Comparative Analysis of Diffusers for Micro Wind Turbine

Roshan Kumar Chhetri, Dilip Bhattarai Upadhyay, Niraj R. Ghimire
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Abstract

With the increase in demand for clean energy, a micro wind turbine would be the best option for remote and urban residential areas. Installing wind turbines is not feasible in most land areas due to low or inadequate wind speed. The energy generated by the wind turbine is directly proportional to the cube of wind velocity. So, if we manage to increase wind speed slightly, it would increase energy significantly. One approach to solving problems in areas with low wind speed is using Diffuser Augmented Wind Turbine (DAWT). In DAWT, the turbine blades are typically surrounded by a duct which increases the cross-sectional area in the stream-wise direction. Since a diffuser encloses the wind turbine, the pressure behind the turbine will drop, which results in an increasing wind velocity. Different types of diffusers have been introduced to increase wind velocity. The main aim of the research is to perform a comparative analysis of four different types of diffusers to increase the power output of wind turbines. The CFD simulation of Plain Diffuser, Plain Diffuser with Inlet Shroud, Flanged Diffuser, and Flanged Diffuser with Inlet Shroud is performed to determine the maximum velocity each diffuser produced. With the solution from the simulation, a comparative analysis of each diffuser is conducted, and the results are further verified with the previous studies on DWAT. And Flanged Diffuser is found to be optimum with an increase in power generation up to 3.6 times compared to a bare wind turbine.
微型风力机扩散器的比较分析
随着对清洁能源需求的增加,微型风力涡轮机将是偏远和城市居民区的最佳选择。由于风速低或风速不足,在大多数陆地地区安装风力涡轮机是不可行的。风力发电机产生的能量与风速的立方成正比。所以,如果我们设法稍微增加风速,就会显著增加能量。解决低风速地区问题的一种方法是采用扩压增强型风力涡轮机(DAWT)。在DAWT中,涡轮叶片通常被一个管道包围,这增加了在流向上的横截面积。由于扩散器包围了风力涡轮机,涡轮机后面的压力会下降,从而导致风速增加。引入了不同类型的扩散器来增加风速。该研究的主要目的是对四种不同类型的扩散器进行比较分析,以增加风力涡轮机的功率输出。对平面扩压器、带进口叶冠的平面扩压器、法兰扩压器和带进口叶冠的法兰扩压器进行了CFD仿真,确定了各扩压器产生的最大速度。利用仿真得到的解,对各扩散器进行了对比分析,并与前人在DWAT上的研究结果进行了进一步验证。而法兰扩散器是最佳的,与裸风力涡轮机相比,其发电量增加了3.6倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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