纵向涡驱动圆柱叶片风力机的研制

K. Sakamoto, Keita Udaka, Withun Hemsuwan, Tsutomu Takahashi
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引用次数: 1

摘要

已知纵向涡交替周期性地在由上游筒体与下游带板组成的十字形系统的上游筒体对角向后形成,并对上游筒体产生强烈的周期性升力。我们有了一个新的概念,在上游气缸与带板之间的间隙处,在固定位置稳定地形成纵向涡,并对上游气缸产生稳定的升力。利用这一概念设计了一种新型的风力涡轮机,它有一个圆柱形叶片,由纵向涡驱动。在本研究中,烟风洞的流动显示证实了数值分析预测的纵向涡的产生。旋涡的横截面尺寸取决于圆柱叶片的直径,增加叶片数量对旋涡的横截面尺寸影响不大。测量了作用在圆柱叶片上的定常升力,考察了由主流流速决定的相对攻角与圆柱叶片在横流方向上的运动速度之间的关系。在圆柱和带材板之间的一个小间隙处,流体力起到减少移动的作用。当气缸直径的归一化间隙大于0.35时,流体力使气缸在较小的相对攻角区域加速更快。对圆柱叶片风力机的性能特性进行了评价,结果表明其与阻力型风力机具有相似的特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of circular cylinder blade wind turbine driven by longitudinal vortex
It is known that the longitudinal vortex alternately and periodically forms diagonally backward of the upstream cylinder of the cruciform system consisted of the upstream cylinder and the downstream strip-plate and causes the strong periodic lift force on the upstream cylinder. We have had a new concept to form a longitudinal vortex steadily at a fixed position, in where the gap between the upstream cylinder and the strip-plate, and it generates a steady lift force on the upstream cylinder. A new wind turbine, which has a circular cylinder blade and is driven by the longitudinal vortex, has been designed by this concept. In this study, the flow-visualization by the smoke-wind tunnel confirms the generation of the longitudinal vortex that was predicted by the numerical analysis. The cross-sectional size of the vortex depends on the diameter of the circular cylinder blade and increasing the number of blades does not affect its size strongly. The steady lift force acting on the circular cylinder blade was measured and the relationship with the relative attack angle which is determined by the mainstream flow velocity and the moving velocity of the cylinder blade in crossflow direction was examined. At a small gap between the circular cylinder and the strip-plate, the fluid force acts to reduce the move. When the normalized gap by the cylinder diameter is larger than 0.35, the fluid force causes to accelerate the cylinder faster in the small relative attack angle region. The performance characteristics of the cylinder blade wind turbine were evaluated and they show the similar characteristics to the drag type wind turbine.
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