Heat transfer mechanism of microwave heating asphalt concrete based on multi-physical field

被引:0
|
作者
Liu X. [1 ]
Zhao Y. [1 ]
Wei Z. [1 ]
Yan D. [1 ]
机构
[1] School of Civil Engineering, Central South University, Changsha
基金
中国国家自然科学基金;
关键词
Asphalt concrete; Heat transfer performance; Microwave heating; Multi-physical field; Numerical simulation; Temperature uniformity;
D O I
10.11817/j.issn.1672-7207.2021.07.019
中图分类号
学科分类号
摘要
The poor thermal conductivity of traditional asphalt concrete will lead to the problems of poor temperature uniformity and small depth of microwave heating. In order to explore the factors that affect the heat transfer performance, a heat transfer model was established based on Maxwell equation and Fourier equation by numerical simulation method. The effects of electromagnetic field, material dielectric constant and heat conduction structure on the heat transfer performance of asphalt concrete during microwave heating were analyzed. The results show that the electromagnetic field is the external factor affecting the temperature increasing rate and heat transfer performance of the model during microwave heating. The larger the electromagnetic field intensity, the higher the microwave heating temperature, the more the area, and the better the temperature uniformity of the model. The TCOV(temperature coefficient of varation) of the double waveguide structure model is about 16% lower than that of the single waveguide structure model. For the internal factors, the higher the dielectric constant will increase the microwave heating rate, but the temperature uniformity will become worse. The addition of the heat conduction structure can significantly improve the heat transfer performance of the model. When the heat conduction structure is located near the microwave emission source, the temperature uniformity of the model is the best compared with that of other layout methods, and the TCOV of the model can be increased by 17.5% compared with the ordinary asphalt concrete model. In conclusion, in the case of a certain external electromagnetic field, the heat transfer performance of asphalt concrete can be improved by changing its dielectric constant and constructing a high heat conduction structure inside. © 2021, Central South University Press. All right reserved.
引用
收藏
页码:2321 / 2331
页数:10
相关论文
共 23 条
  • [11] CHEN Lujun, The study of asphalt's electric and thermal field based on microwave heating and its control, pp. 1-18, (2016)
  • [12] LI Wanli, YU Ruikun, ZHU Fumin, Microwave heating mechanism and simulation of retreading machine of bituminous concrete surface course, Journal of Tongji University(Natural Science), 35, 4, pp. 472-476, (2007)
  • [13] ZHU Songqing, SHI Jinfei, LIU Haikuan, Et al., Research on heat and mass transfer within moisture recycled asphalt mixtures subjected to microwave heating, China Journal of Highway and Transport, 22, 1, pp. 120-126, (2009)
  • [14] GU Hairong, QI Boyi, DONG Qiangzhu, Et al., Infrared heating test device and method
  • [15] SUN Tongsheng, SHI Jinfei, ZHANG Zhisheng, Heat transfer model and solution of microwave hot recycling for asphalt pavement, Journal of Traffic and Transportation Engineering, 8, 5, pp. 49-53, (2008)
  • [16] LI Ziguang, REN Wu, HUANG Ying, Et al., ANSYS-based temperature control and simulation and experiment on microwave-heating recycling asphalt pavement, Chinese Journal of Construction Machinery, 8, 2, pp. 204-207, (2010)
  • [17] GUO Xiaohong, Temperature variation during heating of asphalt pavement and goal achievement of on-site hot mix recycling, Road Machinery & Construction Mechanization, 31, 2, pp. 33-37, (2014)
  • [18] CHEN Lujun, SUN Tongsheng, XU Dezhang, Research on heat transfer model of microwave heating asphalt mixtures, Journal of Jinggangshan University(Natural Science), 37, 3, pp. 70-75, (2016)
  • [19] LI He, SHI Shiliang, LU Jiexin, Et al., Pore structure and multifractal analysis of coal subjected to microwave heating, Powder Technology, 346, pp. 97-108, (2019)
  • [20] CHEN Fangyuan, WARNING A D, DATTA A K, Et al., Thawing in a microwave cavity: Comprehensive understanding of inverter and cycled heating, Journal of Food Engineering, 180, pp. 87-100, (2016)