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A high-fidelity wave-to-wire simulation platform for wave energy converters: Coupled numerical wave tank and power take-off models

机译:适用于波能转换器的高保真线对线仿真平台:耦合的数值波箱和取力器模型

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摘要

Performing rigorous technical and commercial assessment of wave energy converters (WECs) numerically, before engaging in expensive wave tank and open ocean tests, is vital for the economically successful development of prototypes. To that end, this paper presents a high-fidelity wave-to-wire simulation platform (theHiFiWEC), where a Computational Fluid Dynamics (CFD)-based numerical wave tank is coupled to a high-fidelity power take-off (PTO) model, which enables assessment of WEC performance with greater accuracy than with previous wave-to-wire approaches. A test case, simulating the performance of a heaving point absorber type WEC in realistic conditions, is presented and compared against traditional lower fidelity modelling methods. The WEC response is evaluated with a number of different approaches, including different techniques to model hydrodynamic wave-structure interactions and the power take-off system, and the benefits of theHiFiWECare highlighted. The results highlight that excessive simplifications in the modelling of the PTO system can lead to significant overestimation in generated energy output, with relative deviations (∊) of up to 150% compared to theHiFiWEC. In addition, uncertainty in viscous drag parameters added to hydrodynamic models based on boundary element method solvers, reinforce the necessity of CFD-based models for applications where high-fidelity is essential. Finally, it is demonstrated that minor/insignificant inaccuracies in the hydrodynamic model (∊=0.5%) can result in significant differences in the estimation of the final energy generation (∊=7%), highlighting the need for a coupled high-fidelity platform.
机译:在进行昂贵的波浪罐和远洋测试之前,必须对波浪能转换器(WEC)进行数字化的严格技术和商业评估,这对于原型机的经济成功开发至关重要。为此,本文提出了一种高保真波到线模拟平台(theHiFiWEC),其中基于计算流体动力学(CFD)的数值波箱与高保真取力器(PTO)模型耦合,与以前的线对线方法相比,它可以更准确地评估WEC性能。提出了一个测试案例,该案例模拟了在现实条件下的WEC垂点吸收器的性能,并与传统的低保真度建模方法进行了比较。 WEC响应通过多种不同的方法进行评估,包括使用不同的技术来模拟流体动力波结构相互作用和动力输出系统,并着重强调了HiFiWEC的优势。结果表明,PTO系统建模中的过度简化会导致发电能量输出的过高估计,与HiFiWEC相比,相对偏差(∊)高达150%。此外,基于边界元法求解器的流体动力学模型中增加的粘性阻力参数的不确定性,进一步增强了基于CFD的模型在高保真度至关重要的应用中的必要性。最后,证明了流体动力模型中的微小/微不足道的误差(∊ = 0.5%)会导致最终发电量的估计存在显着差异(∊ = 7%),这凸显了对耦合高保真平台的需求。

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