Enhanced thermal conductivity of a superhydrophobic thermal energy storage coating based on artificially cultured diatom frustules

被引:10
|
作者
Li, Dandan [1 ]
Sun, Haoyang [1 ]
Li, Tao [1 ]
Yang, Meng [1 ]
Xiong, Tiancheng [1 ]
Sun, Dazhi [1 ]
机构
[1] Southern Univ Sci & Technol, Dept Mat Sci & Engn, Guangdong Prov Key Lab Funct Oxide Mat & Devices, Shenzhen 518055, Guangdong, Peoples R China
关键词
Artificially cultured diatom frustules; Thermal conductivity; Shape-stabilized phase change materials; Superhydrophobic coatings; PHASE-CHANGE MATERIALS; CHANGE COMPOSITES; NANOPARTICLES; SURFACES; PCMS; ACID;
D O I
10.1016/j.apenergy.2023.121462
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Solid-liquid phase change materials (PCMs) provide an eco-friendly and cost-effective solution for waste heat recovery and thermal management. However, leakage and low thermal conductivity are two long-standing bottlenecks for their large-scale application. Applying a synthesized multi-level porous scaffold to prepare shape-stabilized PCMs (ss-PCMs) is an efficient, but high-cost strategy used to address the above problem. Herein, a strategy for fabricating enhanced thermally conductive ss-PCM coatings has been developed using artificially cultured, hierarchically porous Ag nanoparticle decorated diatom frustules (Ag-DFs) utilizing a facile spray-coating method. The delicate pores and high specific surface area (101.78 m(2)/g) endow the Ag-DFs to adsorb 55 wt% of paraffin wax (PW) without leakage, thereby exhibiting a melting enthalpy of 114.27 J/g. The corresponding ss-PCM coatings demonstrate a thermal conductivity of 0.87 W/m center dot K, which is similar to 2.95-fold higher than pure PW. In addition, the abundant micro/nanoscale texture in the Ag-DFs along with the low-surface-energy of PW synergistically produce superhydrophobicity in the coating, thereby improving its ability to resist external environmental impacts, extending the service life. With high energy storage density, enhanced thermal conductivity, and good scalability, our superhydrophobic ss-PCM coating should find potential use in energy-saving building materials and thermal management of electrical devices, as well as self-cleaning surfaces.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Hydrogen storage systems based on hydride materials with enhanced thermal conductivity
    Wang, Hui
    Prasad, Ajay K.
    Advani, Suresh G.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (01) : 290 - 298
  • [22] WOOD/PCM composite with enhanced energy storage density and anisotropic thermal conductivity
    Chen, Hongfei
    Xuan, Jihang
    Deng, Qiaoling
    Gao, Yanfeng
    PROGRESS IN NATURAL SCIENCE-MATERIALS INTERNATIONAL, 2022, 32 (02) : 190 - 195
  • [23] Prediction of stability and thermal conductivity of nanofluids for thermal energy storage applications
    Mahmoud, B. H.
    Fairweather, M.
    Mortimer, L. F.
    Peakall, J.
    Rice, H. P.
    Harbottle, D.
    28TH EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2018, 43 : 61 - 66
  • [24] The preparation of a suspension of microencapsulated phase change material (MPCM) and thermal conductivity enhanced by MXene for thermal energy storage
    Jin, Weizhun
    Huang, Qinghua
    Huang, Haimeng
    Lin, Zhengxiang
    Zhang, Jinghui
    Zhi, Fangfang
    Yang, Guohui
    Chen, Zhiyou
    Wang, Lei
    Jiang, Linhua
    JOURNAL OF ENERGY STORAGE, 2023, 73
  • [25] Enhanced thermal conductivity of palmitic acid/copper foam composites with carbon nanotube as thermal energy storage materials
    Cong, Rongshuai
    Xu, Changlu
    Chen, Yunkang
    Ran, Fengming
    Fang, Guiyin
    Journal of Energy Storage, 2021, 40
  • [26] Microencapsulated heptadecane with calcium carbonate as thermal conductivity-enhanced phase change material for thermal energy storage
    Sari, Ahmet
    Saleh, Tawfik A.
    Hekimoglu, Gokhan
    Tyagi, V. V.
    Sharma, R. K.
    JOURNAL OF MOLECULAR LIQUIDS, 2021, 328
  • [27] Experimental Study of Thermal Conductivity Effect on the Performance of Thermal Energy Storage
    Sadiq, Hassan Hadi
    Mussa, Munther Abdullah
    JORDAN JOURNAL OF MECHANICAL AND INDUSTRIAL ENGINEERING, 2022, 16 (04): : 557 - 565
  • [28] Enhanced thermal conductivity of palmitic acid/mullite phase change composite with graphite powder for thermal energy storage
    Gu, Xiaobin
    Liu, Peng
    Bian, Liang
    He, Huichao
    RENEWABLE ENERGY, 2019, 138 : 833 - 841
  • [29] Enhanced thermal conductivity of palmitic acid/copper foam composites with carbon nanotube as thermal energy storage materials
    Cong, Rongshuai
    Xu, Changlu
    Chen, Yunkang
    Ran, Fengming
    Fang, Guiyin
    JOURNAL OF ENERGY STORAGE, 2021, 40
  • [30] Thermal conductivity of zirconia-based ceramics for thermal barrier coating
    Leclercq, B
    Mévrel, R
    Liedtke, V
    Hohenauer, W
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2003, 34 (04) : 406 - 409