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A Low-Order Model for Offshore Floating Vertical Axis Wind Turbine Aerodynamics

机译:海上浮式垂直轴风力机空气动力学的低阶模型

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摘要

Vertical-axis wind turbines (VAWTs) are an attractive economical solution for a deep offshore floating application with their inherent desirable design characteristics. A low-order model is described in this paper that can be utilized for the aerodynamic modeling of these turbines. The cascade model is employed and has been coupled with a dynamic stall model to account for unsteady aerodynamic effects. To provide enhanced numerical efficiency and stability, an iterative time-advancement scheme with an adaptive under-relaxation has been integrated into the developed model. The model's predictive accuracy has been assessed against applicable experimental data in simulating a VAWT's aerodynamics at high Reynolds numbers. A quantitative comparative study shows that the model produced an average normalized root mean square error of 0.106 and 0.288 for the VAWT's normal and tangential force coefficients, respectively. It has been established also that the model's computational requirement is reasonably low and suitable for the industrial design of offshore floating VAWTs.
机译:垂直轴风力涡轮机(VAWT)具有固有的理想设计特性,对于深海海上浮动应用而言是一种有吸引力的经济解决方案。本文描述了一个低阶模型,该模型可用于这些涡轮的空气动力学建模。采用了级联模型,并已将其与动态失速模型结合,以解决不稳定的空气动力学影响。为了提供增强的数值效率和稳定性,已将具有自适应欠松弛的迭代时间提前方案集成到开发的模型中。在模拟高雷诺数下的VAWT空气动力学时,已根据适用的实验数据对模型的预测精度进行了评估。定量比较研究表明,对于VAWT的法向力和切向力系数,该模型分别产生0.106和0.288的平均归一化均方根误差。还已经确定该模型的计算要求相当低,并且适合于海上浮动VAWT的工业设计。

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