基于计算流体动力学仿真的过顶波能转换装置涡轮优化

Brian R. Tan, M. Lee
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引用次数: 0

摘要

近年来,马来西亚的能源需求急剧增长。主要能源供应是天然气、煤炭和焦炭能源开采。然而,这些能源的提取被认为是不清洁和不可持续的。因此,可再生能源可能是直接的解决方案。此外,以往的海洋工程研究表明,马来西亚的海况是有利的。过顶波能转换器主要用于高机械到电的转换效率。本研究通过计算流体动力学仿真软件ANSYS对过顶波能转换装置的涡轮进行了优化。结果表明,涡轮叶片直径越大,作用在涡轮上的扭矩越大。这是因为当叶片直径较大时,水压力对叶片线性表面的影响更为显著,从而导致作用在涡轮上的扭矩较大。与涡轮叶片的直径不同,涡轮叶片的数量与作用在涡轮上的扭矩不成正比。具有四个叶片的涡轮模型比三个和五个叶片的涡轮显示更高的扭矩值。在相同功率输入条件下,直流型机匣涡轮性能效率最高,为62.87%,功率为3091.30W;而螺旋机匣涡轮性能效率最高,功率为4643.82W,性能效率为94.44%。本研究需要进一步对过顶波能量转换技术的系统设计优化进行研究,如海浪条件、动力起飞系统设计、位置选择等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of Turbine for Overtopping Wave Energy Conversion Device through Computational Fluid Dynamics Simulation
The energy demand in Malaysia has shown a drastic increase over the years. The primary energy supply is natural gas, coal, and coke energy extraction. However, these energy extractions are considered unclean and not sustainable. Therefore, renewable energy could be the immediate solution. Furthermore, previous studies in ocean engineering indicated that Malaysia’s sea condition is favorable to be utilized. Overtopping wave energy converters are primarily used for high mechanical to electrical conversion efficiencies. The current study optimizes the turbine for overtopping wave energy conversion devices through computational fluid dynamics simulation software, ANSYS. Findings indicate that the larger the turbine blade diameter, the higher the torque acting on the turbine. This is because the water pressure impact on the linear blade surface is more significant when the diameter of the blade is prominent, resulting in higher torque acting on the turbine. Unlike the diameter of the turbine blade, the number of the turbine blade is not directly proportional to the torque acting on the turbine. Turbine models with four blades illustrate a higher torque value than three and five blades turbines. The highest turbine performance efficiency for straight flow casing is 62.87% with 3091.30W, while spiral casing turbine exhibited outstanding performance efficiency of 94.44% with 4643.82W under the same power input condition. This study calls for future study in the system design optimization of overtopping wave energy conversion technology, such as ocean wave conditions, power take-off systems design, and location selection.
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