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Simulation of Wind Speed in the Ventilation Tunnel for Surge Tanks in Transient Processes

机译:过渡过程中调压罐通风隧道中风速的模拟

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摘要

Hydroelectric power plants' open-type surge tanks may be built in mountains subject to the provision of atmospheric air. Hence, a ventilation tunnel is indispensable. The air flow in the ventilation tunnel is associated with the fluctuation of water-level in the surge tank. There is a great relationship between the wind speed and the safe use and project investment of ventilation tunnels. To obtain the wind speed in a ventilation tunnel for a surge tank during transient processes, this article adopts the one-dimensional numerical simulation method and establishes a mathematical model of a wind speed by assuming the boundary conditions of air discharge for a surge tank. Thereafter, the simulation of wind speed in a ventilation tunnel, for the case of a surge tank during transient processes, is successfully realized. Finally, the effective mechanism of water-level fluctuation in a surge tank and the shape of the ventilation tunnel (including length, sectional area and dip angle) for the wind speed distribution and the change process are discovered. On the basis of comparison between the simulation results of 1D and 3D computational fluid dynamics (CFD), the results indicate that the one-dimensional simulation method as proposed in this article can be used to accurately simulate the wind speed in the ventilation tunnel of a surge tank during transient processes. The wind speed fluctuations can be superimposed by using the low frequency mass wave (i.e., fundamental wave) and the high frequency elastic wave (i.e., harmonic wave). The water-level fluctuation in a surge tank and the sectional area of the ventilation tunnel mainly affect the amplitude of fundamental and harmonic waves. The period of a fundamental wave can be determined from the water-level fluctuations. The length of the ventilation tunnel has an effect on the period and amplitude of harmonic waves, whereas the dip angle influences the amplitude of harmonic waves.
机译:水力发电厂的敞开式调压罐可以在山区中建造,但要提供大气。因此,通风隧道是必不可少的。通风管道中的空气流量与调压罐中水位的波动有关。风速与通风隧道的安全使用和项目投资之间存在很大的关系。为了获得调压罐通风通道在过渡过程中的风速,本文采用一维数值模拟方法,并通过假定调压罐空气排放的边界条件,建立了风速的数学模型。此后,对于过渡过程中的调压罐,成功实现了通风隧道中风速的模拟。最终,发现了调节罐中水位波动的有效机理以及通风通道的形状(包括长度,截面积和倾角)对风速分布和变化过程的影响。在对一维和三维计算流体动力学(CFD)仿真结果进行比较的基础上,结果表明本文提出的一维仿真方法可以准确地模拟某建筑物通风隧道的风速。过渡过程中的调压罐。通过使用低频质量波(即基波)和高频弹性波(即谐波),可以叠加风速波动。调压罐中的水位波动和通风管道的截面积主要影响基波和谐波的幅度。基波的周期可以根据水位波动来确定。通风隧道的长度会影响谐波的周期和幅度,而倾角会影响谐波的幅度。

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