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首页> 外文期刊>Journal of Micromechanics and Microengineering >Surface micro-grooves for near-wall exergy and flow control: application to aircraft intake de-icing
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Surface micro-grooves for near-wall exergy and flow control: application to aircraft intake de-icing

机译:用于近壁火用和流量控制的表面微槽:在飞机进气除冰中的应用

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摘要

This paper develops a new surface micro-profiling technique for reducing exergy losses and controlling near-wall flow processes, particularly for antiicing of a helicopter surface. Fabrication of embedded surface microchannels entails surface etching with KOH and XeF2 gas, so that the interspersed microchannels can be assembled into a surface layer of silicon. Testing of the micro-profiled surfaces is performed with particle image velocimetry in a water tunnel. Experimental data indicate that converging open microchannels lead to certain differences of flow patterns on the downstream side of an engine cooling bay. Furthermore, exergy losses for external flow past the parallel embedded microchannels are shown to be lower than previous benchmark results without microchannels. Analytical results are presented for these losses of available energy and exergy destruction. Reduced drag of slip-flow conditions within each microchannel offsets the added friction irreversibility of larger surface area. By altering the near-wall flow patterns, it is anticipated that embedded surface microchannels can provide a useful new approach for dealing with flow-related problems of aircraft icing.
机译:本文开发了一种新的表面微轮廓技术,以减少火用损失并控制近壁流动过程,尤其是为直升机表面除冰。嵌入的表面微通道的制造需要用KOH和XeF2气体进行表面蚀刻,以便散布的微通道可以组装到硅的表面层中。在水隧道中使用粒子图像测速仪对微轮廓表面进行测试。实验数据表明,会聚的开放微通道会导致发动机冷却室下游侧的流型有所不同。此外,流经并行嵌入式微通道的外部流量的火用损失显示为比以前没有微通道的基准测试结果低。给出了这些可用能量损失和火用破坏的分析结果。每个微通道内滑流条件的阻力减小,抵消了较大表面积增加的摩擦不可逆性。通过改变近壁流动模式,可以预见嵌入式表面微通道可以提供一种有用的新方法来处理与飞机结冰有关的流动问题。

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