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Increasing the operational capability of a horizontal axis wind turbine by its integration with a vertical axis wind turbine

机译:通过与垂直轴风力发电机集成来提高水平轴风力发电机的运行能力

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A major difficulty encountered by a horizontal axis wind turbine is the limit of aerodynamic torque that it can withstand at high wind speeds. A novel strategy is proposed to improve the operational capability of a prototype scale system by increasing its rated wind speed for power generation. This is achieved by integrating its drivetrain with that of a vertical axis wind turbine supported on a common tower. Excess torque is transferred from the horizontal axis rotor to the vertical axis rotor's drivetrain by coupling them using a continuously variable transmission. In this article, firstly, the concepts of motion transfer that facilitate this combined operation are discussed. A combination of a 12-kW horizontal axis rotor and a 10-kW vertical axis wind turbine is studied to estimate the increased benefit of increments in rated wind speed. Performance of this hybrid system is predicted at potential wind sites and is shown to exceed the standalone mechanical power output of both subsystems under different wind regimes. The critical criterion of the system's aerodynamic feasibility is then investigated, Turbulence modelling is performed for a configuration which involves a combination of the NREL Phase VI rotor and a NACA 0021 profiled vertical axis H-rotor. A 3-D simulation, using a validated k-co (Shear Stress Transport) computational fluid dynamics model helps confirm the ability of both turbines to operate aerodynamically independent of each other. Further, by this methodology, a safe clearance between the two rotors is pre-determined. Analysis of turbulent flow scenarios reveals the characteristic effects of aerodynamic torque ripple experienced by the vertical axis wind turbine and its impact on combined power output. Parameters outlined in this article will be of assistance in the practical implementation of the integrated axes wind turbine. (C) 2017 Elsevier Ltd. All rights reserved.
机译:水平轴风力涡轮机遇到的主要困难是其在高风速下可以承受的空气动力扭矩的限制。提出了一种新颖的策略来通过增加其额定风速来发电来提高原型系统的运行能力。这是通过将其传动系统与支撑在普通塔架上的垂直轴风力涡轮机的传动系统集成在一起来实现的。通过使用无级变速器将它们耦合,多余的扭矩从水平轴转子传递到垂直轴转子的传动系统。在本文中,首先,讨论了促进这种组合操作的运动传递的概念。研究了12千瓦水平轴转子和10千瓦垂直轴风力涡轮机的组合,以估算额定风速增加带来的好处。可以在潜在的风场预测该混合系统的性能,并证明其在不同风况下将超过两个子系统的独立机械功率输出。然后研究了系统空气动力学可行性的关键标准,对一种配置进行了湍流建模,该配置涉及NREL Phase VI转子和NACA 0021轮廓垂直轴H转子的组合。使用经过验证的k-co(剪切应力传输)计算流体动力学模型进行的3-D模拟有助于确认两个涡轮机在空气动力学方面彼此独立运行的能力。此外,通过该方法,预定了两个转子之间的安全间隙。对湍流情况的分析揭示了垂直轴风力涡轮机经历的气动转矩脉动的特征效应及其对组合功率输出的影响。本文概述的参数将有助于集成轴风力发电机的实际实施。 (C)2017 Elsevier Ltd.保留所有权利。

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