Improving the thermal conductivity and shape-stabilization of phase change materials using nanographite additives

被引:285
|
作者
Shi, Jia-Nan [2 ]
Ger, Ming-Der [3 ]
Liu, Yih-Ming [3 ]
Fan, Yang-Cheng [3 ]
Wen, Niann-Tsyr [4 ]
Lin, Chaur-Kie [5 ]
Pu, Nen-Wen [1 ]
机构
[1] Yuan Ze Univ, Dept Photon Engn, Tao Yuan 320, Taiwan
[2] Natl Def Univ, Chung Cheng Inst Technol, Sch Def Sci, Tao Yuan 335, Taiwan
[3] Natl Def Univ, Chung Cheng Inst Technol, Dept Chem & Mat Engn, Tao Yuan 335, Taiwan
[4] Chung Shan Inst Sci & Technol, Chem Syst Res Div, Tao Yuan 335, Taiwan
[5] Ching Yun Univ, Dept Mech Engn, Tao Yuan 320, Taiwan
关键词
PARAFFIN/EXPANDED GRAPHITE COMPOSITE; ENERGY-STORAGE; CARBON NANOTUBES; GRAPHENE;
D O I
10.1016/j.carbon.2012.08.068
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Improvements in the thermal conductivity and shape-stability of paraffin phase change materials (PCMs) by adding exfoliated graphite nanoplatelets (xGnP) or graphene were compared. The composite PCMs were fabricated by mixing paraffin with xGnP or graphene in hot toluene, followed by solvent evaporation and vacuum drying. A larger increase in thermal conductivity was observed for paraffin/xGnP, with a 10 wt.% xGnP loading producing a more than 10-fold increase. Graphene shows a lower electrical percolation threshold and offers a much larger increase in the electrical conductivity of paraffin than xGnP. However, its thermal conductivity increase is much lower. Despite the excellent thermal conductivity of single-flake graphene, the large density of nanointerfaces due to the small size of the graphene flakes significantly impedes heat transfer. We also found that graphene is much more effective than xGnP as a shape-stabilizing filler. At 2 wt.% graphene loading, paraffin maintains its shape up to 185.2 degrees C, well above the operating temperature range of paraffin PCMs, while the paraffin/xGnP counterpart is shape-stable up to 67.0 degrees C only. Small amounts of graphene and xGnP can be used in combination as a low-cost and effective improver for both the heat diffusion and shape-stabilization of paraffin PCMs. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:365 / 372
页数:8
相关论文
共 50 条
  • [1] Systematic review of encapsulation and shape-stabilization of phase change materials
    Cardenas-Ramirez, Carolina
    Jaramillo, Franklin
    Gomez, Maryory
    JOURNAL OF ENERGY STORAGE, 2020, 30
  • [2] A novel shape-stabilization strategy for phase change thermal energy storage
    Liu, Changhui
    Xu, Ze
    Song, Yan
    Lv, Peizhao
    Zhao, Jiateng
    Liu, Chenzhen
    Huo, Yutao
    Xu, Ben
    Zhu, Chunyu
    Rao, Zhonghao
    JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (14) : 8194 - 8203
  • [3] Thermal and characteristic analysis of shape-stabilization phase change materials by advanced vacuum impregnation method using carbon-based materials
    Lee, Jongki
    Wi, Seunghwan
    Yun, Beom Yeol
    Chang, Seong Jin
    Kim, Sumin
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2019, 70 : 281 - 289
  • [4] Hybrid graphene aerogels/phase change material composites: Thermal conductivity, shape-stabilization and light-to-thermal energy storage
    Yang, Jie
    Qi, Guo-Qiang
    Liu, Yang
    Bao, Rui-Ying
    Liu, Zheng-Ying
    Yang, Wei
    Xie, Bang-Hu
    Yang, Ming-Bo
    CARBON, 2016, 100 : 693 - 702
  • [5] Skeleton materials for shape-stabilization of high temperature salts based phase change materials: A critical review
    Jiang, Feng
    Zhang, Lingling
    She, Xiaohui
    Li, Chuan
    Cang, Daqiang
    Liu, Xianglei
    Xuan, Yimin
    Ding, Yulong
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 119 (119):
  • [6] Shape-stabilization micromechanisms of form-stable phase change materials-A review
    Zhang, Yuang
    Jia, Zhaoying
    Hai, Abdul Moqeet
    Zhang, Shufen
    Tang, Bingtao
    COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2022, 160
  • [7] Development and evaluation of gypsum/shape-stabilization phase change materials using large-capacity vacuum impregnator for thermal energy storage
    Lee, Jongki
    Wi, Seunghwan
    Yun, Beom Yeol
    Yang, Sungwoong
    Park, Ji Hun
    Kim, Sumin
    APPLIED ENERGY, 2019, 241 : 278 - 290
  • [8] Shape-stabilization of polyethylene glycol phase change materials with chitin nanofibers for applications in "smart" windows
    Wijesena, Ruchira N.
    Tissera, Nadeeka D.
    Rathnayaka, V. W. S. G.
    Rajapakse, H. D.
    de Silva, Rohini M.
    de Silva, K. M. Nalin
    CARBOHYDRATE POLYMERS, 2020, 237
  • [9] Shape-Stabilization of Phase Change Materials with Carbon-Conscious Poly(hydroxy)Urethane Foams
    Lee, Minjung
    Dahlhauser, Samuel D.
    Lucci, Chloe
    Donohoe, Bryon S.
    Allen, Robert D.
    Rorrer, Nicholas A.
    ADVANCED FUNCTIONAL MATERIALS, 2025,
  • [10] Thermal performance and shape-stabilization of comb-like polymeric phase change materials enhanced by octadecylamine-functionalized graphene oxide
    Li, Shuqin
    Kong, Lei
    Wang, Haixia
    Xu, Hongxing
    Li, Jing
    Shi, Haifeng
    ENERGY CONVERSION AND MANAGEMENT, 2018, 168 : 119 - 127