期刊文献+

石墨化温度对多孔碳微球/石蜡复合相变热界面材料性能的影响(英文)

Effect of Graphitization Temperature on the Performance of Porous Carbon Microspheres/Paraffin Composite Phase Change Thermal Interface Materials
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摘要 文章利用葡萄糖水热法合成炭微球,并用氢氧化钾进行烧结处理,得到多孔结构的炭微球。在以硝酸铁为催化剂的条件下,对多孔炭微球进行不同温度下的石墨化处理,利用SEM、XRD、FTIR和BET对材料进行了表征。结果表明,炭微球表现出了良好的球形形貌、丰富的孔结构及大的比表面积。炭微球在经过1500℃处理后,其石墨化程度达90%。通过对石蜡进行物理吸附,制备了多孔石墨化炭微球/石蜡相变复合材料并用作热界面材料,其热导率随石墨化温度的增加而增加。 Graphitized porous carbon microspheres/paraffin composite phase change materials were prepared which could be used for the thermal management. KOH was introduced to help carbon microspheres to form the porous structure. The porous carbon microspheres exhibited good sphericity, abundant pores and large surface area, which would be more convenient to absorb the paraffin. The porous carbon microspheres were treated under different temperatures using Fe(NO3)3 as catalyst to investigate the degree of graphitization. The graphitization temperature played an important role in improving the thermal conductivity of the phase change composite.
出处 《集成技术》 2014年第6期29-35,共7页 Journal of Integration Technology
基金 Guangdong Innovative Research Team Program(2011D052) Shenzhen Peacock Pragram(KYPT20121228160843692) Shenzhen Electronic Packaging Materials(深发改【2012】372号)
关键词 多孔炭微球 石墨化 相变 热界面材料 石蜡 porous carbon microspheres graphitization phase change thermal interface materials parafifn
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  • 1曹乃珍,沈万慈,金传波.膨胀石墨吸附有机化合物的极性效应[J].化学通报,1996(10):43-44. 被引量:2
  • 2[1]Zalba B, Marin J M, Cabeza L F, et al. Review on thermal energy storage with phase change : material, heat transfer analysis and applications[J]. Applied Thermal Engineering,2003, 23: 251-283. 被引量:1
  • 3[2]Bo H, Fredrik S. Technical grade paraffin waxes as phase change materials for cool thermal storage and cool storage systems capital cost estimation[J]. Energy Conversion & ManAgement, 2002, 43(13) : 1709-1723. 被引量:1
  • 4[3]Tong X, Khan J, Amin M R. Enhancement of heat transfer by inserting a metal matrix into a phase change material[ J].Numer Heat Transfer, Part A, 1996, 30: 125-141. 被引量:1
  • 5[4]Velraj R, Seeniraj R V , Hafner B, et al. Heat transfer enhancement in a latent heat storage system[J]. Solar Energy,1999, 65: 171-180. 被引量:1
  • 6[5]Cho K, Choi S H. Thermal characteristics of paraffin in a spherical capsule during freezing and melting processes [ J].International Journal of Heat and Mass Transfer, 2000, 43:3183-3196. 被引量:1
  • 7[6]Hawlader M N A, Uddin M S, Khin M M. Microencapsulated PCM thermal-energy storage system [ J ]. Applied Energy,2003, 74: 195-202. 被引量:1
  • 8[7]Hong Y, Shi G X. Preparation of polysthylene-paraffin compound as a form-stable solid-liquid phase change material[ J].Solar Energy Material and Solar Cells, 2000, 64: 37-44. 被引量:1
  • 9[8]Inagaki M, Suwa T. Pore structure analysis of exfoliated graphite using image processing of scanning electron micrographs[J]. Carbon, 2001, 39: 915-920. 被引量:1

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