An Ultra-Thin, Microwave-Absorbing Wear Layer for Pavement Deicing

被引:5
|
作者
Liu, Xiaoming [1 ]
Chang, Fei [1 ]
Zhao, Yu [1 ]
机构
[1] Cent South Univ, Sch Civil Engn, Changsha 410075, Peoples R China
基金
中国国家自然科学基金;
关键词
asphalt concrete; ultra-thin microwave-absorbing wear layer; microwave deicing; energy saving; ASPHALT MIXTURES; AGGREGATE; CONCRETE;
D O I
10.3390/ma16083080
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
Microwave heating is widely employed in pavement deicing. However, it is difficult to improve the deicing efficiency because only a small part of the microwave energy is used and most of it is wasted. To improve the utilization efficiency of microwave energy and the deicing efficiency, we used silicon carbide (SiC)-replaced aggregates in asphalt mixtures to prepare an ultra-thin, microwave-absorbing wear layer (UML). The SiC particle size, SiC content, oil-stone ratio and thickness of the UML were determined. The effect of the UML on energy saving and material reduction was also evaluated. Results show that only a 10 mm UML was needed to melt a 2 mm ice layer within 52 s at -20 degrees C and rated power. In addition, the minimum layer thickness to meet the specification requirement (>= 2000 mu epsilon) of asphalt pavement was also 10 mm. SiC with larger particle sizes increased the temperature rise rate but decreased the temperature uniformity, instead increasing the deicing time. The deicing time of a UML with SiC particle size less than 2.36 mm was 35 s shorter than that of a UML with SiC particle size greater than 2.36 mm. Furthermore, more SiC content in the UML resulted in a higher temperature rise rate and less deicing time. The temperature rise rate and deicing time of the UML with 20% SiC were 4.4 times and 44% of those of the control group. When the target void ratio was 6%, the optimum oil-stone ratio of UML was 7.4%, and it had good road performance. Compared to overall heating, the UML saved 75% of power and SiC material under the same heating efficiency. Therefore, the UML reduces microwave deicing time and saves energy and material.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Numerical analysis on mechanical characteristics of an ultra-thin wear course in asphalt pavement: impacts of material modulus and thickness
    Wang, Hongyu
    Zhao, Xiaojiong
    Chen, Yan
    Zhou, Zhihang
    Ma, Tao
    Hu, Jianying
    INTERNATIONAL JOURNAL OF PAVEMENT ENGINEERING, 2024, 25 (01)
  • [22] LPE growth of ultra-thin InGaAsP layer
    Bo, BX
    Zhu, BR
    Zhang, BS
    Zhang, XD
    THIRD INTERNATIONAL CONFERENCE ON THIN FILM PHYSICS AND APPLICATIONS, 1998, 3175 : 433 - 435
  • [23] AUTL bituminous mixtures for ultra-thin layer
    Ortiz Ripoll, Jorge
    Crisén Grau, Xavier
    Giralt Lladanosa, Julia
    Carreteras, 2019, 4 (223): : 71 - 82
  • [24] Study on ultra-thin AlGaAs layer on GaAs
    Wuli Xuebao, 8 (1616-1617):
  • [25] A compact ultra-thin ultra-wideband microwave metamaterial absorber
    Ramya, S.
    Rao, I. Srinivasa
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2017, 59 (08) : 1837 - 1845
  • [26] An ultra-thin ultra-broadband microwave absorber for radar stealth
    Zeng Qu
    Jingxian Hao
    Huihui Jing
    Yiqing Wei
    Junping Duan
    Jiayun Wang
    Binzhen Zhang
    Advanced Composites and Hybrid Materials, 2022, 5 : 1778 - 1785
  • [27] An ultra-thin ultra-broadband microwave absorber for radar stealth
    Qu, Zeng
    Hao, Jingxian
    Jing, Huihui
    Wei, Yiqing
    Duan, Junping
    Wang, Jiayun
    Zhang, Binzhen
    ADVANCED COMPOSITES AND HYBRID MATERIALS, 2022, 5 (03) : 1778 - 1785
  • [28] Application of metamaterials to ultra-thin radar-absorbing material design
    Gao, Q
    Yin, Y
    Yan, DB
    Yuan, NC
    ELECTRONICS LETTERS, 2005, 41 (17) : 936 - 937
  • [29] Scaled physical modelling of ultra-thin continuously reinforced concrete pavement
    Smit, M. S.
    Kearsley, E. P.
    Jacobsz, S. W.
    PHYSICAL MODELLING IN GEOTECHNICS, VOL 1, 2018, : 179 - 184
  • [30] Durability Investigation of Ultra-Thin Polyurethane Wearing Course for Asphalt Pavement
    Wang, Wenguang
    Liu, Baodong
    Jin, Dongzhao
    Yu, Miao
    Zeng, Junsen
    MATERIALS, 2024, 17 (20)