首页> 外文期刊>Ecological engineering: The Journal of Ecotechnology >Downstream fish passage guide walls: A hydraulic scale model analysis
【24h】

Downstream fish passage guide walls: A hydraulic scale model analysis

机译:下游鱼通道导墙:液压尺度模型分析

获取原文
获取原文并翻译 | 示例
           

摘要

Partial-depth guide walls are used to improve passage efficiency and reduce the delay of out-migrating anadromous fish species by guiding fish to a bypass route (i.e. weir, pipe, sluice gate) that circumvents the turbine intakes, where survival is usually lower. Evaluation and monitoring studies, however, indicate a high propensity for some fish to pass underneath, rather than along, the guide walls, compromising their effectiveness. In the present study we evaluated a range of guide wall structures to identify where/if the flow field shifts from sweeping (i.e. flow direction primarily along the wall and towards the bypass) to downward-dominant. Many migratory fish species, particularly juveniles, are known to drift with the flow and/or exhibit rheotactic behaviour during their migration. When these behaviours are present, fish follow the path of the flow field. Hence, maintaining a strong sweeping velocity in relation to the downward velocity along a guide wall is essential to successful fish guidance. Nine experiments were conducted to measure the three-dimensional velocity components upstream of a scale model guide wall set at a wide range of depths and angles to flow. Results demonstrated how each guide wall configuration affected the three-dimensional velocity components, and hence the downward and sweeping velocity, along the full length of the guide wall. In general, the velocities produced in the scale model were sweeping dominant near the water surface and either downward dominant or close to the transitional depth near the bottom of the guide wall. The primary exception to this shift from sweeping do downward flow was for the minimum guide wall angle tested in this study (15 degrees). At 15 degrees the flow pattern was fully sweeping dominant for every cross-section, indicating that a guide wall with a relatively small angle may be more likely to produce conditions favorable to efficient guidance. A critical next step is to evaluate the behaviour of migratory fish as they approach and swim along a guide wall in a controlled laboratory environment.
机译:部分深度引导壁用于提高通道效率,并通过将鱼引导到旁路路线(即Weir,Pipe,Sluice Gate)来降低绕过涡轮机进口的绕道延迟,其中存活率通常更低。然而,评估和监测研究表明,对于某些鱼来说,在下面的情况下,而不是沿着导向墙,损害其有效性的高倾向。在本研究中,我们评估了一系列引导壁结构,以识别流场从扫描(即,主要沿着墙壁的流动方向和旁路)转换到向下显性。许多候鱼类,特别是少年,众所周知,在迁移过程中漂移流动和/或表现出形术行为。当存在这些行为时,鱼沿流场的路径遵循。因此,保持与导向墙的向下速度相关的强烈扫描速度对成功的鱼类引导至关重要。进行九个实验以测量在宽范围的深度和角度的尺度模型引导壁上游上游的三维速度分量。结果证明了每个导向墙体配置如何影响三维速度分量,从而影响沿着引导墙的全长向下和扫速。通常,规模模型中产生的速度在水面附近扫描,靠近导墙底部附近的过渡深度或靠近过渡深度。从扫描到向下流动的主要例外是在本研究中测试的最小导向壁角(15度)。在15度下,流动模式对每个横截面完全扫过显性,表明具有相对小的角度的引导壁可以更容易产生有利于有效引导的条件。关键的下一步是评估迁徙鱼类的行为,因为它们在受控实验室环境中沿着导向墙进行沿着导向墙进行游泳。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号