首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >EXPERIMENTAL INVESTIGATION OF TURBINE STAGE FLOW FIELD AND PERFORMANCE AT VARYING CAVITY PURGE RATES AND OPERATING SPEEDS
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EXPERIMENTAL INVESTIGATION OF TURBINE STAGE FLOW FIELD AND PERFORMANCE AT VARYING CAVITY PURGE RATES AND OPERATING SPEEDS

机译:变腔率和工作速度变化时涡轮级流场和性能的实验研究

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The aspect of hub cavity purge has been investigated in a high-pressure axial low-reaction turbine stage. The cavity purge is an important part of the secondary air system, used to isolate the hot main annulus flow from cavities below the hub level. A full-scale cold-flow experimental rig featuring a rotating stage was used in the investigation, quantifying main annulus flow field impact with respect to purge flow rate as it was injected upstream of the rotor. Five operating speeds were investigated of which three with respect to purge flow, namely a high loading case, the peak efficiency, and a high speed case. At each of these operating speeds, the amount of purge flow was varied across a very wide range of ejection rates. Observing the effect of the purge rate on measurement plane averaged parameters, a minor outlet swirl decrease is seen with increasing purge flow for each of the operating speeds while the Mach number is constant. The prominent effect due to purge is seen in the efficiency, showing a similar linear sensitivity to purge for the investigated speeds. An attempt is made to predict the efficiency loss with control volume analysis and entropy production. While spatial average values of swirl and Mach number are essentially unaffected by purge injection, important spanwise variations are observed and highlighted. The secondary flow structure is strengthened in the hub region, leading to a generally increased over-turning and lowered flow velocity. Meanwhile, the added volume flow through the rotor leads to higher outlet flow velocities visible in the tip region, and an associated decreased turning. A radial efficiency distribution is utilized, showing increased impact with increasing rotor speed.
机译:已经在高压轴向低反应力涡轮级中研究了轮毂腔净化的方面。腔体吹扫是二次空气系统的重要组成部分,用于将热的主环流与轮毂高度以下的腔体隔离开。在研究中使用了具有旋转平台的全尺寸冷流实验台,量化了相对于吹扫流量的主要环流场对注入转子上游的吹扫流量的影响。研究了五个操作速度,其中三个关于吹扫流量,即高负载情况,峰值效率和高速情况。在这些操作速度中的每个速度下,吹扫流量在非常大的喷射速率范围内变化。观察吹扫速率对测量平面平均参数的影响,在马赫数恒定的情况下,对于每个工作速度,随着吹扫流量的增加,出口旋涡会轻微降低。在效率上可以看到由于吹扫引起的显着效果,对于所研究的速度,它显示出与吹扫相似的线性灵敏度。试图通过控制量分析和熵产生来预测效率损失。尽管旋流和马赫数的空间平均值基本上不受吹扫注入的影响,但观察到并突出了重要的翼展方向变化。轮毂区域的二级流动结构得到了加强,从而导致倾覆量普遍增加,流速降低。同时,通过转子的增加的体积流导致在尖端区域中可见的更高的出口流速,以及相关的减小的转弯。利用了径向效率分布,显示出随着转子速度的增加而增加的影响。

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