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Physical Approach to Stress Analysis of Horizontal Axis Wind Turbine Blade Using Finite Element Analysis

机译:水平轴风风力涡轮机叶片应力分析的物理方法

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Wind energy plays a very crucial role in meeting the growing demand for energy across the world. Energy from solar and wind are renewable and found in abundant. They do not deplete as fossils, which are alternate sources of energy. Many countries in the world like China, United States, Germany, India, Spain and others have already adopted wind as a source of energy. Large wind turbines are most common design and they extract more wind but their main challenge is that they require large terrains and are most suitable in areas with high wind speeds. Usually erected onshore or offshore. On the other hand, small wind turbines require small ground spaces for them to be erected and can operate well in terrains with low wind speed. The turbine blade is one of the most important components of a wind turbine expected to be 20% of the overall cost of the wind turbine. The performance of wind turbine blades depends greatly on the material used in the design. Selecting which material to use in the design is a very important and crucial. Many materials are available for selection, which include steel, carbon fibres, wood and many more. All these materials perform differently since they have different material properties. In this paper, only three materials, which are Thermoplastic Resin (Plastic and vinyl material), Aluminium Alloy and Titanium Alloy, were considered. The evaluation criteria included comparing the values of von misses stress and displacement. These values were attained using simulations. Performance analysis was carried out using Inventor professional software for the Finite Element Analysis (FEA). The design, and performance analysis was based on a lkva small-scale horizontal axis wind turbine blade prototype with a blade length of 0.5 m which was scaled up based on the design specification and material performance criteria. Validation for the mechanical strength of the blade was done using FEA.
机译:风能在满足世界各地的能源需求不断增长的情况下起着非常重要的作用。来自太阳能和风的能量是可再生的,在丰富的情况下发现。它们不会耗尽作为化石,这是替代能源的。世界上许多国家,如中国,美国,德国,印度,西班牙等都已经通过了风作为能源来源。大型风力涡轮机是最常见的设计,它们提取更多的风,但它们的主要挑战是它们需要大型地形,最适合风速高的区域。通常在陆上或海上竖立。另一方面,小型风力涡轮机需要竖立的小地面空间,并且可以在风速低的地形中运行良好。涡轮叶片是风力涡轮机最重要的部件之一,预计是风力涡轮机整体成本的20%。风力涡轮机叶片的性能大大取决于设计中使用的材料。选择设计中使用的材料是一个非常重要和至关重要的。许多材料可供选择,包括钢,碳纤维,木材等等。所有这些材料都表现不同,因为它们具有不同的材料特性。本文仅考虑了一种是热塑性树脂(塑料和乙烯基材料),铝合金和钛合金的三种材料。评估标准包括比较von错过压力和流离失所的价值。使用模拟实现这些值。使用Inventor Professional软件进行性能分析,用于有限元分析(FEA)。该设计和性能分析基于LKVA小型水平轴风风力涡轮机叶片原型,叶片长度为0.5米,基于设计规范和材料性能标准进行了缩放。使用FEA完成对叶片的机械强度的验证。

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