Interface damage and arching mechanism of CRTS II slab track under temperature load

2021 ◽  
Vol 291 ◽  
pp. 123258
Author(s):  
Xuhao Cui ◽  
Bowen Du ◽  
Hong Xiao ◽  
Rui Zhou ◽  
Gaoran Guo ◽  
...  
Structures ◽  
2020 ◽  
Vol 26 ◽  
pp. 224-236 ◽  
Author(s):  
Yang Li ◽  
Jinjie Chen ◽  
Jianxi Wang ◽  
Xianfeng Shi ◽  
Long Chen

Structures ◽  
2020 ◽  
Vol 28 ◽  
pp. 2174
Author(s):  
Yang Li ◽  
Jinjie Chen ◽  
Jianxi Wang ◽  
Xianfeng Shi ◽  
Long Chen

2013 ◽  
Vol 405-408 ◽  
pp. 1824-1829 ◽  
Author(s):  
Si Fang Zhang ◽  
Juan Juan Ren ◽  
Ji Wang

The CRTSⅡ slab track is one of the major ballastless tracks in China. Factors of the design, the construction, the train load and the service environment lead to the wide juncture cracking. The beam-solid model on the elastic foundation was established to carry out the mechanics analysis. Theoretical analysis was made on the influence of the depth and the length of the cracking on mechanical properties of the CRTS Ⅱ slab track. The train load and temperature load can make the increase of the warping of the slab that cause the irregularity of the slab track. When the wide juncture crack completely, the sudden chill can make the slab track crack and effect the quality of ballastless tracks.


2020 ◽  
Vol 10 (8) ◽  
pp. 2654
Author(s):  
Xianhua Chen ◽  
Yu Zhu ◽  
Degou Cai ◽  
Gang Xu ◽  
Tao Dong

The interfacial bond between cement concrete base plate (CCBP) and asphalt concrete waterproofing layer (ACWL) is a weak portion in the newly developed Chinese high-speed railway ballastless track. The interface damage caused due to fluctuating temperature load and dynamic train load is one of the most critical problems in Northern China. This paper aims to investigate the interface damage evolution process under temperature load via experimental and simulation analysis. Full-scale transverse shear tests were performed to explore the interface bond-slip mode of the adjacent ACWL and CCBP. Then, a finite element model of a ballastless track structure was built and a cohesive zone model (CZM) was utilized to model the interface damage initiation, crack propagation, and delamination process under uniform/gradient temperature load. Furthermore, the dynamic response of the ballastless track where CCBP and ACWL were partly/totally debonded was investigated and compared with the perfectly bonded structure. The results demonstrate that bilinear CZM is capable of revealing the interface damage initiation, crack propagation, and delamination process under temperature load. The interface state between the adjacent CCBP and ACWL was greatly affected by temperature changes and the interface bonding state had a great impact on the dynamic response of ballastless track.


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