采用共流射流主动流量控制的高效风力发电机组

Kewei Xu, Gecheng Zha
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引用次数: 5

摘要

本文将共流射流(CFJ)主动流控翼型应用于NREL水平轴风力机,以提高输出功率。CFJ是一种零净质量通量的主动流动控制方法,能以较低的能量消耗显著提高翼型升力系数,抑制流动分离。采用单方程Spalart-Allmaras (SA)湍流模型求解三维Reynolds平均Navier-Stokes (RANS)方程,模拟风力机的三维流动。基线风力机为NREL 10.06m直径的六期风力机,通过沿跨实施CFJ,将其修改为CFJ叶片。在7m/s、15m/s、25m/s三种风速下,通过实验验证风力机的基线性能。预测的叶片表面压力分布和输出功率与实验结果吻合较好。研究表明,当迎角增大到常规风力机的失速水平时,CFJ可以提高输出功率。在7米/秒的速度下,NREL涡轮在俯仰角为3°时达到最佳效率,CFJ涡轮没有增加功率输出。当俯仰角减小13°至- 10°时,基线风力机熄火,以7m/s的速度产生负输出功率。但假设在相同风速下,CFJ风机效率为80%,则CFJ风机的输出功率增加了12.3%。这是一种在任何速度下都能从风中获取更多能量的有效方法。它在低速时特别有用,可以在不超过结构限制的情况下降低切割速度和增加功率输出。在自由流速度为15m/s, CFJ动量系数为0.23时,假设CFJ风机效率为80%,由于消除了流动分离,净输出功率比基线风机增加了207.7%。CFJ风力涡轮机似乎为风力涡轮机效率提高和最佳负荷自适应控制开辟了一个新的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High Efficiency Wind Turbine Using Co-Flow Jet Active Flow Control
This paper applies Co-flow Jet (CFJ) active flow control airfoil to a NREL horizontal axis wind turbine for power output improvement. CFJ is a zero-net-mass-flux active flow control method that dramatically increases airfoil lift coefficient and suppresses flow separation at a low energy expenditure. The 3D Reynolds Averaged Navier-Stokes (RANS) equations with one-equation Spalart-Allmaras (SA) turbulence model are solved to simulate the 3D flows of the wind turbines. The baseline wind turbine is the NREL 10.06m diameter phase VI wind turbine and is modified to a CFJ blade by implementing CFJ along the span. The baseline wind turbine performance is validated with the experiment at three wind speeds, 7m/s, 15m/s, and 25m/s. The predicted blade surface pressure distributions and power output agree well with the experimental measurements. The study indicates that the CFJ can enhance the power output at the condition where angle of attack is increased to the level that conventional wind turbine is stalled. At the speed of 7m/s that the NREL turbine is designed to achieve the optimum efficiency at the pitch angle of 3°, the CFJ turbine does not increase the power output. When the pitch angle is reduced by 13° to −10°, the baseline wind turbine is stalled and generates negative power output at 7m/s. But the CFJ wind turbine increases the power output by 12.3% assuming CFJ fan efficiency of 80% at the same wind speed. This is an effective method to extract more power from the wind at all speeds. It is particularly useful at low speeds to decrease cut-in speed and increase power output without exceeding the structure limit. At the freestream velocity of 15m/s and the CFJ momentum coefficient Cμ of 0.23, the net power output is increased by 207.7% assuming the CFJ fan efficiency of 80%, compared to the baseline wind turbine due to the removal of flow separation. The CFJ wind turbine appears to open a door to a new area of wind turbine efficiency improvement and adaptive control for optimal loading.
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