振荡水柱波能转换器静压特性的评价

E. A. Pinto, M. N. Gomes, L. Rocha, E. D. Santos, L. Isoldi
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引用次数: 0

摘要

不可再生资源短缺的国际情况加上不断增加的能源需求,促使世界能源矩阵多样化,重点放在可再生能源上。在这些能源中,来自海浪的能源尤其具有吸引力,因为其全球资源估计约为2太瓦,与全球每年消耗的平均电力相当。目前提出了几种将海浪能转化为电能的技术。其中最引人注目的是振荡水柱(OWC)转换器,它基本上由一个液压气室和一个安装了涡轮机的涡轮导管组成。它的腔室在海水自由表面以下打开,而涡轮风管出口自由进入大气。在腔室内,由入射波产生的水自由表面振荡运动导致空气流经涡轮导管并激活涡轮,因此OWC的工作原理可以近似为气缸-活塞系统。因此,计算建模中用于模拟该装置工作原理的方法之一是活塞法,该方法简化了仅考虑通过OWC转化器的气流的问题分析。在OWC装置内部发生的现象中,静压行为可以说是最重要的现象之一,因为通过静压行为可以估计液压气动功率和转换器效率。因此,这项工作的目的是通过在轴对称域中施加单色波边界条件,使用活塞方法来评估OWC内的静压行为。从得到的结果中可以推断,在这种情况下,静压直接取决于流动加速度,并且受面积变化区域内产生的涡量的强烈影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EVALUATION OF STATIC PRESSURE BEHAVIOR IN AN OSCILLATING WATER COLUMN WAVE ENERGY CONVERTER
The international scenario of non-renewable resources scarcity coupled with increasing energy demand are incentives for the diversification of the world's energy matrix with a focus on renewable energy sources. Among these sources, energy from sea waves is especially attractive because its global resource is estimated around 2 TW, comparable to the average electrical power consumed worldwide each year. There are currently several technologies proposed for the sea wave energy conversion into electricity. Among them it stands out the Oscillating Water Column (OWC) converter, which basically consists of a hydropneumatic chamber and a turbine duct where a turbine is installed. Its chamber is opened below the sea water free surface while the turbine duct outlet is free to atmosphere. Inside the chamber the water free surface oscillating movement produced by the incident waves causes the air to flow through the turbine duct and to activate the turbine, so the OWC principle of operating can be approximated to a cylinder-piston system. Therefore, one of the methodologies used in the computational modeling to simulate the operating principle of this device is the Piston Methodology, which simplifies the problem analysis considering only the air flow through the OWC converter. Among the phenomena that occur within the OWC device, the static pressure behavior is arguably one of the most important because it is through it that it is possible to estimate the hydropneumatic power and the converter efficiency. Thus, the objective of this work is to evaluate the static pressure behavior within the OWC, using the Piston Methodology, by imposing a monochromatic wave boundary condition in an axisymmetric domain. Among the obtained results it was inferred that the static pressure, in this case, depends directly on the flow acceleration and it is strongly influenced by the vorticity generated in domains with a change of area.
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