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Design of a Throttled Surge Tank for Refurbishment by Increase of Installed Capacity at a High-Head Power Plant

机译:通过增加高水头电厂的装机容量设计翻新的节流调压罐

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摘要

The Swiss confederation aims to phase out nuclear power production with its Energy Strategy 2050 program by increasing the renewable energy contribution to its overall energy generation. Hydroelectricity, which is the most important form of renewable energy in Switzerland, supplying almost 60% of the electricity in 2015, should increase its production capacity to achieve this goal. The case study presented in this paper focuses on the replacement of the third turbine in the Gondo high-head power plant with a turbine with a higher discharge capacity. The results of one-dimensional (1D) numerical simulations shown that throttling the surge tank is an efficient measure to adapt the existing hydraulic system for the increased discharge. Physical-scale modeling was performed to validate the design of the grid throttle placed at the bottom of the lower chamber of the existing surge tank. The grid throttle geometry and its head losses are compared with two existing similar throttles in Switzerland. Finally, prototype tests of the temporal evolution of water levels in the surge tank using the throttle coefficients obtained experimentally showed good agreement. Hybrid modeling using a combination of 1D numerical models, three-dimensional (3D) physical models, and prototype tests are highly recommended for checking the transient performance of the waterway after a refurbishment of turbines with increased design discharge. Furthermore, placing a throttle at the bottom of an existing surge tank is often an effective and economical solution in the case of small increases in installed capacity. (C) 2017 American Society of Civil Engineers.
机译:瑞士联邦旨在通过增加2050年能源战略计划中的可再生能源对整个能源生产的贡献来逐步淘汰核电生产。水力发电是瑞士最重要的可再生能源形式,2015年将提供近60%的电力,应提高其生产能力以实现这一目标。本文介绍的案例研究着重于用具有更高排气量的涡轮机替换贡多高水头电厂中的第三台涡轮机。一维(1D)数值模拟的结果表明,对调压罐进行节流是使现有液压系统适应增加排放量的有效措施。进行了物理比例建模,以验证放置在现有调压罐下部腔室底部的栅格节气门的设计。将格栅节气门的几何形状及其压头损失与瑞士现有的两个类似节气门进行了比较。最后,使用实验获得的节流系数对调压罐中水位的时间演变进行原型测试,显示出很好的一致性。强烈建议使用结合一维数值模型,三维(3D)物理模型和原型测试的混合模型来检查翻新水轮机后水道的瞬态性能,并增加设计流量。此外,在安装容量少量增加的情况下,将节流阀放置在现有调压罐的底部通常是一种有效且经济的解决方案。 (C)2017年美国土木工程师学会。

著录项

  • 来源
    《Journal of Hydraulic Engineering》 |2018年第2期|05017004.1-05017004.10|共10页
  • 作者单位

    Ecole Polytech Fed Lausanne, Lab Construct Hydraul, Stn 18, CH-1015 Lausanne, Switzerland;

    Ecole Polytech Fed Lausanne, Lab Construct Hydraul, Stn 18, CH-1015 Lausanne, Switzerland;

    Power Vis Engn Sarl, Chemin Champs Courbes 1, CH-1024 Ecublens, Switzerland;

    IUB Engn AG, Belpstr 48, CH-3000 Bern, Switzerland;

    IM Maggia Engn AG, Via Stefano Franscini 5,Casella Postale 46, CH-6601 Locarno, Switzerland;

    Alpiq Holding SA, Chemin Mornex 10, CH-1003 Lausanne, Switzerland;

    Ecole Polytech Fed Lausanne, Lab Construct Hydraul, Stn 18, CH-1015 Lausanne, Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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