唤醒
涡轮机
空气动力学
上游(联网)
流入
海洋工程
机械
涡轮叶片
流量(数学)
刀(考古)
计算流体力学
地质学
串联
风洞
动态模态分解
下游(制造业)
尾流紊流
结构工程
航空航天工程
执行机构
风力发电
环境科学
叶片单元理论
基线(sea)
空气动力
拍打
振动
湍流动能
前沿
雷诺平均Navier-Stokes方程
剪切(地质)
叶片节距
物理
上游和下游(DNA)
作者
Guodan Dong,Xiaolei Yang
标识
DOI:10.1017/jfm.2026.11891
摘要
This study investigates the impacts of blade aerodynamic design, specifically the spanwise distribution of axial force, on the wake dynamics in tandem turbine configurations. Using large-eddy simulations with actuator surface models, we analyse five tandem set-ups comprising three blade designs: a baseline (NREL-Ori), a root-loaded (NREL-Root) and a tip-loaded (NREL-Tip) variant. Two scenarios are examined: one varying the downstream design with a baseline upstream turbine (scenario I), and another varying the upstream design with a baseline downstream turbine (scenario II). Results show that blade designs significantly affect wake behaviours in both scenarios. In scenario I, the root-loaded design exhibits a larger near-wake velocity deficit but recovers faster due to intensified shear layer instability, which is similar to that observed for a stand-alone turbine. In scenario II, the upstream blade design significantly influences the downstream turbine, with the root-loaded design prematurely triggering wake meandering and accelerating downstream flow recovery. Energy spectra and spectral proper orthogonal decomposition reveal a frequency-selection mechanism linking the strength of the near-wake shear layer, which can be controlled by blade design and inflow structure, to wake evolution. Specifically, the downstream wake resonates with the upstream wake, particularly at the meandering frequency. These resonant behaviours are qualitatively similar across the considered two-turbine configurations. However, the onset location and the intensity of such behaviours depend on the blade designs and their streamwise arrangement. These findings highlight the possibility of optimising blade designs for improving turbine array performance.
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