首页> 外文会议>11th international conference on energy sustainability: batteries and electrochemical energy storage ... >NUMERICAL EVALUATION OF NOVEL PARTICLE RELEASE PATTERNS IN HIGH-TEMPERATURE FALLING PARTICLE RECEIVERS
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NUMERICAL EVALUATION OF NOVEL PARTICLE RELEASE PATTERNS IN HIGH-TEMPERATURE FALLING PARTICLE RECEIVERS

机译:高温降落粒子接收器中新型粒子释放模式的数值评估

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Novel particle release patterns have been proposed as a means to increase the thermal efficiency of high-temperature falling particle receivers. Innovative release patterns offer the ability to utilize light-trapping and volumetric heating effects as a means to increase particle temperatures over a conventional straight-line particle release pattern. The particle release patterns explored in this work include wave-like patterns and a series of parallel curtains normal to the incident irradiation that have shown favorable results in previous numerical studies at lower particle temperatures. A numerical model has recently been developed of an existing falling particle receiver at the National Solar Thermal Test Facility at Sandia National Laboratories to evaluate these patterns at elevated temperatures necessary to evaluate radiative and convective losses. This model has demonstrated that thermal efficiency gains of 2.5-4.6% could be realized using these patterns compared to the conventional planar release depending on the particle mass flow rate. Increasing the number of parallel curtains, increasing the spacing between curtains, and shifting the particle mass flow rate deeper in the receiver cavity was also found to increase the thermal efficiency. These effects became less significant as the particle mass flow rate increased.
机译:已经提出了新颖的颗粒释放模式作为增加高温降落颗粒接收器的热效率的手段。创新的释放方式提供了利用光俘获和体积加热效应作为提高颗粒温度的手段,从而超过了传统的直线型粒子释放方式。在这项工作中探索的粒子释放模式包括波状模式和垂直于入射辐射的一系列平行帘幕,这些在先前的数值研究中在较低的粒子温度下显示了令人满意的结果。最近,在桑迪亚国家实验室的国家太阳能热测试设施中开发了一个现有的下落粒子接收器的数值模型,以在评估辐射和对流损耗所需的高温下评估这些模式。该模型表明,与传统的平面释放相比,使用这些模式可以提高2.5-4.6%的热效率,具体取决于颗粒质量流量。还发现增加平行帘的数量,增加帘之间的间隔以及将颗粒质量流率更深地转移到接收器腔中,可以提高热效率。随着颗粒质量流量的增加,这些影响变得不那么明显。

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