...
首页> 外文期刊>RSC Advances >Ultrafast thermal charging of inorganic nano-phase change material composites for solar thermal energy storage
【24h】

Ultrafast thermal charging of inorganic nano-phase change material composites for solar thermal energy storage

机译:用于太阳能储热的无机纳米相变材料复合材料的超快热充电

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

The present research article reports the heat transfer characteristics of nano-phase change material (NPCM) composites: nanographite (NG)-PCM composites and multi-walled carbon nanotube (CNT)-PCM composites. For the preparation of NPCM composites, inorganic PCM, magnesium nitrate hexahydrate (Mg(NO3)(2)center dot 6H(2)O) was used as the pristine PCM and nanocellulose was used as a stabilizing agent. NG-PCM composites were prepared by varying the concentration of NG from 0.1-0.6 wt%, whereas CNT-PCM composites were prepared using 0.1 and 0.2 wt% of CNT. The prepared NPCM composites exhibited enhanced thermal conductivity and a faster heating rate than pristine PCMs. Two different experimental setups were used for investigating the heat transfer characteristics of the prepared NPCM composites during the melting and solidification processes: (i) conventional heating and (ii) solar illumination. The experimental observations indicated a higher heat transfer rate in the NPCM composites as compared to pristine PCM for both experimental setups. It was observed that the heating melting and solidification rate using a conventional heating setup increased by 48% and 77%, respectively, for NG-PCM composites (at 0.6 wt%) & 24% and 15%, respectively for CNT-PCM composites (at 0.2 wt%). Upon solar illumination, both NG-PCM and CNT-PCM composites demonstrated an ultrafast heating rate (of the order of few seconds) and a higher heating temperature than the conventional heating based approach. The ultrafast heating of NPCM composites upon solar illumination was attributed to the plasmonic heating effect of carbon nanomaterials, which instantly convert optical energy into heat at nanometer scale in addition to conventional thermal diffusion based slow heating, the sole mechanism responsible for slow heating of PCM composites in a conventional heating setup. Out of the two carbon nanofillers used, CNTs were shown to have a better heat transfer performance than NGs to collect, convert and store the broad spectrum solar energy as thermal energy.
机译:本研究文章报道了纳米相变材料(NPCM)复合材料的传热特性:纳米石墨(NG)-PCM复合材料和多壁碳纳米管(CNT)-PCM复合材料。为了制备NPCM复合材料,无机PCM,六水合硝酸镁(Mg(NO3)(2)中心点6H(2)O)被用作原始PCM,而纳米纤维素被用作稳定剂。 NG-PCM复合材料是通过将NG的浓度从0.1-0.6 wt%改变而制备的,而CNT-PCM复合材料是使用0.1和0.2 wt%的CNT制备的。制备的NPCM复合材料比原始PCM具有更高的导热性和更快的加热速率。两种不同的实验装置用于研究熔融和凝固过程中制备的NPCM复合材料的传热特性:(i)传统加热和(ii)太阳照明。实验观察表明,在两种实验设置中,与原始PCM相比,NPCM复合材料的传热速率都更高。观察到,对于NG-PCM复合材料(0.6 wt%),使用常规加热装置的加热熔融和凝固速率分别提高了48%和77%;对于CNT-PCM复合材料,其分别提高了24%和15%(在0.2重量%)。在日光照射下,NG-PCM和CNT-PCM复合材料均显示出超快的加热速度(几秒钟的数量级)和比传统的基于加热的方法更高的加热温度。 NPCM复合材料在太阳照射下的超快加热归因于碳纳米材料的等离子加热效应,除了常规的基于热扩散的缓慢加热外,碳纳米材料的等离子加热效应可将光能立即转化为纳米级的热,这是造成PCM复合材料缓慢加热的唯一机制在常规加热装置中。在所使用的两种碳纳米填料中,碳纳米管的传热性能要优于NGs,以收集,转换和存储广谱太阳能作为热能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号