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Acoustic tomography of temperature and wind flow fields in a wind power plant

机译:风力发电厂中温度和风流场的声层析成像

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Wind power is one of the fastest growing forms of electric power in recent years. However, wind power is inherently subject to weather conditions and very often unstable. It is therefore highly desirable to predict wind speed as accurately and quickly as possible. Among various wind power prediction methods, Physics-based prediction is a relatively new method that requires substantial research work to overcome major difficulties in computational cost and so on. This paper describes a method using acoustic travel-time tomography to simultaneously reconstruct the flow and temperature in a wind field. An algorithm which uses spatial-temporal covariance functions of environment turbulence is used in the specific inverse problem. It allows incorporating tomographic data obtained at different times to estimate the state of the propagation medium. Numerical experiment is carried out in a 2D domain of a wind power plant, which obtains a detailed reconstructed result. It shows that acoustic travel-time tomography is applicable and may become a new approach in wind speed prediction.
机译:风力发电是近年来发展最快的电力形式之一。然而,风力固有地受天气条件的影响并且经常不稳定。因此,非常希望尽可能准确和快速地预测风速。在各种风能预测方法中,基于物理的预测是一种相对较新的方法,需要大量的研究工作来克服计算成本等方面的主要困难。本文介绍了一种使用声波传播时间层析成像技术来同时重建风场中的流量和温度的方法。在特定的反问题中使用了一种使用环境湍流的时空协方差函数的算法。它允许合并在不同时间获得的断层图像数据,以估计传播介质的状态。在风力发电厂的二维区域内进行了数值实验,获得了详细的重建结果。结果表明,声波传播时间层析成像技术是适用的,可能成为风速预测的一种新方法。

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