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首页> 外文期刊>Reviews in Fish Biology and Fisheries >A fish-eye view of riverine hydropower systems: the current understanding of the biological response to turbine passage
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A fish-eye view of riverine hydropower systems: the current understanding of the biological response to turbine passage

机译:河流水电系统的鱼眼图:当前对涡轮机通道生物响应的理解

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摘要

One-way connectivity maintained by fish passing through hydropower turbines in fragmented rivers can be important to population dynamics, but can also introduce a new and significant source of mortality. Sources of mortality during turbine passage can come from several sources including blade strike, shear forces, cavitation, or pressure decreases and parsing the contributions of these individual forces is important for advancing and deploying turbines that minimize these impacts to fishes. We used a national hydropower database and conducted a systematic review of the literature to accomplish three goals: (1) report on the spatial distribution of turbine types and generation capacities in the USA, (2) determine fish mortality rates among turbine types and fish species and (3) examine relationships between physical forces similar to those encountered during fish turbine passage and fish injury and mortality. We found that while Francis turbines generate 56 % of all US hydropower and have the highest associated fish mortality of any turbine type, these turbines are proportionally understudied compared to less-common and less injury-associated Kaplan turbines, particularly in the Pacific Northwest. While juvenile salmonid species in actual or simulated Kaplan turbine conditions were the most commonly studied, the highest mortality rates were reported from percid fishes passing through Francis turbines. Future studies should focus on understanding which species are most at-risk to turbine passage injury and mortality and, subsequently, increasing the diversity of taxonomy and turbine types in evaluations of turbine injury and mortality.
机译:鱼在支离破碎的河流中流经水力涡轮机而维持的单向连通性对种群动态很重要,但也可能带来新的重要死亡率来源。涡轮机通过过程中的死亡原因可能来自多种因素,包括叶片撞击,剪切力,气蚀或压力降低,解析这些单独的作用力对于推进和部署涡轮机至关重要,以尽量减少对鱼类的影响。我们使用了国家水电数据库,并对文献进行了系统回顾,以实现三个目标:(1)报告美国涡轮机类型和发电量的空间分布,(2)确定涡轮机类型和鱼类中的鱼类死亡率(3)研究类似于在鱼轮机通过过程中遇到的物理力与鱼的伤害和死亡率之间的关系。我们发现,虽然弗朗西斯式涡轮机发电量占美国所有水力发电量的56%,并且在任何类型的涡轮机中鱼类死亡率最高,但与较少见且与伤害相关性较低的Kaplan涡轮机相比,这些涡轮机的比例研究不足,尤其是在西北太平洋地区。虽然最常研究实际或模拟的Kaplan涡轮机条件下的幼鲑鱼种,但据报道,通过混流式涡轮机的鲈鱼的死亡率最高。未来的研究应着重于了解哪些物种最容易受到涡轮机通道损伤和死亡的威胁,并随后在评估涡轮机损伤和死亡率时增加分类法和涡轮机类型的多样性。

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