Numerical analysis for cooling effect of open boundary ripped-rock embankment on Qinghai-Tibetan railway

被引:50
作者
Lai Yuanming [1 ]
Zhang Mingyi [1 ]
Liu Zhiqiang [1 ]
Yu Wenbing [1 ]
机构
[1] Chinese Acad Sci, State Key Lab Frozen Soil Engn, Cold & Arid Reg Environm & Engn Res Inst, Lanzhou 730000, Peoples R China
来源
SCIENCE IN CHINA SERIES D-EARTH SCIENCES | 2006年 / 49卷 / 07期
关键词
open boundary; ripped-rock embankment; cooling effect; Qinghai-Tibetan railway;
D O I
10.1007/s11430-006-0764-z
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
The heat convection of fluid inside the ballast layer and ripped-rock layer, which are regarded as porous media in railway embankment, is a process of heat and mass transfer. At present, the ripped-rock embankment, as a new type of embankment structure, has widely been used in the construction of Qinghai-Tibetan railway. However, because its ripped-rock layer is almost open in two bilateral boundaries and closed at top and bottom, and air can flow into/out of the ballast layer and ripped-rock layer, the convection and transfer heat patterns are very complicated in the embankment. Therefore, based on the temperature and geology conditions of the Qinghai-Tibetan Plateau, a numerical approach of the unsteady two-dimensional continuity, momentum (non-Darcy flow) and energy equations of heat convection for incompressible fluid in porous media is provided to analyze the velocity and temperature characteristics of the ripped-rock embankment with different embankment heights under open boundary condition for the coming 50 years in this paper. The calculated results indicate that, due to the influence of the outside wind, the convective heat transfer mainly relies on the forced convection in the open ripped-rock embankment. Even if the air temperature will be warmed up by 2.6 degrees C in the coming 50 years, it still has a better cooling effect on the underlying soils and a low temperature frozen-soil core is formed in the permafrost below it if the embankment is constructed in the regions whose present mean annual air temperature is -4.0 degrees C. Furthermore, the cooling effect of high ripped-rock embankment is better than that of low embankment. This is because the wider bottom of high embankment has a more influence dimension on the underlying frozen soil. However, cardinal winds on the Qinghai-Tibetan Plateau disturb its convection pattern, so that an asymmetric temperature distribution occurs under high embankment and it is possible to induce a transverse uneven deformation of embankment, but no similar situation occurs under low embankment. This asymmetric temperature field problem should be considered when ripped-rock embankment is designed and constructed.
引用
收藏
页码:764 / 772
页数:9
相关论文
共 22 条
[1]  
[Anonymous], [No title captured]
[2]  
[程国栋 Cheng Guodong], 2003, [冰川冻土, Journal of Glaciology and Geocryology], V25, P603
[3]  
Goering D.J., 1998, P 7 INT C PERMAFROST, P319
[4]   Passively cooled railway embankments for use in permafrost areas [J].
Goering, DJ .
JOURNAL OF COLD REGIONS ENGINEERING, 2003, 17 (03) :119-133
[5]  
Kong X., 1999, Advanced Seepage Mechanics
[6]  
Kong Xiangyan, 2002, Acta Mechanica Sinica, V34, P177
[7]   Adjusting temperature distribution under the south and north slopes of embankment in permafrost regions by the ripped-rock revetment [J].
Lai, YM ;
Zhang, SJ ;
Zhang, LX ;
Xiao, JZ .
COLD REGIONS SCIENCE AND TECHNOLOGY, 2004, 39 (01) :67-79
[8]  
Lai YM, 2004, NUMER HEAT TR A-APPL, V45, P191, DOI [10.1080/10407780390244407, 10.1081/10407780390244407]
[9]   Nonlinear thermal analysis for Qing-Tibet railway embankments in cold regions [J].
Lai, YM ;
Li, JJ ;
Niu, FJ ;
Yu, WB .
JOURNAL OF COLD REGIONS ENGINEERING, 2003, 17 (04) :171-184
[10]  
[赖远明 Lai Yuanming], 2004, [冰川冻土, Journal of Glaciology and Geocryology], V26, P576