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上游扰动条件下尾水管涡带演化和压力脉动研究 被引量:8
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作者 郭涛 徐李辉 罗竹梅 《农业机械学报》 EI CAS CSCD 北大核心 2022年第6期192-201,共10页
尾水管涡带是混流式水轮机流动不稳定的表征,严重时甚至会导致机组疲劳破坏。为准确捕捉不同工况下尾水管内流体流动的瞬态湍流特性,采用滑移网格技术以及SST kω湍流模型,通过现阶段最新进展的Liutex涡识别方法对尾水管涡带进行捕捉并... 尾水管涡带是混流式水轮机流动不稳定的表征,严重时甚至会导致机组疲劳破坏。为准确捕捉不同工况下尾水管内流体流动的瞬态湍流特性,采用滑移网格技术以及SST kω湍流模型,通过现阶段最新进展的Liutex涡识别方法对尾水管涡带进行捕捉并对比分析,着重分析了不同来流对尾水管涡带的形成、发展、破裂和低频压力脉动的影响。结果表明:与文献实验结果的对比,验证了结果的准确性;上游不同来流条件下,尾水管涡带形态各异。最优工况时仅形成一个稳定的旋流结构,即纺锤形涡带,对流场影响较小。流量降低到设计流量的81%时,形成螺旋形涡带,涡带的偏心运动对主流产生了较大干扰作用,涡流、回流和流动分离等不稳定现象明显。由于涡带对主流的排挤作用,造成涡带与壁面之间出现明显的高速区,平均脉动压力系数幅值也比最优工况增加了1.36~4倍,压力脉动呈现出典型的低频、高幅特征;随着开度的继续降低,涡带体积大幅度增加,形成一个较大的空腔涡带,占据流域范围较广,与肘管壁面发生直接“冲击现象”;开度越小尾水管内产生的涡流越杂乱,流场越不稳定,当开度降至最低时,有形涡带消失,破碎后的杂涡充据着整个直锥段和弯肘段。 展开更多
关键词 混流式水轮机 尾水管涡带 上游扰动 压力脉动
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Nitrogen budget in the Changjiang River drainage area 被引量:1
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作者 江涛 俞志明 +1 位作者 宋秀贤 曹西华 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2012年第4期654-667,共14页
We established a budget model of nitrogen (N) inputs and outputs between watersheds and waterbodies to determine the sources of riverine N in the Changjiang (Yangtze) River drainage area. Nitrogen inputs in the bu... We established a budget model of nitrogen (N) inputs and outputs between watersheds and waterbodies to determine the sources of riverine N in the Changjiang (Yangtze) River drainage area. Nitrogen inputs in the budget included N from synthetic fertilizer, biological fixation by leguminous and other crops, wet/dry atmospheric deposition, excreta from humans and animals, and crop residues. The total N input was estimated to be 17.6 Tg, of which 20% or 3.5 Tg N was transported into waterbodies. Of the total N transported into waterbodies, the largest proportion was N from animal waste (26%), followed by N from atmospheric wet/dry deposition (25%), synthetic fertilizer N (17%), N in sewage wastes (17%), N in human waste from rural areas (6%) and industrial wastewater N (9%). We studied the spatial patterns of N inputs and outputs by dividing the Changjiang River drainage area into four sub-basins, from upstream to downstream: the Tongtian River drainage area (TTD, the headwater drainage area, 138 000 l^n2, less disturbed by human activities); the Jinsha River drainage area (JSD, 347 000 km2, less disturbed by human activities, approx. 3 500 km upstream of the Changjiang estuary); the Pingshan-Yichang drainage area (PYD, 520 500 krn2, large-scale human disturbance, about 2 000 km upstream of the Changjiang estuary); and the Yichang-Datong drainage area (YDD, 699 900 km^2, large-scale httman disturbance, approx. 620 km upstream of the Changjiang estuary). The average N input into waterbodies was 2.3, 7.3, 24.1, and 28.2 kg N/ha in the TTD, JSD, PYD, and YDD sub-basins, respectively, suggesting an increase of N-components of more than 10 times from upstream to downstream areas. 展开更多
关键词 nitrogen budget EUTROPHICATION Changjiang (Yangtze) River drainage area riverine nitrogen transport
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