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Optimization of nanofluid volumetric receivers for solar thermal energy conversion

机译:用于太阳能热能转换的纳米流体容量接收器的优化

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摘要

Improvements in solar-to-thermal energy conversion will accelerate the development of efficient concentrated solar power systems. Nanofluid volumetric receivers, where nanoparticles in a liquid medium directly absorb solar radiation, promise increased performance over surface receivers by minimizing temperature differences between the absorber and the fluid, which consequently reduces emissive losses. We present a combined modeling and experimental study to optimize the efficiency of liquid-based solar receivers seeded with carbon-coated absorbing nanoparticles. A one-dimensional transient heat transfer model was developed to investigate the effect of solar concentration, nanofluid height, and optical thickness on receiver performance. Simultaneously, we experimentally investigated a cylindrical nanofluid volumetric receiver, and showed good agreement with the model for varying optical thicknesses of the nanofluid. Based on the model, the efficiency of nanofluid volumetric receivers increases with increasing solar concentration and nanofluid height. Receiver-side efficiencies are predicted to exceed 35% when nanofluid volumetric receivers are coupled to a power cycle and optimized with respect to the optical thickness and solar exposure time. This work provides insights as to how nanofluids can be best utilized as volumetric receivers in solar applications, such as receivers with integrated storage for beam-down CSP and future high concentration solar thermal energy conversion systems.
机译:太阳能到热能转换的改进将加速高效集中式太阳能发电系统的开发。纳米流体体积接收器(其中液体介质中的纳米粒子直接吸收太阳辐射)通过最小化吸收器和流体之间的温差,从而有望提高表面接收器的性能,从而降低了发射损耗。我们提出了一个组合的模型和实验研究,以优化植入碳涂层吸收性纳米粒子的液基太阳能接收器的效率。开发了一维瞬态传热模型,以研究太阳光浓度,纳米流体高度和光学厚度对接收器性能的影响。同时,我们实验研究了圆柱形纳米流体体积接收器,并显示出与用于改变纳米流体光学厚度的模型的良好一致性。基于该模型,纳米流体体积接收器的效率随着太阳能浓度和纳米流体高度的增加而增加。当将纳米流体体积接收器耦合到电源循环并就光学厚度和太阳照射时间进行优化时,接收器侧效率预计将超过35%。这项工作提供了有关如何将纳米流体最佳地用作太阳能应用中的体积接收器的见解,例如具有集成存储的射束向下CSP接收器和未来的高浓度太阳能热能转换系统。

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