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Adaptive Neuro-Fuzzy Methodology for Noise Assessment of Wind Turbine

机译:自适应神经模糊方法在风机噪声评估中的应用

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摘要

Wind turbine noise is one of the major obstacles for the widespread use of wind energy. Noise tone can greatly increase the annoyance factor and the negative impact on human health. Noise annoyance caused by wind turbines has become an emerging problem in recent years, due to the rapid increase in number of wind turbines, triggered by sustainable energy goals set forward at the national and international level. Up to now, not all aspects of the generation, propagation and perception of wind turbine noise are well understood. For a modern large wind turbine, aerodynamic noise from the blades is generally considered to be the dominant noise source, provided that mechanical noise is adequately eliminated. The sources of aerodynamic noise can be divided into tonal noise, inflow turbulence noise, and airfoil self-noise. Many analytical and experimental acoustical studies performed the wind turbines. Since the wind turbine noise level analyzing by numerical methods or computational fluid dynamics (CFD) could be very challenging and time consuming, soft computing techniques are preferred. To estimate noise level of wind turbine, this paper constructed a process which simulates the wind turbine noise levels in regard to wind speed and sound frequency with adaptive neuro-fuzzy inference system (ANFIS). This intelligent estimator is implemented using Matlab/Simulink and the performances are investigated. The simulation results presented in this paper show the effectiveness of the developed method.
机译:风力涡轮机噪声是广泛使用风能的主要障碍之一。噪音会大大增加烦人因素,并对人体健康产生负面影响。近年来,由于在国家和国际层面制定的可持续能源目标引发的风力涡轮机数量迅速增加,风力涡轮机引起的噪音烦恼已成为一个新兴问题。到目前为止,尚未完全了解风力涡轮机噪声的产生,传播和感知的所有方面。对于现代大型风力涡轮机,只要充分消除了机械噪声,通常认为来自叶片的空气动力噪声是主要的噪声源。空气动力学噪声的来源可分为音调噪声,入流湍流噪声和机翼自噪声。风力涡轮机进行了许多分析和实验声学研究。由于通过数值方法或计算流体动力学(CFD)进行分析的风力涡轮机噪声水平可能非常具有挑战性且耗时,因此首选软计算技术。为了估计风力涡轮机的噪声水平,本文构建了一个过程,该过程使用自适应神经模糊推理系统(ANFIS)对风速和声频进行模拟。该智能估计器是使用Matlab / Simulink实现的,并对性能进行了研究。本文给出的仿真结果证明了该方法的有效性。

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