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On the use of transpiration patterns for reduction of pressure losses

机译:关于蒸腾图案的使用,减少压力损失

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Pressure losses in laminar, pressure-gradient-driven channel flows modified by wall transpiration have been analysed in the range of Reynolds numbers guaranteeing flow stability. It was found that these losses were affected by the reduction of the effective channel opening due to formation of transpiration 'bubbles', by nonlinear streaming and by the elimination of direct contact between the stream and the bounding walls. It was further found that pressure losses can be reduced by properly selecting the transpiration pattern. It was determined that nonlinear streaming is the dominant effect as the transpiration wave number resulting in the largest reduction of pressure losses corresponds to the maximization of this streaming. Using transpiration at both walls further decreases pressure losses, but only when both transpiration patterns are in a proper relative position. The largest reduction of losses is achieved by concentrating transpiration at a single wave number. It is shown that the performance of finite-slot transpiration is well captured using just a few leading modes from the Fourier expansions describing the transpiration distribution. The analysis of energy expenditure shows that the use of transpiration increases the energy cost of the flow. Conditions leading to the minimization of this cost represent the most effective use of transpiration as a propulsion augmentation system.
机译:在保证流动稳定性的雷诺数范围内,分析了由壁面蒸腾作用修正的层流、压力梯度驱动的通道流中的压力损失。研究发现,这些损失受蒸腾“气泡”形成导致的有效通道开口减小、非线性流动以及水流与边界墙之间的直接接触消除的影响。进一步发现,适当选择蒸腾模式可以降低压力损失。确定非线性流动是主要影响,因为导致压力损失最大减少的蒸腾波数对应于该流动的最大化。在两个壁面上使用蒸腾作用可以进一步减少压力损失,但只有当两种蒸腾模式都处于适当的相对位置时。通过将蒸腾作用集中在一个波数上,可以最大程度地减少损失。结果表明,仅使用描述蒸腾分布的傅里叶展开式中的几个前导模,就可以很好地捕捉有限槽蒸腾的性能。能量消耗分析表明,蒸腾作用的使用增加了水流的能量消耗。导致成本最小化的条件代表了蒸腾作为推进增强系统的最有效利用。

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