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Study of Wake Characteristics of a Horizontal-axis Wind Turbine within Two-Phase Flow

机译:两相流内水平轴风力机尾流特性研究

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The two-phase flow is addressed for the more accurate estimation of the wake characteristic for the horizontal-axis wind turbine operating in the complexly unsteady environmental states. The computational fluid dynamics (CFD) method is implemented for performing the three-dimensional wind turbine using the simulating software tool of FLUNT. Three types of environmental states, single-phase flow, liquid-gas flow and solid-gas flow, are performed for the comparison of velocity and pressure distribution to derive the specify feature for wind turbine within two-phase flow environmental state. The calculated results shows that there has the similar evolutional tendency of velocity distribution for both single- and two-phase flows and the velocity decrement at the distance of 20 meter away from wind turbine still reach to 80% of inflow speed. But the turbine blade within two-phase flow is subject to the unsteady flow with the larger velocity gradient compared with that within single-phase flow. For the static pressure, large difference occurred in these three types of environmental state reveals that the second material in addition to atmospheres causes the prominent influence of aerodynamic force and its power coefficient. The results exhibit that wind turbine within solid-gas flow has the largest power coefficient that those within the gas and liquid-gas flows.
机译:解决了两相流的问题,以便更精确地估算在复杂的非稳态环境状态下运行的水平轴风力涡轮机的尾流特性。使用FLUNT的模拟软件工具实现了计算流体动力学(CFD)方法,以执行三维风力涡轮机。为了比较速度和压力分布,进行了单相流,液-气流和固-气流三种环境状态的比较,得出了风力发电机在两相流环境状态下的特征。计算结果表明,单相流和两相流都具有相似的速度分布演变趋势,并且距风力涡轮机20米处的速度降幅仍达到流入速度的80%。但是,与单相流相比,两相流内的涡轮叶片会受到非恒定流的影响,且速度梯度较大。对于静压,在这三种类型的环境状态下发生的较大差异表明,除大气外,第二种材料还对空气动力及其功率系数产生了显着影响。结果表明,固体气体流中的风力涡轮机具有的功率系数是气体和液体气体流中的风力涡轮机的最大。

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