叶片形状和数量对多叶片闭式脉冲风力机性能影响的数值方法

H. Sasongko, H. Mirmanto, G. Bangga, E. F. Nugrahani, Johan Nicholas Pasaribu
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引用次数: 0

摘要

脉冲涡轮利用叶片上的阻力在转子上产生扭矩。当流体流过叶片时,喷嘴处的压力会发生变化,这增加了流体的速度,降低了喷嘴出口的静压。然后,高动量流体撞击转子叶片,产生摩擦力并产生扭矩。为了研究叶片形状和叶片数量对涡轮性能的影响,进行了数值模拟。结果表明:叶片倾角为0°和180°时,在叶片凹表面产生高压涡的效果最佳;此外,更多的叶片总是通过增加叶片的有效面积而导致更高的扭矩和功率输出。然而,在0°和180°角度的情况下,8个叶片产生的扭矩比12个0°和90°角度的叶片产生的扭矩大。因此,角度为0°和180°的叶片在产生阻力和产生扭矩方面非常有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NUMERICAL APPROACH OF THE BLADE SHAPE AND NUMBER ON THE PERFORMANCE OF MULTIPLE BLADE CLOSED TYPE IMPULSE WIND TURBINE
An impulse turbine uses drag force on its blades to produce torque on its rotor. As fluid flows over the blades, pressure changes occur at the nozzle, which increases the fluid's velocity and reduces the static pressure at the nozzle outlet. The high-momentum fluid then impinges on the rotor blades, generating frictional force and resulting in torque production. To study the impact of blade shape and number on the turbine's performance, simulations were conducted. The results indicate that blades with an angle of 0° and 180° are optimal for creating high-pressure vortices on the concave surface of the blade. Addition-ally, more blades always result in higher torque and power out-put by increasing the active area of the blades. However, in the case of blades with an angle of 0° and 180°, 8 blades produced more torque than 12 blades with an angle of 0° and 90°. There-fore, blades with an angle of 0° and 180° are highly effective at generating drag force and producing torque.
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