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Numerical Performance Assessment of a Flapping-Type Vertical Axis Wind Turbine with Chebyshev-Dyad Linkage

机译:Chebyshev-Dyad连杆机构拍击式垂直轴风力发电机的数值性能评估

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In order to harness wind energy with high coefficients, horizontal axis wind turbines (HAWT), like propeller-type wind turbines, have an advantage in terms of practical utilization because of their scale merit. However, large size and high tip-speed ratio are inherently related to material strength problems and low frequency noise emissions to the environment. In contrast to HAWT, we will discuss a flapping-type turbine driven at low speed. The flapping turbine works using lift force like the HAWT, but employs a new wind turbine concept in the present report. The concept involves the unique flapping motion of a wind blade mounted on a Chebyshev-dyad linkage by which the wing transforms wind energy into mechanical rotation. Both static and dynamic numerical estimates are developed to optimize all fundamental parameters of this linkage in order to obtain the desired torque. In this paper, the results of primitive optimization for determining the fundamental characteristics of motion and the trajectory of the wind turbine blade are demonstrated in order to obtain smooth rotation of the generator-driving shaft. It is also shown that the present turbine can be driven at low speed with a suitable energy conversion rate. Moreover, the practicality of operating slow flapping-type wind turbines is demonstrated, focusing on usage near residential areas or, e.g., on rooftops owing to lower noise. The feasibility of “figure eight” trajectory diversity is discussed along with geometrical parameters. Assuming one-blade motion with a variable trajectory for optimization, the smooth motion and required torque at slow rotation speeds are studied.
机译:为了利用高系数的风能,像螺旋桨式风力涡轮机一样,水平轴风力涡轮机(HAWT)由于具有规模优势而在实际使用方面具有优势。然而,大尺寸和高叶尖速比与材料强度问题和向环境的低频噪声排放本质上相关。与HAWT相比,我们将讨论低速驱动的风门式涡轮机。拍打式涡轮机使用类似于HAWT的升力进行工作,但在本报告中采用了新的风力涡轮机概念。该概念涉及安装在Chebyshev-dyad连杆上的风叶的独特拍打运动,机翼通过该扇叶将风能转换为机械旋转。开发了静态和动态数值估计,以优化此连杆机构的所有基本参数,以获得所需的扭矩。在本文中,为了确定发电机驱动轴的平稳旋转,对用于确定运动基本特性和风力涡轮机叶片轨迹的原始优化结果进行了演示。还显示出,本涡轮机可以合适的能量转化率低速驱动。此外,展示了运行慢拍动型风力涡轮机的实用性,其集中在居民区附近或由于较低噪音而在屋顶上使用。讨论了“八字”轨迹分集的可行性以及几何参数。假定具有可变轨迹的单叶片运动进行优化,研究了慢速运动下的平稳运动和所需转矩。

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