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摘要
结合建筑结构在太阳能领域的蓄热控温特点,采用“两步法”制备出适用于太阳能蓄热的新型石蜡/CNTs相变乳液,通过纳米粒度电位仪和布鲁克旋转黏度仪分析了CNTs掺量对相变乳液技术性能的影响,确定最佳CNTs掺量;再采用差示扫描量热仪、导热系数测定仪、自制太阳光-热转换装置及紫外/可见/近红外分光光度计探究相变乳液的热物性能和光-热转换性能。结果表明,随着CNTs掺量的增大,相变液滴的粒径分布和运动黏度发生较为明显的变化,综合考虑相变乳液的稳定性及泵送性,推荐石蜡相变乳液中CNTs的最佳掺量控制为0.6%。由于石蜡具有较高的相变储热性能及CNTs具有较大的导热系数,掺加石蜡/CNTs能够显著增强相变乳液的导热性能和光-热转换能力,完全可用于建筑结构中以达到对太阳光辐射的蓄热与调温作用。
Abstract
Combined with the heat storage temperature control performance of building structure in the field of solar energy,the “two-step method” was applied to prepare a new type of paraffin/carbon nanotube(CNTs) solar heat storage phase change emulsion.The nano particle potentiometer and brooke rotating viscometer were used to study the influence of CNTs content on the technical performance of phase transition emulsion,and determined the optimal amount of CNTs.Moreover,differential scanning calorimetry apparatus,coefficient of thermal conductivity meter,self-control sunlight-thermal conversion device and UV-Vis-NIR spectrophotometer were used to explore the phase change thermal performance and light-heat conversion performance of emulsion.The results shown that as the content of CNTs increased,the particle size distribution and kinematics viscosity of phase change droplets changed significantly.Considering the stability and pumping performance of phase change emulsion,it was recommended that the content of CNTs in paraffin phase change emulsion should be controlled at 0.6%.Due to the high phase change heat storage performance of paraffin and the relatively high thermal conductivity of CNTs,the addition of paraffin/CNTs can significantly enhanced the thermal conductivity and light-heat conversion ability of phase change emulsion,which can be fully used in building structures to achieve thermal storage and temperature regulation of solar radiation.
关键词
石蜡
/
相变材料
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相变乳液
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热性能
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光-热转换
Key words
paraffin
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CNTs
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phase change emulsion
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thermal property
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photo-thermal property
太阳能建筑用石蜡/CNTs相变乳液的制备及光-热性能研究[J].
化工新型材料, 2021, 49(3): 113-116 DOI:10.19817/j.cnki.issn 1006-3536.2021.03.025
[1] 陈玉娇,李科群,倪康康,等.槽式太阳能热发电系统分析[J].太阳能学报,2017,38(12):22-27.
[2] 何伟骥.夏热冬冷地区太阳能利用与建筑整合设计策略研究[D].杭州:浙江大学,2007.
[3] 尚建丽,张浩.相变蓄能材料在建筑中应用现状与展望[J].化工新型材料,2014(9):197-199.
[4] Wang F,Liu J,Fang X,et al.Graphite nanoparticles-dispersed paraffin/water emulsion with enhanced thermal-physical property and photo-thermal performance[J].Solar Energy Materials and Solar Cells,2016,147:101-107.
[5] 王浩,何丽红,杨帆,等.聚乙二醇/石墨烯纳米片复合相变材料的制备及其性能研究,应用化工,2018,47(6):1119-1122.
[6] 张树鹏.聚乙二醇/功能化石墨烯层状纳米复合材料热稳定性的提高[J].化学学报(12):75-81.
[7] 陈红兵,闫晓丽,褚赛,等.基于太阳能低温集热蓄热的相变流体制备及性能研究[J].功能材料,2017,48(11):23-37.
[8] 刘臣臻.相变微胶囊储能过程传热与流动特性研究[D].徐州:中国矿业大学,2017.
基金资助
国家自然科学基金资助项目(51778096);重庆交通大学研究生教育创新基金项目资助(2018S0109)