Enhancing savonius rotor model with additional grooves on hydrokinetic turbine performance

Petrus Sampelawang, N. Salam, L. Sule, R. Tarakka
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Abstract

Hydrokinetic turbines use different rotors for technological and economic reasons. Even though it performs poorly, vertical-axis hydrokinetic turbines use the Savonius rotor. The object of research is a Savonius rotor model with additional grooves. The study addresses the need to improve the efficiency and overall performance of Savonius rotor models in hydrokinetic turbines, which are widely used for harnessing energy from flowing water currents. The problem involves understanding how different groove configurations affect the aerodynamic behavior and energy extraction efficiency of the Savonius rotor in hydrokinetic turbine applications. The test results revealed that incorporating grooves led to notable improvements in efficiency (ɳ) and coefficient of drag (CD). Grooved blades exhibited a maximum efficiency of 30.97 % and a maximum drag coefficient of 2.71. Notably, blades with a groove width of 12.5 mm emerged as the optimal model, demonstrating an efficiency peak of 35.66 % and a drag coefficient 3.08. This indicates a substantial increase in efficiency by 4.69 % and a corresponding rise in the drag coefficient by 0.37 for grooved blades. The grooves on grooved blades increase friction, improving performance. Grooved rotor blades improve turbine performance significantly. Savonius rotor models in hydrokinetic turbines extract more energy by optimizing groove width and arrangement to maximize drag coefficient and efficiency. This research affects hydrokinetic turbine design and optimization for renewable energy generation. Engineers and designers can improve the performance and efficiency of the Savonius rotor model in hydrokinetic turbine applications by applying this study’s findings
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用附加凹槽增强萨沃尼转子模型对水力涡轮机性能的影响
出于技术和经济原因,水动力涡轮机使用不同的转子。垂直轴动水轮机使用的是萨沃尼乌斯转子,尽管其性能较差。研究对象是带有额外凹槽的萨沃尼乌斯转子模型。该研究旨在满足提高水动能涡轮机中萨沃尼乌斯转子模型的效率和整体性能的需要,水动能涡轮机被广泛用于利用流动水流的能量。问题涉及了解不同的凹槽配置如何影响萨沃尼乌斯转子在水动力涡轮机应用中的气动行为和能量提取效率。测试结果表明,加入凹槽后,效率(ɳ)和阻力系数(CD)显著提高。开槽叶片的最高效率为 30.97%,最大阻力系数为 2.71。值得注意的是,槽宽为 12.5 毫米的叶片是最佳模型,其效率峰值为 35.66%,阻力系数为 3.08。这表明,开槽叶片的效率大幅提高了 4.69%,阻力系数相应提高了 0.37。沟槽叶片上的沟槽增加了摩擦力,提高了性能。开槽转子叶片可显著提高涡轮机的性能。水动力涡轮机中的 Savonius 转子模型通过优化沟槽宽度和排列,最大限度地提高阻力系数和效率,从而获得更多能量。这项研究影响了可再生能源发电的水动力涡轮机设计和优化。工程师和设计师可以通过应用本研究的发现,提高萨沃尼乌斯转子模型在水动力涡轮机应用中的性能和效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Eastern-European Journal of Enterprise Technologies
Eastern-European Journal of Enterprise Technologies Mathematics-Applied Mathematics
CiteScore
2.00
自引率
0.00%
发文量
369
审稿时长
6 weeks
期刊介绍: Terminology used in the title of the "East European Journal of Enterprise Technologies" - "enterprise technologies" should be read as "industrial technologies". "Eastern-European Journal of Enterprise Technologies" publishes all those best ideas from the science, which can be introduced in the industry. Since, obtaining the high-quality, competitive industrial products is based on introducing high technologies from various independent spheres of scientific researches, but united by a common end result - a finished high-technology product. Among these scientific spheres, there are engineering, power engineering and energy saving, technologies of inorganic and organic substances and materials science, information technologies and control systems. Publishing scientific papers in these directions are the main development "vectors" of the "Eastern-European Journal of Enterprise Technologies". Since, these are those directions of scientific researches, the results of which can be directly used in modern industrial production: space and aircraft industry, instrument-making industry, mechanical engineering, power engineering, chemical industry and metallurgy.
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