首页> 外文会议>American Society of Mechanical Engineers(ASME) Turbo Expo vol.5 pt.A; 20040614-17; Vienna(AT) >EFFECTS OF INLET RAMP SURFACES ON THE AERODYNAMIC BEHAVIOUR OF BLEED HOLE AND BLEED SLOT OFF-TAKE CONFIGURATIONS
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EFFECTS OF INLET RAMP SURFACES ON THE AERODYNAMIC BEHAVIOUR OF BLEED HOLE AND BLEED SLOT OFF-TAKE CONFIGURATIONS

机译:进气坡口表面对排气孔和排气槽脱气结构气动性能的影响

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Bleed off-take air pressure and the interaction of the offtake with the primary flow through the blade passage is determined by: (1) the location of the bleed off-take at the endwall relative to the blade passage; (2) the bleed flow rate; and (3) the off-take geometry. In the companion paper (Leishman et al., 2004) the effect of bleed rate and endwall location was investigated using a circular hole bleed off-take configuration; the circular hole was tested at three endwall locations and for bleed flow rates between zero and 9 percent of the primary (core) flow through the blade passage. The effects of bleed off-take geometry are presented in this paper by comparing the aerodynamic behaviour of a number of generic bleed off-take configurations. Using results from low-speed cascade experiments and three-dimensional numerical calculations, the off-take configurations are compared with respect to the requirement to maximise bleed off-take air pressure and minimise loss generated within the blade passage. The off-take geometry, and especially the introduction of contoured inlet ramp surfaces to guide flow into the off-take for high bleed pressure, has a strong effect on its aerodynamic behaviour because it determines the extent to which flow within the off-take is coupled to the primary flow through the blade passage. In this paper, the off-take configurations that give the highest bleed pressure generally cause the highest levels of loss in the blade passage.
机译:排气口的排气压力以及排气口与通过叶片通道的主流之间的相互作用取决于:(1)排气口在端壁处相对于叶片通道的位置; (2)放气流速; (3)承接几何。在配套论文中(Leishman等,2004),使用圆孔放气口配置研究了放气速率和端壁位置的影响。在三个端壁位置测试了圆孔,并检查了流经叶片通道的主要(核心)流量的零到9%之间的渗出流量。通过比较许多通用的排泄口结构的空气动力学特性,本文介绍了排泄口几何形状的影响。使用来自低速级联实验的结果和三维数值计算,就最大排放放气空气压力和叶片通道内产生的损失最小化的需求比较了放气配置。抽气口的几何形状,尤其是引入轮廓化的入口坡道表面以引导气流进入高抽气压力的抽气口,对它的空气动力学性能有很大影响,因为它决定了抽气口内的流动程度通过叶片通道耦合到主流。在本文中,提供最高排放压力的脱气构造通常会导致叶片通道中的损失最高。

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