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Analysis of oscillating-water-column wave energy converter configurations for integration into caisson breakwaters

机译:振荡水柱波能量转换器配置分析,用于集成到CASSON防波堤中的配置

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摘要

Energy production from ocean waves remains in the research and development phase, due in part to the lack of maturity of the technology, as well as the economical unfeasibility of large-scale projects. Integration of wave energy converters into breakwaters is a strategy to improve the economic viability of the energy conversion system. The cost of electricity is reduced through the sharing of construction, installation, maintenance and operation activities. This work focuses on the design of an oscillating-water-column device to be integrated into a caisson used for breakwaters. A numerical model based on linear potential flow theory was developed. The viscous flow effects in the duct and the nonlinear turbine damping characteristic were linearized for the application of a frequency domain analysis. Furthermore, the device performance was estimated under irregular wave conditions using stochastic modelling for three wave climates and the influence of tidal variability is studied. The design and performance optimization of the submerged duct, air chamber and turbine are considered for the following oscillating-water-column duct configurations: conventional; U-shape; and L-shape. The results show all devices have better power conversion performance for the lower wave periods observed in the Mediterranean Sea than for the studied North Atlantic Ocean wave climates. The U-shaped converter outperforms the other configurations in all three locations, with a maximum theoretical annual pneumatic power of 46.8 kW/m when compared with 39.4 kW/m and 38.0 kW/m for the L-shape and conventional device, respectively. The tidal level variation does have some influence on the device performance, but the impact is minor.
机译:来自海浪的能源产量仍在研究和开发阶段,部分原因是缺乏技术的成熟度,以及大规模项目的经济不可行。波能转换器进入防波堤的一体化是一种提高能量转换系统的经济可行性的策略。通过共享建筑,安装,维护和运营活动,电力成本降低。这项工作侧重于设计振荡水柱装置,以集成到用于防波堤的沉箱中。开发了一种基于线性电位流动理论的数值模型。管道中的粘性流动效应和非线性涡轮机阻尼特性的效果是用于施加频域分析的线性化。此外,使用三个波浪气候的随机造型在不规则的波条件下估计装置性能,研究了潮汐变异性的影响。考虑了浸没式管道,空气室和涡轮机的设计和性能优化用于以下振荡水柱管道配置:常规; U形;和l形。结果表明,所有器件都具有更好的电力转换性能,以便在地中海观察到的较低波浪周期而不是学习的北大西洋波浪气候。 U形转换器在所有三个位置的其他配置中优于其他配置,其具有46.8 kW / m的最大理论年充气功率,分别与L形和常规装置的39.4kW / m和38.0kW / m相比。潮水平变化确实对设备性能产生了一些影响,但冲击是轻微的。

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