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Assessment of the Oil Scoop Capture Efficiency in High Speed Rotors

机译:高速转子中油Sc捕获效率的评估

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Experimental research was conducted into a scooped rotor system that captures oil from a stationary jet and directs it through passages within the shaft to another axial location. Such a system has benefits for delivering oil via under-race feed to aeroengine bearings where direct access is limited. Oil capture efficiency was calculated for three jet configurations, a range of geometric variations relative to a baseline and a range of operating conditions. Flow visualization techniques yielded high-speed imaging in the vicinity of the scoop leading edge. Overall capture efficiency depends on the amount of oil initially captured by the scoop that is retained. Observation shows that when the jet hits the tip of a scoop element, it is sliced and deflected upward in a "plume." Ligaments and drops formed from this plume are not captured. In addition, some oil initially captured is flung outward as a consequence of centrifugal force. Although in principle capture of the entire supply is possible over most of the shaft speed range, as demonstrated by a simplified geometric model, in practice 60-70% is typical. Significant improvement in capture efficiency was obtained with a lower jet angle (more radial) compared to baseline. Higher capture efficiencies were found where the ratio of jet to scoop tip speed was lower. This research confirms the capability of a scoop system to capture and retain delivered oil. Additional numerical and experimental work is recommended to further optimize the geometry and increase the investigated temperature and pressure ranges.
机译:对research形转子系统进行了实验研究,该系统捕获了固定射流中的油,并将其通过轴内的通道引导到另一个轴向位置。这样的系统具有通过种族下的供油将油输送到航空发动机轴承的优点,其中直接访问受到限制。计算了三种射流配置,相对于基准线的一系列几何变化以及一系列工作条件下的集油效率。流量可视化技术在铲斗前缘附近产生了高速成像。总体捕集效率取决于最初被铲斗捕集的油量。观察结果表明,当射流撞击勺形元件的尖端时,将其切成薄片并向上偏转成“羽状”。没有捕获到由该羽流形成的韧带和液滴。另外,由于离心力的作用,一些最初捕获的油被甩出。尽管从原理上讲,可以在大多数轴转速范围内获得整个供应,如简化的几何模型所示,但实际上通常为60-70%。与基线相比,较低的射流角(更大的径向)可显着提高捕获效率。发现在射流与铲形尖端速度之比较低的地方,捕获效率更高。这项研究证实了铲斗系统捕获和保留输送的油的能力。建议进行额外的数值和实验工作,以进一步优化几何形状并增加研究的温度和压力范围。

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