在具有完全或部分翻转桶的滑雪跳跃溢流中产生TDG
Xiaolong Cheng1, Ran Li1, Jingjie Feng1
1State Key Laboratory of Hydraulics and Mountain River Engineering, Sichuan University, Chengdu, 610065, China.
Journal of environmental management
|February 2, 2024
概括
部分翻转桶分散水流,以获得更好的能量消耗. 然而,在高流速下,它比传统的完全翻转桶产生更多的溶解气体 (TDG),因此需要仔细考虑水溢流设计.
科学领域:
- 液压工程 液压工程是指水利工程.
- 环境工程环境工程
- 河流工程是河流工程.
背景情况:
- 滑雪跳跃溢流对于高至关重要,但水桶类型会影响喷气液压和空气引入.
- 没有先前的研究研究过溢出水桶类型对总溶解气体 (TDG) 生产的影响.
研究的目的:
- 为了比较传统的全翻转和部分翻转桶配置的液压特性和TDG质量转移.
- 评估溢出水桶设计对能源消耗和下游 TDG 和的影响.
主要方法:
- 使用两种桶类型,对正在建设中的液压项目进行比较分析.
- 在不同流速下测量TDG和和液压特性.
主要成果:
- 部分翻转桶显著分散流量并改善能量消耗.
- 在低流量 (<400 m3/s) 时,TDG和差异是最小的 (平均 1.6%).这是一个很好的例子.
- 在高流量 (>400 m3/s) 时,部分翻转水桶由于改变了水力动力学,与完全翻转水桶相比,增加了多达6.2%的TDG和度.
结论:
- 部分翻转桶可以提高能量消耗,但在高流量时可以增加TDG的产生.
- 当TDG控制在水下游至关重要时,需要仔细考虑部分翻转桶的使用.
- 溢出管设计选择显著影响能源消耗和环境参数,如TDG.
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