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Experimental validation of theoretical heliostat wind loads

机译:理论升降器风荷载的实验验证

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In the current concentrated solar power (CSP) context central receiver systems seems to be the most promising technology with the highest cost reduction potential. In the construction of such plants the solar field represents one of the largest investments, a fact which has made cost reduction of these elements become the main target for many actors of the solar thermal sector. Therefore, the design of cost efficient heliostats has become a major interest. One of the design challenges is to develop a heliostat which is able to withstand all foreseen mechanical loads, while at the same time have reduce costs by avoiding unnecessary safety margins. To achieve this goal a good knowledge of expected wind loads onto the support structure and drive mechanism is crucial. In this paper a heliostat prototype, equipped with measuring devices, is deployed to a test site in order to measure the true mechanical stresses suffered due to varying wind loads. These data together with the information about wind speed and direction is then used to validate theoretical loads determined via formulations extracted from wind tunnel experiments. It is shown, that for low turbulence conditions the theoretical values correspond well to the measured values; however, for turbulent wind conditions a significant difference is detected. As those conditions are difficult to simulate in wind tunnels or CFD simulations, this shows the importance of on-site testing of new heliostat designs.
机译:在当前集中的太阳能(CSP)上下文中,中央接收器系统似乎是最有前途的技术,具有最高的成本降低潜力。在这种植物的建造中,太阳能领域代表着最大的投资之一,这一事实使得这些元素的成本降低成为太阳能热部门的许多演员的主要目标。因此,成本效率的升降器设计已经成为一个主要的兴趣。其中一个设计挑战是开发一个能够承受所有预见的机械负载的光晕呢,同时通过避免不必要的安全边缘来降低成本。为了实现这一目标,对支撑结构的预期风力载荷良好了解,并且驱动机构至关重要。在本文中,配备有测量装置的Heliostat原型,部署到测试部位,以测量由于变化的风荷载导致的真正的机械应力。然后,这些数据与有关风速和方向的信息一起用于验证通过从风隧道实验中提取的制剂确定的理论载荷。结果显示,对于低湍流条件,理论值对测量值很好;然而,对于湍流风,检测到显着差异。由于这些条件难以在风隧道或CFD模拟中模拟,这表明了对新的Heliostat设计的现场测试的重要性。

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