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VARIABLE GEOMETRY TURBINE NOZZLE DESIGN FOR HIGH EXPANSION RATIOS

机译:用于高膨胀比的可变几何涡轮喷嘴设计

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In variable nozzle geometry turbines (VNT), the vanes that form the nozzle are opened to control turbine mass flow and expansion ratio (ER) in order to allow better engine matching and the generation of more turbine power. In application to turbocharged road vehicles, the vanes are closed to provide higher boost pressure for engine and vehicle acceleration, and may also be used for engine braking assistance. In both situations, high nozzle expansion ratios (ERs) are created, and shockwaves may be produced from the nozzles. These shocks reduce turbine efficiency and can cause high cycle fatigue (HCF) damage to the downstream rotor blades. Design of high ER radial nozzles is difficult for VNT because transonic flows are very sensitive to small changes to vane geometry, and there is a large semi-vaneless space after the nozzle throat. Shock minimised nozzle designs are therefore often accomplished by an auto-optimisation technique. While design targets may be achieved, this technique does not offer sufficient insight into how and why an optimal flow field has been derived, so the same optimisation procedure must be applied to every new design. In this paper, a new design method that overcomes this problem is proposed. The method first uses a conformal mapping to transfer a radial nozzle from the r-θ plane into the x-y plane. The mapped nozzle displays amplification of supersonic acceleration that is explained by the curvature changes brought about by the mapping. In addition, a link between shock strength and the flatness of the suction surface of the mapped nozzle was found. These features can be utilised to design nozzles with reduced shock loss. Nozzles for 6:1 ER were designed in this way and CFD results show significantly weaker nozzle shockwaves. Other performances of the nozzles are either improved or unaffected.
机译:在可变喷嘴几何涡轮机(VNT)中,打开形成喷嘴的叶片以控制涡轮质量流量和膨胀比(ER)以便允许更好的发动机匹配和更多涡轮机的产生。在涡轮增压道路车辆的应用中,叶片关闭以提供更高的发动机和车辆加速度的增压压力,也可用于发动机制动辅助。在这种情况下,产生高喷嘴膨胀比(ERS),并且可以从喷嘴产生冲击波。这些震动可降低涡轮机效率,并可能对下游转子叶片造成高循环疲劳(HCF)损坏。 VNT难以设计的高ER径向喷嘴,因为跨音流量对对叶片几何的小变化非常敏感,并且喷嘴喉部后存在大的半无差距空间。因此,震动最小化喷嘴设计通常通过自动优化技术完成。虽然可以实现设计目标,但这种技术没有提供足够的深入了解如何以及为何获得最佳流场的方法,因此必须对每个新设计应用相同的优化过程。在本文中,提出了一种克服这个问题的新设计方法。该方法首先使用共形映射来将径向喷嘴从R-θ平面传送到X-Y平面。映射喷嘴显示由映射所带来的曲率变化解释的超音速加速度的放大。另外,发现了映射出喷嘴的吸入表面的冲击强度和平坦度之间的链路。这些特征可用于设计减少防震的喷嘴。以这种方式设计了6:1 ER的喷嘴,CFD结果显示出显着较弱的喷嘴冲击波。喷嘴的其他性能改善或未受到影响。

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