Parametric Investigation of Pelton Turbine Injector under Hydro-abrasive Erosion Conditions

IF 1.1 4区 工程技术 Q4 MECHANICS Journal of Applied Fluid Mechanics Pub Date : 2024-01-01 DOI:10.47176/jafm.17.1.2126
†. N.Shrivastava, A. Rai
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Abstract

In high-head Pelton turbines, the injector faces severe erosion due to suspended sediment leading to a reduction in turbine efficiency and higher maintenance costs. Here, the effects of design parameters such as the bend angle of the nozzle pipe, nozzle angle, and needle angle along with an operating parameter stroke ratio on hydro-abrasive erosion of Pelton turbine injector are numerically investigated. The Volume of Fluid (VOF) model was implemented for capturing the interphase between air and water; whereas, the SST k-ω model is used for modelling the turbulence effect. For tracking the discrete phase, a Eulerian-Lagrangian based Discrete Phase Model (DPM) is considered. The bend angles led to flow circulations in the nozzle pipe causing the non-uniform distribution of sediment concentration and uneven erosion patterns. Irrespective of the bend angle, the erosion hotspot in the needle is observed toward the bend side. Further, for larger sediment particles, higher bend angles lead to more erosion rate in both the nozzle and needle and must be avoided to prevent excessive damage. As the needle angle increases from 40° to 60° for a constant nozzle angle, the nozzle erosion rate increases by 70% and the needle erosion rate decreases by 99%. Hence, an injector design can be optimized in hydro-abrasive erosion conditions by selecting a needle angle between 40° and 60°. Further, the operation of the injector at too high and low a stroke ratio results in excessive erosion of the nozzle and needle, respectively. In this study, a stroke ratio of 0.45 is found to be the most suitable for hydro-abrasive erosion conditions. Moreover, the asymmetricity in the erosion pattern of the needle increases with needle angle and stroke ratio resulting in jet quality degradation, one major reason for efficiency reduction in Pelton turbines.
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水力侵蚀条件下的佩尔顿涡轮喷油器参数研究
在高水头的 Pelton 涡轮机中,喷油器面临着悬浮泥沙的严重侵蚀,导致涡轮机效率降低和维护成本上升。在此,我们对喷嘴管弯曲角度、喷嘴角度、喷针角度等设计参数以及冲程比等运行参数对 Pelton 水轮机喷油器水磨侵蚀的影响进行了数值研究。流体体积(VOF)模型用于捕捉空气和水之间的相位;SST k-ω 模型用于模拟湍流效应。为跟踪离散相,考虑了基于欧拉-拉格朗日的离散相模型(DPM)。弯曲角度导致喷嘴管道内的流动循环,造成沉积物浓度分布不均匀和侵蚀模式不均匀。无论弯曲角度如何,都可以观察到针头中的侵蚀热点朝向弯曲一侧。此外,对于较大的沉积物颗粒,较高的弯曲角度会导致喷嘴和针管的侵蚀率增加,必须避免,以防止过度损坏。在喷嘴角度不变的情况下,当针头角度从 40° 增大到 60° 时,喷嘴的侵蚀率增加了 70%,而针头的侵蚀率降低了 99%。因此,在水磨侵蚀条件下,可通过选择 40° 至 60° 的喷针角度来优化喷油器设计。此外,喷油器在过高和过低的冲程比下运行分别会导致喷嘴和喷针的过度侵蚀。本研究发现,0.45 的冲程比最适合水磨侵蚀条件。此外,喷针侵蚀模式的不对称会随着喷针角度和冲程比的增大而增加,导致喷射质量下降,这也是 Pelton 涡轮机效率降低的一个主要原因。
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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来源期刊
Journal of Applied Fluid Mechanics
Journal of Applied Fluid Mechanics THERMODYNAMICS-MECHANICS
CiteScore
2.00
自引率
20.00%
发文量
138
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Fluid Mechanics (JAFM) is an international, peer-reviewed journal which covers a wide range of theoretical, numerical and experimental aspects in fluid mechanics. The emphasis is on the applications in different engineering fields rather than on pure mathematical or physical aspects in fluid mechanics. Although many high quality journals pertaining to different aspects of fluid mechanics presently exist, research in the field is rapidly escalating. The motivation for this new fluid mechanics journal is driven by the following points: (1) there is a need to have an e-journal accessible to all fluid mechanics researchers, (2) scientists from third- world countries need a venue that does not incur publication costs, (3) quality papers deserve rapid and fast publication through an efficient peer review process, and (4) an outlet is needed for rapid dissemination of fluid mechanics conferences held in Asian countries. Pertaining to this latter point, there presently exist some excellent conferences devoted to the promotion of fluid mechanics in the region such as the Asian Congress of Fluid Mechanics which began in 1980 and nominally takes place in one of the Asian countries every two years. We hope that the proposed journal provides and additional impetus for promoting applied fluids research and associated activities in this continent. The journal is under the umbrella of the Physics Society of Iran with the collaboration of Isfahan University of Technology (IUT) .
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