Lee Seongkyu, Lee Dongjai, Honhoff Saskia
Department of Mechanical and Aerospace Engineering, University of California, Davis, Davis, California 95616, USA.
Renewable Engineering-Aero and Acoustics, General Electric Power & Water, Greenville, South Carolina 12309, USA.
J Acoust Soc Am. 2016 Aug;140(2):767. doi: 10.1121/1.4958996.
Sound propagation of wind farms is typically simulated by the use of engineering tools that are neglecting some atmospheric conditions and terrain effects. Wind and temperature profiles, however, can affect the propagation of sound and thus the perceived sound in the far field. A better understanding and application of those effects would allow a more optimized farm operation towards meeting noise regulations and optimizing energy yield. This paper presents the parabolic equation (PE) model development for accurate wind turbine noise propagation. The model is validated against analytic solutions for a uniform sound speed profile, benchmark problems for nonuniform sound speed profiles, and field sound test data for real environmental acoustics. It is shown that PE provides good agreement with the measured data, except upwind propagation cases in which turbulence scattering is important. Finally, the PE model uses computational fluid dynamics results as input to accurately predict sound propagation for complex flows such as wake flows. It is demonstrated that wake flows significantly modify the sound propagation characteristics.
风电场的声音传播通常使用忽略一些大气条件和地形影响的工程工具进行模拟。然而,风和温度剖面会影响声音的传播,进而影响远场中的感知声音。更好地理解和应用这些影响将有助于更优化风电场运营,以满足噪声法规并优化能源产量。本文介绍了用于精确模拟风力涡轮机噪声传播的抛物方程(PE)模型的开发。该模型针对均匀声速剖面的解析解、非均匀声速剖面的基准问题以及实际环境声学的现场声音测试数据进行了验证。结果表明,除了湍流散射很重要的逆风传播情况外,PE模型与测量数据具有良好的一致性。最后,PE模型使用计算流体动力学结果作为输入,以准确预测诸如尾流等复杂流场中的声音传播。结果表明,尾流会显著改变声音传播特性。