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Numerical investigation of direct absorption solar collectors (DASC), based on carbon-nanohorn nanofluids, for low temperature applications

机译:基于碳纳米角纳米流体的直接吸收式太阳能集热器(DASC)的低温应用的数值研究

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摘要

Direct absorption solar collector (DASC) have recently attracted increasing interest in combination with some new absorbing fluids, obtained through the suspension of nanoparticles in water or other liquids (nanofluids). A volumetric direct absorption in a solar collector is in principle more convenient than a superficial indirect one, assuring a temperature distribution whose peak is internal to the fluid instead and not on the external surface, as in superficial one, thus promising lower heat losses. Nanofluids, i.e. fluids with a suspension of nanoparticles, such as the carbon nanohorns we choose as case study, can be considered a good and innovative family of absorbing fluids, due to their higher absorption coefficient than the pure base fluid and to their high stability under moderate temperature gradients. In this paper, we focus on the application of direct volumetric absorption by nanofluids for civil applications, which have a typical operative temperature lower than 100 degrees C. A DASC using nanofluids with different nanoparticle concentrations is compared to a commercially available indirect vacuum tube solar collector. The comparison is made between simulated performance of the DASC and the nominal performance of the commercial collector. The simulations are made with a CFD model, that leverages original experimental measurements of the optical properties of the considered nanofluid. It is shown that the DASC concept is more convenient in case of higher heat losses, i.e. in case of a high transmittance solar collector or of very high temperature of the heated fluid. It is also underlined the importance of balancing the heat absorption and heat transport function of the fluid. The simulations of the first considered design reveals, in fact, that the thermal field does not completely develop in the pipe, due to the large pipe diameter in relation to the flow and to the low heat losses, thus producing a low bulk temperature. The addition of a compound parabolic concentrator (CPC) and the adoption of an annular pipe (triple tube) improve the performance in terms of average bulk temperature, though not matching yet the surface reference collector in terms of efficiency.
机译:直接吸收式太阳能收集器(DASC)最近与通过纳米粒子在水或其他液体(纳米流体)中悬浮而获得的一些新的吸收性流体相结合,引起了越来越多的兴趣。原理上,集热器中的体积直接吸收比表面集热器更方便,从而确保了温度分布,该温度分布的峰值位于流体内部而不是表面,而不是表面集热,因此有望降低热量损失。纳米流体,即具有纳米颗粒悬浮液的流体,例如我们作为案例研究选择的碳纳米角,由于其吸收系数比纯基础流体更高,并且在高温下具有很高的稳定性,因此可以认为是吸收流体的良好和创新系列。温和的温度梯度。在本文中,我们重点研究纳米流体直接体积吸收在民用领域的应用,其典型工作温度低于100摄氏度。将使用具有不同纳米粒子浓度的纳米流体的DASC与市售间接真空管太阳能集热器进行比较。在DASC的模拟性能和商业收集器的标称性能之间进行比较。使用CFD模型进行仿真,该模型利用了对所考虑的纳米流体的光学特性进行的原始实验测量。已经表明,在较高的热损失的情况下,即在高透射率的太阳能收集器或加热的流体的非常高的温度的情况下,DASC概念更加方便。还强调了平衡流体的吸热和热传递功能的重要性。实际上,第一个考虑设计的模拟表明,由于相对于流量较大的管径和较低的热损失,因此不会在管道中完全形成热场,从而产生较低的总体温度。添加复合抛物线浓缩器(CPC)和采用环形管(三重管)可提高平均体温方面的性能,尽管在效率上还不能与表面参考收集器相匹配。

著录项

  • 来源
    《Solar Energy》 |2020年第1期|166-175|共10页
  • 作者

  • 作者单位

    Politecn Torino Dept Energy Corso Duca Abruzzi 24 I-10129 Turin Italy;

    CNR Natl Res Council Natl Inst Opt INO Largo E Fermi 6 I-50125 Florence Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanofluids; Carbon nanohorns; Solar direct absorption; Solar collector; CFD;

    机译:纳米流体;碳纳米角;太阳直接吸收;太阳能集热器;差价合约;

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