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Numerical Investigation of a Darrieus Rotor for Low-head Hydropower Generation

机译:达里厄斯低头水轮发电机转子的数值研究

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The aim of this paper is to numerically investigate the performance of a cross-flow water turbine of the Darrieus type for very low head hydropower applications. The interest for this kind of vertical axis turbine relies on its versa- tility. For instance, in the field of renewable energy, this kind of turbine may be considered for different applications, such as: tidal power, run-of-the-river hydroelectricity, wave energy conversion. Until now, low head hydropower, with heads less than 2 meters, has remained scarcely developed due to the relatively low energy density, which makes the cost of generation higher than traditional hydropower applications. However, in the spirit of distributed generation, the use of low head hydropower can be reconsidered, having the advantage of lower electricity transmission losses due to the localization near the consuming area. Nonetheless, it is fundamental to improve the turbine performance and to decrease the equipment costs for achievement of “environmental friendly” solutions and maximization of the “cost-advantage”. In the present work, the commercial CFD code Fluent is used to perform 2D simulations, solving the incompressible Unsteady Reynolds-Averaged Navier-Stokes (U-RANS) equations discretized by means of a fi- nite volume approach. The implicit segregated version of the solver is employed. The pressure-velocity coupling is achieved by means of the SIMPLE algorithm. The convective terms are discretized using a second order accurate up- wind scheme, and pressure and viscous terms are discretized by a second-order-accurate centered scheme. A second order implicit time formulation is also used. Turbulence closure is provided by the realizable k? [turbulence model. The model has been validated, comparing numerical results with available experimental data.
机译:本文的目的是通过数值研究Darrieus型横流水轮机在极低水头水电应用中的性能。这种垂直轴涡轮机的兴趣在于其多功能性。例如,在可再生能源领域,可以考虑将这种涡轮机用于不同的应用,例如:潮汐发电,沿河水电,波浪能转换。到目前为止,由于能量密度相对较低,水头小于2米的低水头水力发电几乎没有得到发展,这使得发电成本高于传统水电应用。然而,本着分布式发电的精神,可以重新考虑使用低水头水力发电,其优点是由于位于消费区附近,因此降低了输电损耗。尽管如此,提高涡轮机性能并降低设备成本对于实现“环境友好”解决方案和最大化“成本优势”至关重要。在目前的工作中,商用CFD代码Fluent用于执行2D模拟,以有限体积法求解离散的不可压缩的非稳态雷诺平均Navier-Stokes(U-RANS)方程。使用求解器的隐式隔离版本。压力-速度耦合是通过SIMPLE算法实现的。对流项使用二阶精确逆风方案离散,压力和粘性项通过二阶精确居中方案离散。还使用了二阶隐式时间公式。湍流闭合是由可实现的k?提供的。 [湍流模型。该模型已经过验证,将数值结果与可用的实验数据进行了比较。

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