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首页> 外文期刊>Journal of Energy Engineering >Numerical Simulation of a Lab-Scale Molten-Salt External Solar Receiver and Its Experimental Validation
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Numerical Simulation of a Lab-Scale Molten-Salt External Solar Receiver and Its Experimental Validation

机译:实验室熔盐外太阳接收器的数值模拟及其实验验证

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摘要

In this work, a lab-scale external receiver with a xenon lamp set was designed to study optical and thermodynamic properties, and its benchmark was also introduced. Eighteen stainless-steel tubes were placed on the receiver to absorb radiant energy from the xenon lamps and achieve light-to-heat conversion. The indirect method was used to obtain the optical efficiency of the xenon lamp setup, and the heat-flux distribution on the surface of the receiver had an average heat flux of 99.4 kW/m(2). Furthermore, the experimental method was used to study the temperature change of the receiver during the startup, stabilization, and shutdown of the receiver. A numerical simulation was conducted using commercially available software with the realizable k-epsilon model and the discrete ordinates model as the radiative transfer equation to valid the experimental result. The temperatures of the back and front of the receiver were obtained by thermocouples and an infrared thermal imager, respectively. The temperature of the back of the receiver rose rapidly after the lamps were turned on, and the temperature of the heat receiver remained unchanged when it was stable. The velocity of the molten salt was also studied, and the maximum speed was 1.9 m/s. The temperature increases of the experiment and simulation were approximately 4 degrees C and 4.2 degrees C, respectively, and the temperature of the tube wall was 40 degrees C higher than that of the molten salt. The comparison of the experiment results indicate that the deviation between the receiver's back temperatures in the simulation and experiment was basically within 5%, indicating consistency, and the thermal efficiency of the receiver was approximately 85%. (C) 2020 American Society of Civil Engineers.
机译:在这项工作中,设计了一种带有氙灯集合的实验室外部接收器,旨在研究光学和热力学性质,并介绍其基准。将18个不锈钢管放置在接收器上,以吸收来自氙灯的辐射能量,并实现光 - 热转化。间接方法用于获得氙灯设置的光学效率,接收器表面上的热通量分布具有99.4 kW / m(2)的平均热通量。此外,使用实验方法在启动,稳定和关闭期间研究接收器的温度变化。使用可实现的K-EPSILON模型和离散坐标模型的商业上可用软件进行数值模拟作为辐射传递方程,以有效地进行实验结果。接收器的背部和前部的温度分别通过热电偶和红外热成像仪获得。接收灯接通后,接收器背面的温度迅速升高,并且当它稳定时,热接收器的温度保持不变。还研究了熔盐的速度,最大速度为1.9米/秒。实验和模拟的温度升高分别为约4℃和4.2℃,管壁的温度高于熔盐的40℃。实验结果的比较表明,仿真和实验中的接收器的后温度之间的偏差基本上在5%以内,表示一致性,接收器的热效率约为85%。 (c)2020年美国土木工程师协会。

著录项

  • 来源
    《Journal of Energy Engineering 》 |2021年第1期| 04020074.1-04020074.11| 共11页
  • 作者单位

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Peoples R China;

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Peoples R China;

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Peoples R China;

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Peoples R China;

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Peoples R China;

    Zhejiang Univ Inst Thermal Power Engn State Key Lab Clean Energy Utilizat Hangzhou 310027 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Solar external receiver; Experiment and simulation; Heat-flux distribution; Temperature distribution; Thermal efficiency;

    机译:太阳能外部接收器;实验和仿真;热通量分布;温度分布;热效率;

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