Technical Papers
May 25, 2019

Permanent Deformation Behavior of Compacted Loess under Long-Term Traffic Loading

This article has a reply.
VIEW THE REPLY
Publication: Journal of Materials in Civil Engineering
Volume 31, Issue 8

Abstract

The long-term permanent deformation behavior of subgrade soil repeatedly subjected to traffic loading has a significant effect on the settlement of pavement during operation. Many studies conducted on this topic have focused on granular materials, marine soft soils, frozen soils, or fouled ballast. However, the deformation behavior and cyclic strength of compacted loess subjected to traffic loading have undergone limited investigation. In this study, the development of permanent strain in compacted loess was addressed using a number of cyclic triaxial tests. The effects of cycle number, cyclic amplitude, and confining pressure were examined in detail. Permanent strain was separated into two broad categories: the initial strain generated by the first cycle and the accumulated strain generated by subsequent cycles. Furthermore, a predictive formula was proposed in order to describe the mechanism by which permanent strain varied according to cycle number, cyclic amplitude, and confining pressure. Linear fitting was employed in order to establish the relationship between the initial strain and the amplitude of cyclic stress, and a log function was used to establish a correlation between accumulated strain and cycle number. In addition, the cyclic strength of compacted loess was also addressed. The results indicate that initial strain exhibits an ostensibly significant effect on the distribution of cyclic strength versus cycle number and contributes to a large proportion of overall permanent strain, especially at a low cyclic-stress level.

Get full access to this article

View all available purchase options and get full access to this article.

Acknowledgments

The authors would like to acknowledge the Fundamental Research Funds for the Central Universities, CHD (300102288708), the National Natural Science Foundation of China (Grant No. 41877285), and the Key Research and Development Program of Shaanxi Province (2017ZDXM-SF-095) for their financial support.

