Mud pumping in high-speed railway: in-situ soil core test and full-scale model testing
Zhangbo Wan, Xuecheng Bian, Yunmin Chen
Railway Engineering Science ›› 2022, Vol. 30 ›› Issue (3) : 289-303.
Mud pumping in high-speed railway: in-situ soil core test and full-scale model testing
Mud pumping induced by moving train loads on rainwater-intruded roadbed causes intensive track vibrations and threatens safety of high-speed trains. In this paper, a vehicle–track–subgrade finite element model was established to analyze the dynamic responses of a ballastless track, and results showed that the concrete base and roadbed were detached because of the whipping effect arising from the rainwater intrusion channel. An in-situ soil core test showed that the intruded rainwater accumulated in roadbed to form standing water and saturated the roadbed. The flapping action of the concrete base caused by the whipping effect led to mud formation mixed with fine particles and rainwater, which migrated upward under the pore-water pressure (PWP) gradient. Mud pumping resulted from continuous particle migration in the saturated roadbed under moving train loads: under normal roadbed condition, coarse and fine particles were uniformly distributed in the roadbed; in early period of mud pumping, fine particles migrated downward to bottom of the roadbed because of the rainwater infiltration flow; in middle stage of mud pumping, fine particles migrated upward and gathered at the roadbed surface under PWP gradient; in later period of mud pumping, fine particles were entrained and removed with the dissipation of excess PWP. Moreover, a full-scale physical model was established to reproduce mud pumping, and polyurethane injection remediation against mud pumping was validated on this physical model. The remediation method was applied to an in-situ mud pumping. The deviation of the vertical track profile reduced remarkably and remained at a low level within half a year, showing a good long-term service performance of the polyurethane remediated roadbed.
[1.] |
World Meteorological Organization. The global climate in 2015–2019. https://reliefweb.int/report/world/global-climate-2015-2019
|
[2.] |
|
[3.] |
Wan Z, Li S, Bian X et al (2022) Mud pumping in ballastless slab track of high-speed railway and its remediation. In: Advances in transportation geotechnics IV. Lecture Notes in Civil Engineering, Springer, Singapore
|
[4.] |
|
[5.] |
Gomes CA, Ramos A (2022) A geomechanics classification for the rating of railroad subgrade performance. Railw Eng Sci 30(3). https://doi.org/10.1007/s40534-021-00260-z
|
[6.] |
|
[7.] |
|
[8.] |
Duong TV, Cui Y-J, Tang AM et al (2014) Investigating the mud pumping and interlayer creation phenomena in railway sub-structure. Eng Geol 171:45–58
|
[9.] |
Katsumi M, Nakamura T (2011) Development of the countermeasure against roadbed degradation under ballastless tracks for existing lines. In: The 9th World Congress on Railway Research, Lille
|
[10.] |
|
[11.] |
|
[12.] |
|
[13.] |
|
[14.] |
|
[15.] |
|
[16.] |
|
[17.] |
|
[18.] |
|
[19.] |
|
[20.] |
|
[21.] |
|
[22.] |
Wan Z, Li S, Bian X et al (2020) Field observations on mud pumping of ballastless track in high-speed railway. In: Advances in environmental vibration and transportation geodynamics. Lecture Notes in Civil Engineering, Springer, Singapore
|
[23.] |
|
[24.] |
|
[25.] |
|
[26.] |
|
[27.] |
|
[28.] |
|
[29.] |
|
[30.] |
|
[31.] |
|
[32.] |
|
[33.] |
|
[34.] |
Takatoshi I (1997) Measure for stabilization of railway earth structure. Japan Railway Technical Service, Tokyo, Japan
|
[35.] |
|
[36.] |
|
[37.] |
|
[38.] |
|
[39.] |
|
[40.] |
|
[41.] |
Wan Z (2015) Experimental study on temperature field characteristic of CRTS I twin-block ballastless track. Dissertation, Southwest Jiaotong Univeristy (in Chinese)
|
[42.] |
Yang R, Wan Z, Liu X et al (2015) Temperature field test of CRTS I twin-block ballastless track in winter. J Southwest Jiaotong Univ 50(3):454–460 (in Chinese)
|
[43.] |
|
[44.] |
|
[45.] |
Jiang H (2014) Dynamic interaction of slab track structure subgrade system and accumulative settlement in high-speed railways. Dissertation, Zhejiang University (in Chinese)
|
[46.] |
Wan Z (2021) Study on the mechanism of mud pumping in the roadbed and its remedaition of ballastless high-speed railway. Dissertation, Zhejiang University (in Chinese)
|
[47.] |
Duan X (2020) Dynamic behaviors of ballastless high-speed railway with uneven settlement excitation and the railway settlement control. Dissertation, Zhejiang University (in Chinese)
|
[48.] |
|
[49.] |
|
[50.] |
National Railway Administration of the People’s Republic of China (2010) Code for soil test of railway engineering. TB10102-2010/J1135-2010. Beijing: China Railway Publishing House (in Chinese)
|
[51.] |
|
[52.] |
|
[53.] |
Alobaidi IM (1991) Some aspects of the role of geocomposites in coetrolling pumping of fines in the foundations of flexible pavement. Dissertation, University of Birmingham
|
[54.] |
|
[55.] |
|
[56.] |
|
[57.] |
|
[58.] |
|
[59.] |
National Railway Administration of the People’s Republic of China (2014) Code for design of high speed railway. TB10621-2014. China Railway Publishing House, Beijing (in Chinese)
|
[60.] |
National Railway Administration of the People’s Republic of China (2013) Technical regulations for dynamic acceptance for high-speed railways construction. TB10761-2013/J1535-2013. China Railway Publishing House, Beijing (in Chinese)
|
/
〈 |
|
〉 |