Assessing the Feasibility of Gravitational Vortex Turbines for Sustainable Energy Production in Remote Hilly Areas of Bangladesh

Aung Kyawo, M. I. Khan, Saqibul Islam Chowdhury, Saymun Rahaman
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Abstract

This research paper presents a comprehensive study of the design, optimization, and performance analysis of a gravitational vortex water turbine for small-scale hydropower applications in the Chittagong Hill Tracts of Bangladesh. The urgent need for cleaner and more efficient energy sources to address global energy challenges drives the development of innovative renewable energy solutions. The proposed turbine harnesses the power of gravity-induced water flow to efficiently convert rotational energy from a water vortex into electrical energy. The research employs advanced computational fluid dynamics (CFD) analysis using ANSYS Fluent to investigate the intricate flow behavior and velocity distribution. Through CFD calculations, the study provides valuable insights into the turbine's performance, allowing for optimization of its design parameters. The influence of blade numbers on turbine efficiency contributes to a better understanding of the turbine's operational characteristics. The paper discusses the advantages of decentralized energy systems and emphasizes the potential of gravitational vortex turbines for small-scale hydropower projects. It highlights the importance of mathematical analysis and performance results, further supported by the CFD analysis, demonstrating the turbine's capabilities. The power outputs achieved by the turbine align with or surpass the potential power capacities of identified small hydro sites, reinforcing its viability as a clean and reliable energy solution. While the research findings showcase the turbine's potential, it emphasizes the need for further feasibility studies and site-specific assessments to ensure successful real-life implementation. The study underscores the significance of utilizing advanced computational techniques in developing efficient and environmentally friendly hydropower solutions. The findings offer lessons for researchers, engineers, and policymakers for cleaner and more sustainable energy sources.
评估重力涡旋涡轮机在孟加拉国偏远山区可持续能源生产的可行性
本文对孟加拉国吉大港山区小型水电应用的重力涡水轮机的设计、优化和性能分析进行了综合研究。迫切需要更清洁、更高效的能源来应对全球能源挑战,这推动了创新可再生能源解决方案的发展。所提出的涡轮机利用重力诱导水流的力量,有效地将水涡流的旋转能量转化为电能。该研究采用先进的计算流体动力学(CFD)分析,利用ANSYS Fluent研究复杂的流动行为和速度分布。通过CFD计算,该研究为涡轮性能提供了有价值的见解,从而可以优化其设计参数。叶片数对涡轮效率的影响有助于更好地理解涡轮的工作特性。本文讨论了分散能源系统的优点,强调了重力涡轮机在小型水电工程中的应用潜力。它强调了数学分析和性能结果的重要性,进一步得到CFD分析的支持,展示了涡轮机的能力。涡轮机实现的功率输出与确定的小型水电站的潜在功率一致或超过,加强了其作为清洁可靠的能源解决方案的可行性。虽然研究结果显示了涡轮机的潜力,但它强调需要进一步的可行性研究和特定地点的评估,以确保成功的实际实施。这项研究强调了利用先进的计算技术开发高效、环保的水电解决方案的重要性。这些发现为研究人员、工程师和政策制定者提供了更清洁、更可持续的能源的经验教训。
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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