太阳能热水用共晶相变材料纳米复合材料的研制

S. Shankara Narayanan, Abhishek Kardam, Vivek Kumar, Nitin Bhardwaj, Devinder Madhwal, Prashant Shukla, Amit Kumar, Abhishek Verma, V.K. Jain
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引用次数: 57

摘要

有机相变材料(PCMs)作为潜热蓄能介质已被广泛应用于热管理。在这项工作中,制备了一种由两种有机PCM(称为共晶凝胶PCM)和少量(0.5 wt%)纳米石墨(NG)作为支撑材料的混合物组成的PCM纳米复合材料。采用差示扫描量热仪测定了原始PCM、石蜡(61.5℃,161.5 J/g)、共晶凝胶PCM(54℃,158 J/g)和共晶凝胶PCM纳米复合材料(53.5℃,155 J/g)的熔化温度和潜热。制备的PCM纳米复合材料具有增强的导热性和超快的热充电特性。纳米复合材料被用于两种不同的应用:(i)使用本土制造的太阳能热水(SWH)系统提供热水;(ii)可以快速加热和使用的太阳能可充电手套。SWH系统的实验结果表明,使用PCM纳米复合材料有助于提高PCM的充电速率,同时降低PCM对水的放热速率,从而提高太阳能的最大利用率,从而提高SWH系统的效率。对太阳能可充电手套的实验结果表明,该手套具有长达3小时的保温能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of sunlight-driven eutectic phase change material nanocomposite for applications in solar water heating

Organic phase change materials (PCMs) have been utilized as latent heat energy storage medium for effective thermal management. In this work, a PCM nanocomposite, consisting of a mixture of two organic PCMs (referred to as eutectic gel PCM) and minimal amount (0.5 wt%) of nanographite (NG) as a supporting material, was prepared. Differential scanning calorimeter was used to determine the melting temperature and latent heat of pristine PCM, paraffin (61.5 °C and 161.5 J/g), eutectic gel PCM (54 °C and 158 J/g) and eutectic gel PCM nanocomposite (53.5 °C and 155 J/g). The prepared PCM nanocomposites exhibited enhanced thermal conductivity and ultrafast thermal charging characteristics. The nanocomposites were employed for two different applications: (i) providing hot water using an indigenously fabricated solar water heating (SWH) system and (ii) solar rechargeable glove that can be rapidly warmed and used. Experimental results on SWH system show that the use of PCM nanocomposites helps to increase the charging rate of PCM while reducing the discharging rate of heat by PCM to water, thus enhancing the maximum utilization of solar energy and hence improving the efficiency of the SWH system. The experimental results on solar rechargeable glove revealed that the glove has the ability to retain the temperature up to 3 hours.

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