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High Altitude Wind Energy Generation Using Controlled Power Kites

机译:使用受控风筝产生高海拔风能

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This paper presents simulation and experimental results regarding a new class of wind energy generators, denoted as KiteGen, which employ power kites to capture high altitude wind power. A realistic kite model, which includes the kite aerodynamic characteristics and the effects of line weight and drag forces, is used to describe the system dynamics. Nonlinear model predictive control techniques, together with an efficient implementation based on set membership function approximation theory, are employed to maximize the energy obtained by KiteGen, while satisfying input and state constraints. Two different kinds of KiteGen are investigated through numerical simulations, the yo-yo configuration and the carousel configuration, respectively. For each configuration, a generator with the same kite and nominal wind characteristics is considered. A novel control strategy for the carousel configuration, with respect to previous works, is also introduced. The simulation results show that the power generation potentials of the yo-yo and carousel configurations are very similar. Thus, the choice between these two configurations for further development of a medium-to-large scale generator will be made on the basis of technical implementation problems and of other indexes like construction costs and generated power density with respect to land occupation. Experimental data, collected using the small-scale KiteGen prototype built at Politecnico di Torino, are compared to simulation results. The good matching between simulation and real measured data increases the confidence with the presented simulation results, which show that energy generation with controlled power kites can represent a quantum leap in wind power technology, promising to obtain renewable energy from a source largely available almost everywhere, with production costs lower than those of fossil sources.
机译:本文介绍了有关新型风力发电机(称为KiteGen)的仿真和实验结果,该风力发电机使用动力风筝来捕获高空风力。包含风筝空气动力学特性以及线重和阻力的影响的真实的风筝模型用于描述系统动力学。非线性模型预测控制技术,以及基于集合隶属函数逼近理论的有效实现方式,可在满足输入和状态约束的同时,最大化KiteGen所获得的能量。通过数值模拟分别研究了两种不同的KiteGen,即悠悠球配置和轮播配置。对于每种配置,应考虑具有相同风筝和额定风速特性的发电机。相对于以前的工作,还介绍了一种新颖的轮播配置控制策略。仿真结果表明,溜溜球和旋转木马配置的发电潜力非常相似。因此,将基于技术实施问题和其他指标,例如建筑成本和相对于土地占用的发电密度,在这两种配置之间进行选择,以进一步开发中大型发电机。使用在Politecnico di Torino建造的小型KiteGen原型收集的实验数据与仿真结果进行了比较。仿真结果与实际测量数据之间的良好匹配提高了所提供的仿真结果的可信度,表明仿真的风筝发电代表了风电技术的一次飞跃,有望从几乎遍布世界各地的可再生能源中获取可再生能源,生产成本低于化石资源。

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