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AIR TURBINE AND PRIMARY CONVERTER MATCHING IN SPAR-BUOY OSCILLATING WATER COLUMN WAVE ENERGY DEVICE

机译:SPAR-BUOY振荡水柱波能量装置中的涡轮和主变流器匹配

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The oscillating water column (OWC) equipped with an air turbine is possibly the most reliable type of wave energy converter. The OWC spar-buoy is a simple concept for a floating OWC. It is an axisymmetric device (and so insensitive to wave direction) consisting basically of a (relatively long) submerged vertical tail tube open at both ends and fixed to a floater that moves essentially in heave. The air flow displaced by the motion of the OWC inner free-surface, relative to the buoy, drives an air turbine. The choice of air turbine type and size, the regulation of the turbine rotational speed and the rated power of the electrical equipment strongly affect the power performance of the device and also the equipment's capital cost. Here, numerical procedures and results are presented for the power output from turbines of different sizes equipping a given OWC spar-buoy in a given offshore wave climate, the rotational speed being optimized for each of the sea states that, together with their frequency of occurrence, characterize the wave climate. The new biradial self-rectifying air turbine was chosen as appropriate to the relatively large amplitude of the pressure oscillations in the OWC air chamber. Since the turbine is strongly non-linear and a fully-nonlinear model of air compressibility was adopted, a time domain analyais was required. The boundary-element numerical code WAMIT was used to obtain the hydrodynamic coefficients of the buoy and OWC, whereas the non-dimensional performance curves of the turbine were obtained from model testing.
机译:配备有空气涡轮机的振荡水柱(OWC)可能是最可靠的波能转换器。 OWC浮标是浮式OWC的简单概念。它是一种轴对称设备(对波浪方向不敏感),基本上由一个(相对长的)浸入水中的垂直尾管组成,该垂直尾管的两端均敞开,并固定在一个基本起伏运动的浮子上。由于OWC内部自由表面相对于浮标的运动而移位的气流驱动了空气涡轮机。空气涡轮机类型和尺寸的选择,涡轮机转速的调节以及电气设备的额定功率会极大地影响设备的功率性能以及设备的投资成本。在此,给出了在给定的近海波浪气候下,配备给定的OWC晶石浮标的不同尺寸涡轮机的功率输出的数值程序和结果,针对每种海况及其发生频率对转速进行了优化,表征海浪气候。选择新的双径向自整流式空气涡轮机以适合OWC气室中压力振荡的相对较大幅度。由于涡轮机是强非线性的,并且采用了空气压缩的完全非线性模型,因此需要时域分析。使用边界元数字WAMIT来获得浮标和OWC的流体力学系数,而涡轮机的无量纲性能曲线是通过模型测试获得的。

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