低水头潮汐水轮机的研制

Q3 Engineering International Marine Energy Journal Pub Date : 2018-11-01 DOI:10.36688/imej.1.81-90
S. Hötzl, T. Schechtl, P. Rutschmann, W. Knapp
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引用次数: 0

摘要

最近的研究表明,在潮汐拦河坝发电厂中,需要四象限涡轮机才能实现最大的净发电量。这些涡轮机可以在两个流动方向上发电,并且能够抽水。欧洲之星安全海岸研究项目正在审查一种创新的涡轮机概念。该项目建议在可逆气缸中安装一台涡轮机,以实现四象限运行。为了评估这一概念的可行性,作者借助CFD模拟设计了一种紧凑型低水头轴向潮汐涡轮机。本文介绍了涡轮设计和优化过程中使用的方法。它还描述了数值获得的涡轮机特性和空化极限。涡轮机最关键的要求包括涡轮机和泵送模式的高效率以及安全的空化特性。通过计算涡轮级的稳态CFD模拟,分析了大量的几何形状。作者通过调整子午截面、转轮叶片和导叶轮廓和角度以及其他相关参数来优化涡轮机性能。为了研究瞬态效应,对整个装置进行了瞬态模拟,包括入口和尾水管的几何形状。优化后的最终设计是一个带可调节导叶和轮缘发电机的三叶轴流涡轮机。涡轮机对称的入口和出口几何形状及其相对紧凑性使其能够集成在可逆气缸中。仿真结果是非常积极的,表明所有相关的设计标准都得到了满足。因此,该项目将继续进入一个新阶段,在该阶段,将建立涡轮机模型进行物理测试,以验证结果并进行进一步调查。
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Development of a low head tidal turbine
Recent research has shown that four-quadrant turbines are required to achieve maximum net energy production in a tidal barrage plant. These turbines can generate electricity in both flow directions and are capable of pumping. An innovative turbine concept is being reviewed in the course of the Eurostars research project Safe*Coast. This project proposes to install a turbine in a reversible cylinder in order to allow for fourquadrant operation. To evaluate the feasibility of the concept, the authors designed a compact low head axial tidal turbine with the aid of CFD simulations. This paper presents the methods used in the design and optimization process of the turbine. It also describes numerically obtained turbine characteristics, and cavitation limits. The most critical requirements of the turbine include high efficiency in turbine and pumping mode and safe cavitation properties. By computing steady state CFD simulations of the turbine stage, an extensive set of geometries was analyzed. The authors optimized the turbine performance by adjusting the meridional section, as well as runner blade and guide vane profiles and angles along with other related parameters. Transient simulations of the whole setup, including the inlet and draft tube geometries, were performed in order to study transient effects. The final design after optimization is a three bladed axial turbine with adjustable guide vanes and a rim generator. The turbine’s symmetrical inlet and outlet geometry and its relative compactness permit its integration in a reversible cylinder. The simulation results are very positive and indicate that all the relevant design criteria are satisfied. As a result, the project will continue into a new phase in which a model of the turbine will be built for physical testing in order to verify the results and to conduct further investigations.
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来源期刊
International Marine Energy Journal
International Marine Energy Journal Engineering-Ocean Engineering
CiteScore
1.70
自引率
0.00%
发文量
24
审稿时长
12 weeks
期刊最新文献
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