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Experimental investigation of the power performance of a minimal wind turbine array in an atmospheric boundary layer wind tunnel

机译:大气边界层风洞中最小风力发电机组功率性能的实验研究

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Layout optimization is a critical step in constructing and operating wind power plants. The layout optimization strongly depends on the wake spatial evolution and on wake interactions within the wind farm. In this study, the power performance of a minimal wind turbine array was investigated in an atmospheric boundary layer wind tunnel. Five turbine configurations were tested in site-specific experiments: a single turbine, two aligned turbines, two misaligned turbines, three aligned turbines, and three misaligned turbines. Along with angular velocity and power measurements, a Constant Temperature Anemometer (CTA) cross-wire probe collected the downstream wake velocity data. The results show that the operating configuration of the upstream turbine significantly affects the power of the total wind turbine array, inducing the optimal tip speed ratios of the downstream turbines in the wake to decrease. To improve the power performance of the turbine array, introducing a spanwise offset is more beneficial than increasing the streamwise distance between turbines. The wake interaction between upstream turbines results in a larger wake expansion, leading to a reduction in the power produced by downstream turbines in the array. In addition, the most downstream turbine can be observed to have a better performance than its upstream turbine in an aligned three-turbine array. Balancing these effects is critical in the optimization strategy of wind farm layout.
机译:布局优化是建设和运营风力发电厂的关键步骤。布局优化在很大程度上取决于尾流空间的演变以及风电场内尾流的相互作用。在这项研究中,在大气边界层风洞中研究了最小风力涡轮机阵列的功率性能。在特定地点的实验中测试了五种涡轮机配置:单个涡轮机,两个对齐涡轮机,两个未对齐涡轮机,三个对齐涡轮机和三个未对齐涡轮机。除角速度和功率测量外,恒温风速计(CTA)跨线探针还收集了下游的唤醒速度数据。结果表明,上游涡轮机的运行配置会显着影响整个风力涡轮机阵列的功率,从而导致尾流中下游涡轮机的最佳叶尖速比降低。为了提高涡轮机阵列的功率性能,引入翼展方向的偏移比增加涡轮机之间的流向距离更有利。上游涡轮之间的尾流相互作用会导致较大的尾流膨胀,从而导致阵列中下游涡轮产生的功率降低。另外,在对准的三涡轮机阵列中,可以观察到最下游的涡轮机比其上游的涡轮机具有更好的性能。平衡这些影响对于风电场布局的优化策略至关重要。

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