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The effect of air entrapment on the performance of squeeze film dampers: Experiments and analysis.

机译:夹带空气对挤压膜阻尼器性能的影响:实验和分析。

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Squeeze film dampers (SFDs) are an effective means to introduce the required damping in rotor-bearing systems. They are a standard application in jet engines and are commonly used in industrial compressors. Yet, lack of understanding of their operation has confined the design of SFDs to a costly trial and error process based on prior experience.; The main factor deterring the success of analytical models for the prediction of SFDs' performance lays on the modeling of the dynamic film rupture. Usually, the cavitation models developed for journal bearings are applied to SFDs. Yet, the characteristic motion of the SFD results in the entrapment of air into the oil film, thus producing a bubbly mixture that can not be represented by these models.; In this work, an extensive experimental study establishes qualitatively and—for the first time—quantitatively the differences between operation with vapor cavitation and with air entrainment. The experiments show that most operating conditions lead to air entrainment and demonstrate the paramount effect it has on the performance of SFDs, evidencing the limitation of currently available models. Further experiments address the operation of SFDs with controlled bubbly mixtures. These experiments bolster the possibility of modeling air entrapment by representing the lubricant as a homogeneous mixture of air and oil and provide a reliable data base for benchmarking such a model.; An analytical model is developed based on a homogeneous mixture assumption and where the bubbles are described by the Rayleigh-Plesset equation. Good agreement is obtained between this model and the measurements performed in the SFD operating with controlled mixtures. A complementary analytical model is devised to estimate the amount of air entrained from the balance of axial flows in the film. A combination of the analytical models for prediction of the air volume fraction and of the hydrodynamic pressures renders promising results for prediction of the performance of SFDs with freely entrained air. The results of this work are of immediate engineering applicability. Furthermore, they represent a firm step to advance the understanding on the effects of air entrapment in the performance of SFD.
机译:挤压膜阻尼器( SFDs )是在转子轴承系统中引入所需阻尼的有效手段。它们是喷气发动机的标准应用,通常用于工业压缩机。但是,由于缺乏对它们的操作的了解,因此 SFDs 的设计仅限于基于先前经验的昂贵的反复试验过程。决定 SFDs 性能预测分析模型成功的主要因素在于动态膜破裂的建模。通常,为轴颈轴承开发的空化模型通常应用于 SFD 。但是, SFD 的特征运动会导致空气滞留在油膜中,从而产生了无法用这些模型表示的气泡混合物。在这项工作中,一项广泛的实验研究定性地(并且首次)定量地确定了汽蚀和空气夹带之间的区别。实验表明,大多数运行条件都会导致空气夹带,并证明它对 SFDs 的性能具有至关重要的作用,证明了当前可用模型的局限性。进一步的实验研究了 SFDs 在受控气泡混合物下的操作。这些实验通过将润滑剂表示为空气和油的均匀混合物来支持对空气截留进行建模的可能性,并为基准化此类模型提供了可靠的数据库。基于 homogeneous 混合假设开发了一个分析模型,其中气泡由Rayleigh-Plesset方程描述。该模型与在使用受控混合物操作的 SFD 中执行的测量之间获得了很好的一致性。设计了互补的分析模型,以根据薄膜中的轴向流平衡来估计夹带的空气量。预测空气体积分数和流体动力压力的分析模型相结合,为预测带有自由夹带空气的 SFDs 的性能提供了有希望的结果。这项工作的结果具有直接的工程适用性。此外,它们代表着坚定的一步,进一步了解了空气夹带对 SFD 的影响。

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