮,取决于所涉及的振动模式,可用阻尼和潜在的激发水平。特别是对于叶轮提示的扩散器中具有叶片的段落的阶段,对于高循环疲劳的关注非常高,因为与旋转叶片的数量相结合的某些数量的叶片可以给出正确的相位以激发高响应模式。故意缺失磁盘主导模式具有减少响应的可能性。具有类似但更复杂的相互作用是具有特定数量的节点直径的横向声学模式。在这种情况下,叶轮侧面的空腔中的声气模式可以匹配BPF(叶片通过频率)和/或谐波的旋转声脉动,称为巨晶素模式,噪声增加。匹配叶轮结构模式的声学模式也可以给出引起叶轮的共轭响应的三重巧合。对这种巧合的关注往往难以评估。对于某些情况来说,计算给出了足够的证据来修改叶片或叶片的数量,以纠正疲劳失败的可能原因。这笔巧合可以增加直接反应,例如直接反应。从上游唤醒或下游扩散叶片相互作用“潜在流动”激发,这里称为“四重巧合共振”。叶轮侧腔的尺寸是轴对称的,由空气动力学设定,因此外部和内半径限定横向尺寸变化的横向模式。通常,较小的空气动力学性能妥协可用于改变设计以避免严重的共振,例如,修改叶片和/或叶片的数量,避免匹配直径模式的响应或具有不同的响应模式以减轻令人难以不懈的方式。除了涡轮机器之外。压缩机和泵,如所描述的一些其他方法可用于任何具有直径模式形状的空腔,或者可能是用于压力脉动频率的其他图案。这些修改包括专利申请方法,本文所述的PCT / US2018 / 020880可以缓解如果不消除具有结构振动激发和/或环境噪声问题的任何机制的关注。

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