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Applying rotorcraft modelling technology to renewable energy research

机译:将旋翼飞机建模技术应用于可再生能源研究

摘要

The perceived need to reduce mankind's impact on the global climate motivates towards a future society in which a significant proportion of its energy needs will be extracted from the winds and the tides of the planet. This paper shows several examples of the application of Brown's Vorticity Transport Model, originally developed to perform simulations of helicopter aeromechanics and wake dynamics, to the analysis of the performance of renewable energy devices and their possible impact on the environment. Prediction of the loading on wind turbines introduces significant additional challenges to such a model, including the need to account fully for the effects of radial flow on blade stall. The wake-mediated aerodynamic interactions that occur within a wind farm can reduce its power output significantly, but this problem is very similar to that where the aerodynamic unsteadiness of the coupled wake of the main and tail rotors of a helicopter can result in significantly increased pilot workload. The helicopter-related problem of brownout, encountered during operations in desert conditions, has its analogue in the entrainment of sediment into the wakes of tidal turbines. In both cases it may be possible to ameliorate the influence of the rotor on its environment by careful and well-informed design. Finally, calculations of the distortion and dispersal of the exhaust plumes of a helicopter by the wake of its rotor allow insight into how wind turbines might interfere with the dispersal of pollutants from nearby industrial sites. These examples show how cross-disciplinary information transfer between the rotorcraft field and the renewable energy community is helping to develop the technologies that will be required by our future society, as well as helping to understand the environmental issues that might need to be faced as these technologies become more prevalent.
机译:人们认为减少人类对全球气候影响的需求推动了未来社会的发展,在未来社会中,很大一部分能源需求将来自风和地球的潮汐。本文显示了布朗开发的涡流传输模型的几个示例,该模型最初是为了对直升机的航空力学和尾流动力学进行仿真而开发的,用于分析可再生能源设备的性能及其对环境的可能影响。风力涡轮机负荷的预测给这种模型带来了重大的挑战,包括需要充分考虑径向流对叶片失速的影响。风电场中发生的尾流介导的空气动力学相互作用会显着降低其功率输出,但是此问题与直升飞机主旋翼和尾旋翼的耦合尾流的空气动力学不稳定会导致飞行员的显着增加非常相似。工作量。在沙漠条件下的作业中遇到的与直升机相关的电力不足问题,其类似之处在于将泥沙夹带到潮汐涡轮机的尾流中。在这两种情况下,都可以通过精心设计的设计来减轻转子对其周围环境的影响。最后,通过直升机旋翼的尾流对直升机尾气羽流的变形和扩散进行计算,可以深入了解风力涡轮机如何干扰附近工业场所污染物的扩散。这些示例说明了旋翼航空器领域与可再生能源社区之间的跨学科信息传递如何帮助开发我们未来社会所需的技术,并帮助理解在这些情况下可能需要面对的环境问题。技术变得越来越普遍。

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