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UNSTEADY PRESSURE INTERACTION OF AN AXIAL FLOW FAN WITH A STABILIZATION RING IN TUNNEL AND METRO APPLICATIONS

机译:隧道和地铁应用中稳定环的轴流风扇的不稳定压力相互作用

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Ventilation fans operating in underground metropolitan tunnels are subjected to abrupt changes in operations due to the pressure wavefronts generated by the passage of the trains, and the magnitude of these pressure waves is increasing due to increasing speed of passing trains in modern mass transport systems. To avoid fans being driven into stall designers can fit fans with a stabilisation ring, i.e. a casing treatment that was found to mitigate the mechanical consequences of being inadvertedly driven into stall due to pressure pulses. A stabilisation ring is a circumferential cavity in the casing of the fan, placed upstream of the rotor in order to allow the fluid to recirculate in stalled operations. A series of fins inside this cavity is used in order to drive the recirculating fluid back into the blade vane with a proper alignment with the leading edge of the rotor. Following a previous RANS investigation that lead to the conclusion that the drive mechanism of the stabilisation ring onto the fan is based on azimuthal pressure unbalance we present here a U-RANS investigation aiming at understanding the dynamics of the interaction of the anti-stall ring with the fan and to provide insight on possible development of the geometry of the casing treatment. The fan selected for this study is a real fan for tunnel and metro applications (9 rotor blades, 1490 rpm) with a real-geometry stabilisation ring (27 fins). Computations account for different operating points (peak efficiency, design point, peak pressure and stalled operations) and rely on the low-Reynolds cubic k-e model of Lien et al. All the simulations were carried out with the open-source OpenFOAM code. Results were validated against available experimental data and then analysed to understand the unsteady interaction between the rotor of the fan and the cavity of the stabilisation ring.
机译:在地下大都市隧道中运行的通风风扇受到火车通过产生的压力波前的作用的突然变化,并且由于现代大规模运输系统中的通过列车的速度增加,这些压力波的大小正在增加。为避免被驱动的风扇被驱逐成摊位设计师可以用稳定环,即套管处理,该套管治疗,以减轻由于压力脉冲因压脉冲而被无意中被驱逐成摊位的机械后果。稳定环是风扇的壳体中的圆周腔,放置在转子的上游,以便使流体在停滞的操作中再循环。使用该腔内的一系列翅片以使将再循环流体驱动回叶片叶片,其具有与转子的前缘的适当对准。在以前的Rans调查后,导致稳定环的驱动机制在风扇上的稳定机构基于方位角的不平衡,我们在这里展示了U-RANS调查,旨在了解防摊圈的相互作用的动态风扇并提供关于壳体处理几何结构的洞察力。选择该研究的风扇是隧道和地铁应用(9转子叶片,1490rpm)的真正风扇,具有实际几何稳定环(27个翅片)。计算占不同的操作点(峰值效率,设计点,峰值压力和停滞操作),并依赖于Lien等人的低雷诺立方K-E型号。所有模拟都是通过开源OpenFoam代码进行的。结果验证了可用的实验数据,然后分析以了解风扇转子与稳定环的腔之间的不稳定相互作用。

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