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A Three-Dimensional Analysis of Rotordynamic Forces on Whirling and Cavitating Helical Inducers

机译:旋转和空化螺旋形诱导器上的旋转动力的三维分析

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摘要

This paper investigates the linearized dynamics of three-dimensional bubbly cavitating flows in helical inducers. The purpose is to understand the impact of the bubble response on the radial and tangential rotordynamic forces exerted by the fluid on the rotor and stator stages of whirling turbomachines under cavitating conditions. The flow in the inducer annulus is modeled as a homogeneous inviscid mixture, containing vapor bubbles with a small amount of noncondensable gas. The effects of several contributions to the damping of the bubbly dynamics are included in the model. The governing equations of the inducer flow are written in "body-fitted" orthonormal helical Lagrangian coordinates, linearized for small-amplitude perturbations about the mean flow, and solved by modal decomposition. The whirl excitation generates finite-speed propagation and resonance phenomena in the two-phase flow within the inducer. These, in turn, lead to a complex dependence of the lateral rotordynamic fluid forces on the excitation frequency, the void fraction, the average size of the cavitation bubbles, and the turbopump operating conditions (including, rotational speed, geometry, flow coefficient and cavitation number). Under cavitating conditions the dynamic response of the bubbles induces major deviations from the noncavitating flow solutions, especially when the noncondensable gas content of the bubbles is small and thermal effects on the bubble dynamics are negligible. Then, the quadratic dependence of rotordynamic fluid forces on the whirl speed, typical of cavitation-free operation, is replaced by a more complex behavior characterized by the presence of different regimes where, depending on the whirl frequency, the fluid forces have either a stabilizing or a destabilizing effect on the inducer motion. Results are presented to illustrate the influence of the relevant flow parameters.
机译:本文研究了螺旋形诱导器中三维气泡流的线性化动力学。目的是了解气泡响应对空化条件下流体施加在旋转涡轮机的转子和定子级上的径向和切向转子动力的影响。诱导环中的流动建模为均匀的无粘性混合物,其中包含带有少量不可凝气体的蒸汽气泡。该模型包括对气泡动力学阻尼的几种贡献的影响。诱导流的控制方程写在“拟合”正交法线拉格朗日坐标中,针对平均流的小振幅扰动进行线性化,并通过模态分解求解。旋转激励在感应器内的两相流中产生有限速度的传播和共振现象。这些反过来导致侧向转子动力流体力对激励频率,空隙率,空化气泡的平均尺寸以及涡轮泵的工况(包括转速,几何形状,流量系数和空化)的复杂依赖性。数)。在空化条件下,气泡的动态响应会引起与非空化流解决方案的重大偏离,尤其是当气泡的不可冷凝气体含量较小且对气泡动力学的热影响可忽略不计时。然后,转子动力流体力对旋流速度的二次依赖性(无气穴操作的典型特征)被更复杂的行为所取代,该行为的特征在于存在不同的状态,其中,根据旋涡频率,流体力要么稳定,要么或对感应器运动产生不稳定作用。给出结果以说明相关流动参数的影响。

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