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首页> 外文期刊>Journal of Heat Transfer >Numerical and Experimental Investigation of a Multiple Air Jet Cooling System for Application in a Solar Thermal Receiver
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Numerical and Experimental Investigation of a Multiple Air Jet Cooling System for Application in a Solar Thermal Receiver

机译:用于太阳能热接收器的多重喷气冷却系统的数值和实验研究

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The transparent quartz glass window of a high temperature solar receiver (1000℃ air outlet temperature, 15 bars) has to be protected from overheating. The window is an axially symmetric part that can be approximated by a hemisphere with a cylindrical extension (diameter 0.31 m, height 0.42 m). The cooling is accomplished by impinging several air jets onto the concave window surface. Due to concentrated solar radiation, the air supply nozzles can only be installed at the circumference of the cylindrical extension. Symmetric configurations with six or nine nozzles, equally distributed around the window circumference, are examined. A second configuration generates a swirl in the window cavity by inclining the nozzles. In a third, asymmetric configuration, only nozzles on one side are simultaneously charged with mass flow, while a spatial homogenization of heat transfer is reached by periodically modulating the air flows with time. Computational fluid dynamics (CFD) calculations and laboratory measurements of the heat transfer have been carried out. In the performed 3-D simulations, the realizable k-ε model, the k-ω model, and the SST-k-ω model are compared. For measuring the heat transfer coefficient, a periodic-transient measurement technique with high spatial resolution is used. For the application of cooling of the solar receiver window, the jet cooling system with periodically modulated air flows is identified as the best solution.
机译:必须保护高温太阳能接收器(出风温度1000℃,15巴)的透明石英玻璃窗不会过热。窗口是一个轴向对称部分,可以用具有圆柱形延伸部分(直径0.31 m,高度0.42 m)的半球近似。通过将多个空气射流撞击到凹入的窗户表面上来完成冷却。由于集中的太阳辐射,空气供应喷嘴只能安装在圆柱形延长部分的周围。检查具有六个或九个喷嘴的对称配置,喷嘴均匀分布在车窗圆周上。第二种构造通过使喷嘴倾斜而在窗腔中产生涡流。在第三种非对称配置中,只有一侧的喷嘴同时充有质量流,而通过随时间周期性地调节空气流达到传热的空间均质化。已经进行了计算流体动力学(CFD)计算和传热的实验室测量。在执行的3D模拟中,比较了可实现的k-ε模型,k-ω模型和SST-k-ω模型。为了测量传热系数,使用具有高空间分辨率的周期性瞬变测量技术。对于太阳能接收器窗口的冷却应用,具有周期性调制气流的射流冷却系统被认为是最佳解决方案。

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