Capitalizing on the benefits of vertical-axis wind turbines for remote communities
Capitalizing on the benefits of vertical-axis wind turbines for remote communities
批准号:
577127-2022
负责人:
Kheiri, MojtabaM
金额:
$3.28万
依托单位:
依托单位国家:
加拿大
项目类别:
Alliance Grants
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31
中文摘要
该提案旨在利用达里乌斯型垂直轴风力涡轮机(VAWTs)为偏远社区带来的好处。偏远的离网社区需要一种可靠的可再生能源,以减少对柴油的严重依赖。特别是,加拿大北部在秋季和冬季有极好的风速机会(加拿大风能地图)。风能是一种可行的解决方案,而vawt是在建筑环境中利用风能发电的理想选择。它们是全方位的,即使在风向变化很大的情况下也能发电,而不需要偏航机制。因此,它们的机械复杂性较低,资本和维护成本较低,是偏远社区的理想选择。与传统的水平轴风力涡轮机(HAWTs)相比,它们的噪音也更小。此外,与hawt相比,vawt的占用空间更小,因为它们的尾流恢复速度更快,可以更密集地聚集在一起。由于变速箱和发电机安装在地面上,因此与hawt相比,它们的重心更低。这使得vawt的安装更加简单和便宜。该项目的主要目的是展示集成到建筑环境中的小型VAWTs的高能量输出,特别侧重于在quamesbec偏远社区的安装。通过数值和风洞实验研究,我们将检验一些新概念的可行性,如合成射流和叶片变形,以提高自启动能力,减轻动态失速,并最大限度地减少叶片上的冰积累。还将对涡轮机在建筑物上的最佳位置进行数值和实地研究,以实现最大的功率输出。
英文摘要
The proposal aims to capitalize on the benefits of Darrieus-type vertical-axis wind turbines (VAWTs) for remote communities. Remote off-grid communities need a reliable, renewable source of energy to reduce their considerable reliance on diesel. In particular, Northern Canada has excellent wind speed opportunities over the fall and winter (Canada Wind Energy Map). Wind energy is a viable solution, and VAWTs are an ideal choice for generating power from wind in built environments. They are omnidirectional and can generate power even if the wind direction is highly variable, without needing a yaw mechanism. Thus, they have less mechanical complexity and incur lower capital and maintenance costs, ideal in remote communities. They are also less noisy compared to conventional horizontal-axis wind turbines (HAWTs). Moreover, VAWTs have a smaller footprint compared to HAWTs since they can be clustered more densely due to their faster wake recovery. They have a lower center of gravity compared to HAWTs since the gearbox and generator are installed on the ground. This makes VAWTs simpler and cheaper for installation. This project primarily aims to demonstrate high energy output of small-scale VAWTs integrated into built environment with a particular focus on installations in Québec's remote communities. Through numerical and wind tunnel experimental studies, we will examine the viability of some novel concepts, such as synthetic jet flow, and blade morphing for enhancing the self-starting capability, mitigating dynamic stall, and minimizing ice accretion over the blades. Numerical and field studies will also be conducted on the optimal placement of a turbine on the building to achieve the maximum power output.
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