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Fish passage hydrodynamics: insights into overcoming migration challenges for small-bodied fish

机译:鱼类通过流体动力学:洞察小鱼克服迁徙挑战

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The modification and utilization of rivers in regions where small-bodied diadromous fish are prevalent has largely occurred without fully understanding the migration behaviour of these species. As a result, existing in-stream structures often prevent or restrict migration. Current fish passage design guidance generally focuses on providing average hydrodynamic conditions within the range of known critical swimming velocities for target fish species. Considerable portions of discharge capacity must be sacrificed to achieve average cross-sectional water velocities that will allow passage of weak swimmers. Furthermore, because the hydrodynamic requirements for small-bodied species are poorly understood, successful passage is still not guaranteed even when average hydrodynamic design criteria are met. Ethohydraulic research is focused on how water flow influences fish behaviour and vice versa, by studying the interaction of fish with small-scale in-flow characteristics. We discuss how an ethohydraulic approach may improve fish passage design for small-bodied fish, such as Inanga/common galaxias (Galaxias maculatus), a widespread diadromous Southern Hemisphere species. The ethohydraulic approach is discussed in detail for culverts, a commonly found structure known to impede fish passage for many small-bodied species.
机译:在没有充分了解这些鱼类的迁移行为的情况下,大部分发生了小体鱼类的河流对河流的改造和利用。结果,现有的流内结构通常会阻止或限制迁移。当前的鱼类通过设计指南通常着重于为目标鱼类提供已知的临界游泳速度范围内的平均水动力条件。必须牺牲相当大一部分的排放能力,以实现平均横截面水速,以允许弱泳者通过。此外,由于对小体物种的水动力要求了解得很少,因此即使满足平均水动力设计标准,仍不能保证成功通过。通过研究鱼类与小规模入流特征的相互作用,水力学研究集中于水流如何影响鱼类行为,反之亦然。我们讨论了一种水力学方法如何改善小体鱼的鱼道设计,例如Inanga /常见的Galaxias(Galaxias maculatus),这是南半球的一种广泛分布的缺水物种。对涵洞进行了详细的水力法探讨,涵洞是一种常见的结构,已知会阻碍许多小体鱼类的通过。

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