耦合固定式单桩的OWC装置水动力性能研究

    Study on Hydrodynamic Performances of a Fixed Single-Pile and Coupled OWC Device

    • 摘要: 近海固定式海上风机基础,多采用大直径单桩钢管,对其进行合理改造可作为振荡水柱式(Oscillating Water Column, OWC)波浪能发电装置的捕能气室。本文提出了一种将固定式单桩基础与OWC装置耦合的结构方案,即在单桩基础的水下合理位置开孔,水面以上加装导流管道、空气透平及出气管道,从而形成内置式OWC装置。由于本文只研究OWC装置的一级能量转换过程,所以不考虑空气透平及发电机等后端设备,仅用气孔来代替后端设备所产生的压降作用。为揭示新型OWC装置的获能机理,通过数值模拟计算,研究了方形、椭圆形、圆形三种开孔形状,开孔吃水深度d/h为0.13、0.27、0.40和0.53四种情况,以及开孔大小s/Sc为0.054和0.042两种条件下影响OWC装置水动力性能的3个主要因素。结果表明,当气室开孔型式为方形,d/h=0.13,s/Sc=0.054时,气室的捕获宽度比ξ最佳,ξ最大可达0.23。

       

      Abstract: A large-diameter and single-pile steel pipe is mostly used for the foundation of fixed offshore wind turbine. By reasonable modification, the single-pile steel pipe can be used as an energy capture chamber for Oscillating Water Column (OWC) wave energy converter. In this study a structural scheme of coupling the fixed single-pile foundation with the OWC device is proposed, which includes opening holes at reasonable positions of the underwater part of the single-pile foundation and installing diversion ducts, air turbines and vent pipes at the overwater portion of the foundation, thus forming an embedded OWC device. Because only the first-order energy conversion process in the OWC device is studied, the role of the back-end equipment like air turbines and generators is not considered, and instead, the vents are used for simulating the pressure drop produced by these back-end devices. In order to reveal the energy capture mechanism of the novel OWC device, the hydrodynamic performances of the OWC device under the cases of three types of open holes, i.e. square, elliptical and circular open holes and under the conditions of four kinds of open hole submergence depth ratios (d/h), i.e. d/h=0.13, 0.27, 0.40 and 0.53 and two kinds of hole opening degrees (s/Sc), i.e. s/Sc=0.054 and 0.042 are investigated through numerical simullation. The results indicate that the square open hole with a submergence depth ratio (d/h) of 0.13 and a hole opening degree (s/Sc ) of 0.054 can offer an optimal capture width ratio (ξ), reaching up to 0.23.

       

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