Numerical aided design of Pelton nozzle jet deflector

A. Lipej, B. Popovski
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引用次数: 1

Abstract

Hydro energy still occupies an important place among renewable energy sources. In special operating conditions, Pelton turbines are irreplaceable and can be used for extremely small hydropower plants and also large hydro power plants. Pelton turbines can operate with high head and relatively small flow rates. In many cases, the height differences of the water are very large. Sometimes it is necessary to stop the operation of the turbine very quickly and the consequences of water hammer can be very severe. The responsible part to minimize the consequences of this phenomena is jet deflector, which can be in two different technical designs. The steps for 3-D geometry definition, pre-processing and post-processing, flow modelling and FEM analysis are presented. In the paper is presented the new optimized design of push-out jet deflector shape. Optimization consider 3-D CFD analysis of free surface flow and stress analysis. The main goal of the research was to minimize the influence of all force components on the torque of deflector servomotor. The final results present the geometry of the deflector, with a significant reduction in the stresses and deformations. These have been achieved with a crucial reduction in the hydrodynamic force and torque.
佩尔顿喷嘴射流偏转板的数值辅助设计
水能在可再生能源中仍占有重要地位。在特殊工况下,佩尔顿水轮机是不可替代的,既可用于极小的水电站,也可用于大型水电站。佩尔顿涡轮机可以运行高水头和相对较小的流量。在许多情况下,水的高度差非常大。有时需要非常迅速地停止水轮机的运行,水锤的后果可能非常严重。负责减少这种现象的后果的部分是射流偏转器,它可以在两种不同的技术设计中。给出了三维几何定义、预处理和后处理、流动建模和有限元分析的步骤。本文提出了一种新的推力射流偏转板形状优化设计方法。优化考虑了三维CFD自由表面流动分析和应力分析。研究的主要目标是尽量减少各力分量对偏转器伺服电机转矩的影响。最后的结果显示了偏转板的几何形状,在应力和变形方面有了显著的减少。这些都是通过减少水动力和扭矩来实现的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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