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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Experimental and Numerical Investigation of the Precessing Helical Vortex in a Conical Diffuser, With Rotor-Stator Interaction
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Experimental and Numerical Investigation of the Precessing Helical Vortex in a Conical Diffuser, With Rotor-Stator Interaction

机译:转子与定子相互作用的圆锥形扩散器中进动螺旋涡流的实验和数值研究

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The flow unsteadiness generated in a swirl apparatus is investigated experimentally and numerically. The swirl apparatus has two parts: a swirl generator and a test section. The swirl generator which includes two blade rows, one stationary and one rotating, is designed such that the emanating flow at free runner rotational speed resembles that of a Francis hydroturbine operated at partial discharge. The test section consists of a conical diffuser similar to the draft tube cone of a Francis turbine. Several swirling flow regimes are produced, and the laser Doppler anemometry (LDA) measurements are performed along three survey axes in the test section for different runner rotational speeds (400-920 rpm), with a constant flow rate, 30 l/s. The measured mean velocity components and its fluctuating parts are used to validate the results of unsteady numerical simulations, conducted using the FOAM-EXTEND-3.0 CFD code. Furthermore, phase-averaged pressure measured at two positions in the draft tube is compared with those of numerical simulations. A dynamic mesh is used together with the sliding general grid interfaces (GGIs) to mimic the effect of the rotating runner. The delayed detached-eddy simulation method, conjugated with the Spalart-Allmaras turbulence model (DDES-SA), is applied to achieve a deep insight about the ability of this advanced modeling technique and the physics of the flow. The RNG k - epsilon model is also used to represent state-of-the-art of industrial turbulence modeling. Both models predict the mean velocity reasonably well while DDES-SA presents more realistic flow features at the highest and lowest rotational speeds. The highest level of turbulence occurs at the highest and lowest rotational speeds which DDES-SA is able to predict well in the conical diffuser. The special shape of the blade plays more prominent role at lower rotational speeds and creates coherent structures with opposite sign of vorticity. The vortex rope is captured by both turbulence models while DDES-SA presents more realistic one at higher rotational speeds.
机译:对旋流装置中产生的流动不稳定性进行了实验和数值研究。涡流装置具有两部分:涡流发生器和测试部分。涡流发生器包括两排叶片,其中一排是静止的,一排是旋转的,其设计使得自由流道转速下的射流类似于部分排放时运行的弗朗西斯水轮机的射流。测试部分包括一个圆锥形的扩散器,该扩散器类似于弗朗西斯涡轮机的引流管锥。产生了几种涡流状态,并沿着测试部分中的三个测量轴针对不同的转轮转速(400-920 rpm)以恒定的流量30 l / s进行了激光多普勒风速测量(LDA)测量。测量的平均速度分量及其波动部分用于验证使用FOAM-EXTEND-3.0 CFD代码进行的非稳态数值模拟的结果。此外,将引流管中两个位置处测得的平均相压力与数值模拟相比较。动态网格与滑动通用网格接口(GGI)一起使用,以模拟旋转流道的效果。应用与Spalart-Allmaras湍流模型(DDES-SA)共轭的延迟分离涡模拟方法,可以深入了解这种先进的建模技术的能力和流动的物理性质。 RNG k-epsilon模型还用于表示最新的工业湍流建模。两种模型均能很好地预测平均速度,而DDES-SA在最高和最低转速下表现出更真实的流动特征。最高湍流发生在DDES-SA能够在锥形扩散器中很好地预测的最高和最低转速。叶片的特殊形状在较低的转速下起着更重要的作用,并产生具有相反涡度迹象的连贯结构。两种湍流模型都捕获了涡流绳,而DDES-SA在更高的转速下表现出了更逼真的涡流绳。

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