A Suresh, S Raja Kumar, Aljafari Belqasem, Thanikanti Sudhakar Babu
Department of Electrical and Electronics Engineering, Varuvan Vadivelan Institute of Technology, Dharmapuri, Tamil Nadu, India.
Department of Mechanical Engineering, Regional Campus of Anna University, Tirunelveli, Tamil Nadu, India.
Heliyon. 2024 Feb 1;10(3):e25356. doi: 10.1016/j.heliyon.2024.e25356. eCollection 2024 Feb 15.
Wind energy conversion systems (WECS) have gained increasing attention in recent years as promising renewable energy sources. Despite their potential, a clear research gap exists: the majority of WECS underperform in low wind speed conditions, limiting their applicability in many regions. To address this problem, this study proposes a novel approach by developing a 100 W micro wind turbine using Polylactic Acid (PLA) to generate efficient power in low wind speed conditions. The proposed wind turbine design employs Blade Element Momentum Theory (BEMT), which is commonly used for modeling wind turbine performance. Geometric design, mechanical analysis, and aerodynamic analysis are the fundamental considerations for designing any machine. In this work, the CREO 3.0 three-dimensional modeling software is used to create the geometric design of the proposed work. The airfoil SD7080 is selected due to its superior aerodynamic performance, and mechanical properties such as Young's modulus, density, and Poisson's ratio are attained to evaluate the wind blade's performance. Additionally, ANSYS 15.0 is used to conduct a detailed analysis of the proposed wind turbine, evaluating properties such as equivalent stress, deformation, and equivalent strain. Both simulation (ANSYS 15.0) and experimental setups are used to investigate the proposed wind turbine's performance, and the corresponding results are presented and discussed in this manuscript. The results indicate a significant performance improvement of the proposed wind blade when compared to conventional and ABS wind blades, demonstrating its potential as a more efficient solution for WECS. This proposed wind turbine design overcomes the problems like underprformance in low wind speed conditions and the wind turbine efficiency in all regions.
近年来,作为有前景的可再生能源,风能转换系统(WECS)受到了越来越多的关注。尽管它们具有潜力,但仍存在明显的研究空白:大多数风能转换系统在低风速条件下性能不佳,限制了它们在许多地区的适用性。为了解决这个问题,本研究提出了一种新方法,即开发一种使用聚乳酸(PLA)的100瓦微型风力涡轮机,以在低风速条件下高效发电。所提出的风力涡轮机设计采用了叶片元动量理论(BEMT),该理论通常用于对风力涡轮机性能进行建模。几何设计、力学分析和空气动力学分析是设计任何机器的基本考虑因素。在这项工作中,使用CREO 3.0三维建模软件来创建所提出工作的几何设计。由于其优越的空气动力学性能而选择了SD7080翼型,并获得了诸如杨氏模量、密度和泊松比等力学性能,以评估风叶片的性能。此外,使用ANSYS 15.0对所提出的风力涡轮机进行详细分析,评估诸如等效应力、变形和等效应变等性能。仿真(ANSYS 15.0)和实验装置都用于研究所提出的风力涡轮机的性能,并且在本手稿中展示并讨论了相应的结果。结果表明,与传统和ABS风叶片相比,所提出的风叶片性能有显著提高,证明了其作为风能转换系统更高效解决方案的潜力。所提出的风力涡轮机设计克服了诸如在低风速条件下性能不佳以及所有区域中风力涡轮机效率等问题。