Phase-Change/Salt-Based Slow-Release Composite Material for Anti-Icing and Snow-Melting

被引:2
|
作者
Wu, Chuanshan [1 ]
Gao, Dongxing [1 ]
Shangguan, Haonan [2 ]
Chen, Renshan [2 ]
Hou, Changlin [2 ]
机构
[1] Shandong Hispeed Construct Management Grp Co Ltd, Jinan 261500, Peoples R China
[2] Shandong Jiaotong Univ, Sch Civil Engn, Jinan 250357, Peoples R China
关键词
phase-change materials; salt-based slow-release material; road performance; anti-icing and snow-melting performance;
D O I
10.3390/buildings14072177
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Currently, self-desiccating asphalt mixtures on roads mainly incorporate phase-change materials or salt-based slow-release agents individually for de-icing. However, pure phase-change material mixtures have limited anti-freezing efficiency and short heat-release duration, making them impractical for large-scale snow melting; meanwhile, salt-based slow-release agents suffer from rapid deterioration in de-icing performance. To address these issues encountered, herein, we introduce the phase-change/salt-based slow-release composite materials via the integration of these two materials and investigate their pavement and de-icing performance with the asphalt mixture. For the pavement performance, the optimal asphalt-aggregate ratio for the anti-icing asphalt mixture was found to be 5.1% For anti-bonding and de-icing performance, the electrical conductivity tests, bonding pull-off tests, and interfacial contact melting experiments were conducted. The results indicate that the latent heat of the TH-ME5 (phase-change material) can delay the decrease in environmental temperature and inhibit salt release from T-SEN (salt-based slow-release material), thereby extending the lifespan of the anti-icing asphalt mixture. These results demonstrate that the synergistic effect between the two components of the composite material not only enhance the snow-melting and de-icing performance of the asphalt pavement but also prolong the snow-melting time of the pavement in a low-temperature environment.
引用
收藏
页数:17
相关论文
共 8 条
  • [1] Bioinspired solar anti-icing/de-icing surfaces based on phase-change materials
    Sheng, Siyu
    Zhu, Zhicheng
    Wang, Zhanhui
    Hao, Tongtong
    He, Zhiyuan
    Wang, Jianjun
    SCIENCE CHINA-MATERIALS, 2022, 65 (05) : 1369 - 1376
  • [2] Improvement of Numerical Simulation for Melting of the Composite Phase-Change Material Based on the Comparison with Experiment
    Zhao, Lina
    Chen, Baoming
    Li, Xiangyu
    Wang, Huilin
    Li, Qiangmin
    ENERGY TECHNOLOGY, 2025,
  • [3] Potential anti-icing applications of encapsulated phase change material - embedded coatings; a review
    Yancheshme, Amir Azimi
    Allahdini, Anahita
    Maghsoudi, Khosrow
    Jafari, Reza
    Momen, Gelareh
    JOURNAL OF ENERGY STORAGE, 2020, 31
  • [4] Bioinspired solar anti-icing/de-icing surfaces based on phase-change materials基于相变材料的仿生太阳能防冰/除冰材料
    Siyu Sheng
    Zhicheng Zhu
    Zhanhui Wang
    Tongtong Hao
    Zhiyuan He
    Jianjun Wang
    Science China Materials, 2022, 65 : 1369 - 1376
  • [5] Preparation and thermal properties of Glauber's salt-based phase-change materials for Qinghai-Tibet Plateau solar greenhouses
    Jiang, Zipeng
    Tie, Shengnian
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2017, 31 (16-19):
  • [6] Effect of Carbon Black and Titanium Dioxide Dispersants on Solidification of Multiwall Carbon Nanotube-Added Salt-Based Phase Change Material
    Rajagopalan, Sudheer
    Prabhu, K. N.
    MATERIALS PERFORMANCE AND CHARACTERIZATION, 2021, 10 (01) : 278 - 284
  • [7] Enabling superior thermo-mechanical performance of hydrated salt-based phase change energy storage cementitious composite using graphene oxide reinforced micro-interface
    Jia, Minjie
    Yu, Kunyang
    Liu, Yushi
    Yang, Yingzi
    JOURNAL OF BUILDING ENGINEERING, 2023, 76
  • [8] Form-stable phase change material based on Na2CO3•10H2O-Na2HPO4•12H2O eutectic hydrated salt/expanded graphite oxide composite: The influence of chemical structures of expanded graphite oxide
    Liu, Yushi
    Yang, Yingzi
    RENEWABLE ENERGY, 2018, 115 : 734 - 740