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3D Numerical Analysis of Pulsating Water Jet in the Draft Tube Cone of Hydraulic Machinery

机译:3D液压机械胶水滤水中脉动水射流的数值分析

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The fixed blade turbines, e.g. Francis, operating at part load, present a high level of swirl flow at the inlet of draft tube cone. When swirling flow is decelerating, it becomes unstable, giving rise at spiral vortex (or vortex rope). Vortex rope is the main cause for the occurrence of pressure fluctuations in draft tube of hydraulic turbines operating at part load. Different techniques have, been studied in order to mitigate the vortex rope, with not so big success. The water injection method developed in our laboratory from Politehnica University Timisoara has shown that a 10%-12% from the main flow is necessary in order to mitigate the pressure fluctuations. However, distinct low-frequency pressure oscillations are still exist. These plunging oscillations (low-frequency), are dangerous due to the waves traveling along to hydraulic passage. The paper continue our work in the pulsating water jet injection along the draft tube axis, in order to mitigate the vortex rope and the associated low-frequency oscillations. Nevertheless, the great calling of this control method is to eliminate the vortex rope by fragmenting the vortex sheet. The energy loss coefficient and kinetic to potential conversion ratio distributions are plotted along to the draft tube cone in order to evaluate the performances. In addition, the unsteady part of the pressure signal characterize by Direct Fourier Transform will be analysed in the case with and without pulsating jet method. The last part of the results will be focused on the pressure signal decomposition in order to show how the pulsating water jet practically changes the ability of the decelerated swirling flows to generate both rotating (asynchronous) and plunging (synchronous) fluctuations.
机译:例如,固定刀片机涡轮机。弗朗西斯,在零件负载下操作,在纸张锥的入口处呈现高水平的旋流。当旋流流动减速时,它变得不稳定,产生螺旋涡流(或涡旋绳)。涡旋绳索是在部件负荷操作的液压涡轮机中发生压力波动的主要原因。已经研究了不同的技术,以减轻涡旋绳索,并且成功不那么大。我们从Politehnica大学的实验室开发的水注射方法表明,来自主流的10%-12%是必要的,以减轻压力波动。然而,仍然存在不同的低频压力振荡。这些泄漏振荡(低频),由于波浪行进到液压通道,是危险的。本文继续我们在沿着牵引管轴沿着脉动水喷射喷射的工作,以减轻涡旋绳索和相关的低频振荡。然而,这种控制方法的巨大呼唤是通过将涡旋片分离来消除涡旋绳索。能量损失系数和动力学与潜在的转换比分布沿着牵引管锥绘制,以评估性能。另外,在具有和不具有脉动喷射方法的情况下,将分析通过直接傅里叶变换表征的压力信号的不稳定部分。结果的最后一部分将集中在压力信号分解上,以便展示脉动水射流的情况几乎如何改变减速旋流流动的能力,以产生旋转(异步)和漏洞(同步)波动。

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