采用欧拉-拉格朗日方法分析高水头佩尔顿涡轮喷射器中的水磨侵蚀问题

IF 1.2 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Navam Shrivastava, A. Rai, Ali Abbas, Yexiang Xiao
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引用次数: 0

摘要

高水头水电站采用 Pelton 水轮机来利用能源;然而,由于悬浮沉积物的存在,水轮机部件面临着严重的磨蚀。Pelton 喷射器的侵蚀会导致喷射质量下降,从而大大降低水轮机的效率。最近,对喷射器内部伺服电机设计的侵蚀进行了数值研究,但并未探讨气蚀-侵蚀协同作用。本研究作为文献的延伸,分析了高水头水电站(HPP)带有外部伺服电机的喷油器中的水磨侵蚀和气蚀的发生。采用欧拉-拉格朗日方法研究了沉积物特性和水流参数对水力侵蚀的影响;而采用 Schnerr-Sauer 模型分析了气蚀的产生。有趣的是,粒径从 40 微米增加到 200 微米,针状侵蚀减少了 95.7%,但喷嘴侵蚀却增加了两倍。当设备扬程从 200 米增加到 820 米时,喷嘴和针的侵蚀率分别增加了 4.36 倍和 1.4 倍。此外,随着水力发电厂水头的增加,佩尔顿喷射器发生气蚀的可能性也会增加,导致喷射器更容易受到气蚀和水磨侵蚀的协同作用的影响。本研究试图帮助具有高泥沙流量风险的高水头地区的水电开发,并对现有电站进行有效管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of hydro-abrasive erosion in a high-head Pelton turbine injector using a Eulerian-Lagrangian approach
High-head hydropower plants deploy Pelton turbines to harness energy; however, turbine components face severe abrasive erosion due to suspended sediments. The erosion of the Pelton injector leads to the degradation of the jet quality, reducing the turbine efficiency considerably. Recently, the erosion of an internal servomotor design of the injector has been studied numerically; however, the cavitation-erosion synergy was not explored. This study serves as the extension of the literature with an analysis of the hydro-abrasive erosion and inception of cavitation in an injector with an external servomotor of a high-head hydropower plant (HPP). A Eulerian-Lagrangian approach is used to study the effects of sediment properties and flow parameters on hydro-abrasive erosion; whereas, the Schnerr-Sauer model is used to analyze the inception of cavitation. Interestingly, an increase in particle size from 40 microns to 200 microns resulted in a 95.7% reduction in needle erosion; but, led to a two-fold increase in nozzle erosion. For an increase in the plant head from 200 m to 820 m, the increase in erosion rate of the nozzle and the needle is 4.36 and 1.4 times, respectively. Moreover, the possibility of cavitation in the Pelton injector also increases with an increase in the head of the HPP leading the injector to higher susceptibility to the synergic effect of cavitation and hydro-abrasive erosion. This study attempts to assist the hydropower development in high-head regions with a risk of high sediment flow and manage the existing plants efficiently.
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来源期刊
CiteScore
3.30
自引率
5.90%
发文量
114
审稿时长
5.4 months
期刊介绍: The Journal of Power and Energy, Part A of the Proceedings of the Institution of Mechanical Engineers, is dedicated to publishing peer-reviewed papers of high scientific quality on all aspects of the technology of energy conversion systems.
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