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水平轴潮流水轮机转轮尾流特性数值分析 被引量:6

Numerical Analysis of Wake Performance of Horizontal-axis Tidal Current Turbine
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摘要 针对潮流水轮机转轮尾流对机组之间水力性能的干扰问题,利用CFD分析软件Fluent对单个水平轴潮流水轮机转轮模型和10倍转轮直径间距下的两台机组模型在额定流速条件下进行三维流场的数值模拟。结果表明,在水轮机转轮旋转平面内不同半径位置处的尾流流速恢复情况明显不同,离旋转轴线越远,尾流流速恢复越快,其流速亏损也越少;当水轮机组之间串列布置,且来流方向与旋转平面垂直情况下,下游机组运行受上游机组转轮的尾流影响较大,应尽量避免该布置方式。 Aiming at the interference of the hydraulic performance between horizontal-axis tidal current turbine run- ners, three-dimensional flow-fields at the condition of rated flow velocity are numerically simulated by using CFD soft ware FLUENT, which includes single horizontal-axis tidal current turbine runner model and two blade runners model spaced between ten times runner diameter. The results show that at different radius position of the turbine runner's rota- tion plane, the velocity recovery situation of the runner's flow-field wake is obviously different; the tidal velocity in the wake recovers quickly at the position farther away from the rotation axis; when turbines are arranged in tandem and the plane of rotation is perpendicular to the flow direction, the downstream unit operation is greatly affected by the flow-field of wake of upstream unit runner; so, it should be avoided this arrangement manner.
出处 《水电能源科学》 北大核心 2013年第10期149-151,共3页 Water Resources and Power
基金 国家自然科学基金资助重点项目(51137002) 江苏省基础研究计划重点研究专项基金资助项目(bk2011026) 国家高技术研究发展计划(863计划)基金资助项目(2009AA05Z429)
关键词 潮流水轮机 尾流流场 流速恢复 数值模拟 tidal current turbine flow-field of wake velocity recovery numerical simulation
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  • 1张亮,孙科,罗庆杰.潮流水轮机导流罩的水动力设计[J].哈尔滨工程大学学报,2007,28(7):734-737. 被引量:25
  • 2纪兵兵,陈金瓶.ANSYSICEMCFD网格划分技术实例详解[M].北京:中国水利水电出版社.2012,206-243. 被引量:50
  • 3王晓航.潮流能水平轴叶轮设计与性能预测方法研究[D].哈尔滨:哈尔滨工程大学船舶工程学院,2011. 被引量:2
  • 4LEE J H , PARK S, KIM D H, et al. Computational meth- ods for performance analysis of horizontal axis tidal stream turbines[ J]. Applied Energy, 2012,98 : 512-523. 被引量:1
  • 5BATYEN W, BAHAJ A S, MOLLAND A F, et al. The pre- diction of the hydrodynamic performance of marine current turbines[J~. Renewable Energy, 2008, 33(5) : 1085-1096. 被引量:1
  • 6LI Y, CAHSAL S M. A discrete vortex method for simulating a stand-alone tidal-current turbine: modeling and validation [ J]. Journal of Offshore Mechanics and Arctic Engineering, 2010, 132(3): 1-9. 被引量:1
  • 7CHOI H J, ZULLAH M A, ROH H W, et al. CFD validation of performance improvement of a 500 kW Francis turbine [J]. Renewable Energy, 2013, 54(SI) : 111-123. 被引量:1
  • 8BAHAJ A S, MOLLAND A F, CHAPLINJ R, et al. Power and thrust measurements of marine current turbines under va- rious hydrodynamic flow conditions in a cavitation tunnel and a towing tank [ J ]. Renewable Energy, 2007, 32 (3) : 407- 426. 被引量:1
  • 9MYERS L E, BAHAJ A S. Experimental analysis of the flow field around horizontal axis tidal turbines by use of scale mesh disk rotor simulators [J].Oeean Engineering, 2010, 37 : 218-227. 被引量:1
  • 10Chul-Hee Jo, Jun-Ho Lee, Yu-Ho Rho, et al. Performance analysis of a HAT tidal current turbine and wake flow characteristics [J]. Renewable Energy, 2014, 65: 175-182. 被引量:1

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