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Development of performance specifications for hybrid modeling of floating wind turbines in wave basin tests

机译:波浪盆地浮动风力涡轮机混合建模性能规范的开发

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AbstractHybrid modeling—combining physical testing and numerical simulation in real time—opens new opportunities in floating wind turbine research. Wave basin testing is an important validation step for floating support structure design, but the conventional approaches that use physical wind above the basin are limited by scaling problems in the aerodynamics. Applying wind turbine loads with an actuation system that is controlled by a simulation responding to the basin test in real time offers a way to avoid scaling problems and reduce cost barriers for floating wind turbine design validation in realistic coupled wind and wave conditions. This paper demonstrates the development of performance specifications for a system that couples a wave basin experiment with a wind turbine simulation. Two different points for the hybrid coupling are considered: the tower-base interface and the aero-rotor interface (the boundary between aerodynamics and the rotor structure). Analyzing simulations of three floating wind turbine designs across seven load cases reveals the motion and force requirements of the coupling system. By simulating errors in the hybrid coupling system, the sensitivity of the floating wind turbine response to coupling quality can be quantified. The sensitivity results can then be used to determine tolerances for motion tracking errors, force actuation errors, bandwidth limitations, and latency in the hybrid coupling system. These tolerances can guide the design of hybrid coupling systems to achieve desired levels of accuracy. An example demonstrates how the developed methods can be used to generate performance specifications for a system at 1:50 scale. Results show that sensitivities vary significantly between support structure designs and that coupling at the aero-rotor interface has less stringent requirements than those for coupling at the tower base. The methods and results presented here can inform design of future hybrid coupling systems and enhance understanding of how test results are affected by hybrid coupling quality.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>混合建模 - 组合物理测试和数值模拟时间 - 在浮动风力涡轮机研究中开启新的机遇。波浪盆地测试是用于浮动支持结构设计的重要验证步骤,但是通过在空气动力学中的缩放问题中,使用盆地上方的物理风的传统方法。用致动系统应用风力涡轮机负载,该致动系统是实时响应盆地测试的响应提供了一种方法来避免缩放问题并降低浮动风力涡轮机设计验证的成本障碍,在现实的耦合风和波条件下进行浮动风力涡轮机设计验证。本文展示了对具有风力涡轮机模拟的波盆实验的系统的性能规范的开发。考虑了混合耦合的两个不同点:塔基界面和航空转子接口(空气动力学和转子结构之间的边界)。分析七种负载箱中三个浮动风力涡轮机设计的模拟,揭示了耦合系统的运动和力要求。通过模拟混合耦合系统中的误差,可以量化浮动风力涡轮机对耦合质量的响应的灵敏度。然后可以使用灵敏度结果来确定混合耦合系统中的运动跟踪误差,强制致动误差,带宽限制和等待时间的公差。这些公差可以指导混合耦合系统的设计,以达到所需的精度水平。一个示例演示了开发的方法如何用于在1:50刻度为系统生成性能规范。结果表明,敏感性在支撑结构设计之间显着变化,并且航空转子界面的耦合具有比塔底座在塔架上的耦合不太严格的要求。这里提出的方法和结果可以为未来的混合耦合系统提供信息,并增强了解测试结果如何受混合耦合质量的影响。 ]]>

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