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Wind Pressure And Wind-induced Vibration Of Heliostat

机译:定日镜的风压和风振

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Heliostat is the key part of Solar Tower power station, which requires extremely high accuracy in use. But it's sensitive to gust because of its light structure, so effect of wind load should be taken into account in design. Since structure of heliostat is unusual and different from common ones, experimental investigation on rigid heliostat model using technology of surface pressure mensuration to test 3-dimensional wind loads in wind tunnel was conducted. The paper illustrates distribution and characteristics of reflector's mean and fluctuating wind pressure while wind direction angle varied from 0° to 180° and vertical angle varied from 0° to 90°. Moreover, a finite element model was constructed to perform calculation on wind-induced dynamic response. The results show that the wind load power spectral change rulers are influenced by longitudinal wind turbulence and vortex and are related with Strouhal number; the fluctuating wind pressures between face and back mainly appear positive correlation, and the correlation coefficients at longitudinal wind direction are smaller than those at lateral direction; the fluctuating wind pressures preferably agree with Gaussian distribution at smaller vertical angle and wind direction angle. The wind-induced response and its spectrums reveal that: when vertical angle is small, the background responsive values of reflector's different parts are approximately similar; in addition, multi-phased resonant response occurring at the bottom. With the increase of θ, airflow separates at the near side and reunites at the other, as produces vortex which enhances dynamic response at the upper part.
机译:定日镜是太阳能塔发电站的关键部分,需要使用非常高的精度。但由于其结构轻巧,对阵风敏感,因此在设计中应考虑风荷载的影响。由于定日镜的结构与众不同,并且与普通定日镜不同,因此采用表面压力测量技术对风洞中的三维风荷载进行了刚性定日镜模型的实验研究。本文阐述了当风向角从0°到180°以及垂直角从0°到90°改变时,反射镜的平均值和波动风压的分布和特性。此外,建立了一个有限元模型来进行风致动力响应的计算。结果表明,风载荷功率谱变化标尺受纵向风湍流和涡旋的影响,并与斯特劳哈尔数有关。前后脸之间的风压波动主要呈正相关,纵向风向的相关系数小于横向风的相关系数。波动的风压优选在较小的垂直角和风向角处与高斯分布一致。风致响应及其频谱表明:当垂直角较小时,反射器不同部分的背景响应值近似相似;另外,在底部发生多相谐振响应。随着θ的增加,气流在近侧分离并在另一侧重新结合,从而产生涡旋,从而增强了上部的动态响应。

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