References

ASTM. 2003. Standard test methods for the determination of the modulus and damping properties of soils using the cyclic triaxial apparatus. ASTM D3999-91. West Conshohocken, PA: ASTM.
Bian, X., J. Jiang, W. Jin, D. Sun, W. Li, and X. Li. 2016. “Cyclic and postcyclic triaxial testing of ballast and subballast.” J. Mater. Civ. Eng. 28 (7): 04016032. https://doi.org/10.1061/(ASCE)MT.1943-5533.0001523.
Cai, Y. Q., L. Guo, R. J. Jardine, Z. X. Yang, and J. Wang. 2017. “Stress-strain response of soft clay to traffic loading.” Géotechnique 67 (5): 446–451. https://doi.org/10.1680/jgeot.15.P.224.
Chai, J. C., and N. Miura. 2002. “Traffic-load-induced permanent deformation of road on soft subsoil.” J. Geotech. Geoenviron. 128 (11): 907–916. https://doi.org/10.1061/(ASCE)1090-0241(2002)128:11(907).
Chen, C., Z. Zhou, L. Kong, X. Zhang, and S. Yin. 2018. “Undrained dynamic behaviour of peaty organic soil under long-term cyclic loading, Part I: Experimental investigation.” Soil Dyn. Earthquake Eng. 107 (1): 279–291. https://doi.org/10.1016/j.soildyn.2018.01.012.
China National Standards. 1999. Standard for soil test method. CNS-GB/T50123. Beijing: China National Standards.
Cui, Y. J., T. V. Duong, A. M. Tang, J. C. Dupla, N. Calon, and A. Robinet. 2013. “Investigation of the hydro-mechanical behaviour of fouled ballast.” J. Zhejiang. Univ. Sci. A 14 (4): 244–255. https://doi.org/10.1631/jzus.A1200337.
Gidel, G., P. Hornych, J. J. Chauvin, D. Breysse, and A. Denis. 2001. “A new approach for investigating the permanent deformation behavior of unbound granular material using the repeated load triaxial apparatus.” Bull. Lab. Bridges Roads 233 (4): 5–21.
Guo, L., Y. Cai, R. J. Jardine, Z. Yang, and J. Wang. 2017. “Undrained behaviour of intact soft clay under cyclic paths that match vehicle loading conditions.” Can. Geotech. J. 55 (1): 90–106. https://doi.org/10.1139/cgj-2016-0636.
Guo, L., J. Wang, Y. Q. Cai, H. L. Liu, Y. F. Gao, and H. L. Sun. 2013. “Undrained deformation behavior of saturated soft clay under long-term cyclic loading.” Soil Dyn. Earthquake Eng. 50 (7): 28–37. https://doi.org/10.1016/j.soildyn.2013.01.029.
Hornych, P., J. F. Corté, and J. L. Paute. 1993. “Etude des déformations permanents sous chargements répétés de trois graves non traitées.” [In French.] Bull. de Liaison des Laboratoires des Ponts et Chaussées 184: 77–84.
Indraratna, B., K. T. Pramod, and S. V. Jayan. 2010. “Experimental and numerical study of railway ballast behavior under cyclic loading.” Int. J. Geomech. 10 (4): 136–144. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000055.
Karg, C., S. François, W. Haegeman, and G. Degrande. 2010. “Elasto-plastic long-term behavior of granular soils: Modelling and experimental validation.” Soil Dyn. Earthquake Eng. 30 (8): 635–646. https://doi.org/10.1016/j.soildyn.2010.02.006.
Lei, H., B. Li, H. Lu, and Q. Ren. 2016. “Dynamic deformation behavior and cyclic degradation of ultrasoft soil under cyclic loading.” J. Mater. Civ. Eng. 28 (11): 04016135. https://doi.org/10.1061/(ASCE)MT.1943-5533.0001641.
Lentz, R. W., and G. Y. Baladi. 1981. “Constitutive equation for permanent strain of sand subjected to cyclic loading.” Transp. Res. Rec. 810: 50–54.
Li, D. Q., and E. T. Selig. 1996. “Cumulative plastic deformation for fine-grained subgrade soils.” J. Geotech. Eng. 122 (12): 1006–1013. https://doi.org/10.1061/(ASCE)0733-9410(1996)122:12(1006).
Li, Q. L., X. Z. Ling, and D. C. Sheng. 2016. “Elasto-plastic behaviour of frozen soil subjected to long-term low-level repeated loading, Part II: Constitutive modelling.” Cold Reg. Sci. Technol. 122 (2): 58–70. https://doi.org/10.1016/j.coldregions.2015.11.009.
Monismith, C. L., N. Ogawa, and C. R. Freeme. 1975. “Permanent deformation characteristics of subgrade soils due to repeated loading.” Transp. Res. Rec. 537: 1–17.
Niemunis, A., T. Wichtmann, and T. Triantafyllidis. 2005. “A high-cycle accumulation model for sand.” Comput. Geotech. 32 (4): 245–263. https://doi.org/10.1016/j.compgeo.2005.03.002.
Pécsi, M. 1990. “Loess is not just the accumulation of dust.” Quat. Int. 7: 1–21. https://doi.org/10.1016/1040-6182(90)90034-2.
Puppala, A. J., N. M. Louay, and A. Aaron. 1999. “Permanent deformation characterization of subgrade soils from RLT test.” J. Mater. Civ. Eng. 11 (4): 274–282. https://doi.org/10.1061/(ASCE)0899-1561(1999)11:4(274).
Rahman, M. S., and E. Sigurdur. 2015. “A model for predicting permanent deformation of unbound granular materials.” Road Mater. Pavement Des. 16 (3): 653–673. https://doi.org/10.1080/14680629.2015.1026382.
Romain, J. E. 1972. “Rut depth prediction in asphalt pavements.” In Proc., 3rd Int. Conf. on the Structure Design of Asphalt Pavements, 11–15. London.
Romanoschi, S. A. 2016. “Empirical models for permanent deformation of subgrade soils from the data collected at the Pavement Subgrade Performance Study.” J. Mater. Civ. Eng. 29 (3): 04016236. https://doi.org/10.1061/(ASCE)MT.1943-5533.0001785.
Salour, F., and S. Erlingsson. 2015. “Permanent deformation characteristics of silty sand subgrades from multistage RLT tests.” Int. J. Pavement Eng. 18 (3): 236–246. https://doi.org/10.1080/10298436.2015.1065991.
Stewart, H. E. 1986. “Permanent strains from cyclic variable-amplitude loadings.” J. Geotech. Eng. 112 (6): 646–660. https://doi.org/10.1061/(ASCE)0733-9410(1986)112:6(646).
Sun, Q. D., B. Indraratna, and S. Nimbalkar. 2015. “Deformation and degradation mechanisms of railway ballast under high frequency cyclic loading.” J. Geotech. Geoenviron. 142 (1): 04015056. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001375.
Thakur, P. K., J. S. Vinod, and B. Indraratna. 2013. “Effect of confining pressure and frequency on the deformation of ballast.” Géotechnique 63 (9): 786–790. https://doi.org/10.1680/geot.12.T.001.
Wang, H. L., R. P. Chen, S. Qi, W. Cheng, and Y. J. Cui. 2018a. “Long-term performance of pile-supported ballastless track-bed at various water levels.” J. Geotech. Geoenviron. 144 (6): 04018035. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001890.
Wang, H. L., Y. J. Cui, F. Lamas-Lopez, N. Calon, G. Saussine, J. C. Dupla, J. Canou, P. Aimedieu, and R. P. Chen. 2018b. “Permanent deformation of track-bed materials at various inclusion contents under large number of loading cycles.” J. Geotech. Geoenviron. 144 (8): 04018044. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001911.
Wang, H. L., Y. J. Cui, F. Lamas-Lopez, J. C. Dupla, J. Canou, N. Calon, G. Saussine, P. Aimedieu, and R. P. Chen. 2017. “Effects of inclusion contents on resilient modulus and damping ratio of unsaturated track-bed materials.” Can. Geotech. J. 54 (12): 1672–1681. https://doi.org/10.1139/cgj-2016-0673.
Wang, J., L. Guo, Y. Q. Cai, C. J. Xu, and C. Gu. 2013. “Strain and pore pressure development on soft marine clay in triaxial tests with a large number of cycles.” Ocean Eng. 74 (12): 125–132. https://doi.org/10.1016/j.oceaneng.2013.10.005.
Wichtmann, T., A. Niemunis, and T. Triantafyllidis. 2009. “Validation and calibration of a high-cycle accumulation model based on cyclic triaxial tests on eight sands.” Soils Found. 49 (5): 711–728. https://doi.org/10.3208/sandf.49.711.
Wichtmann, T., A. Niemunis, and T. Triantafyllidis. 2015. “Improved simplified calibration procedure for a high-cycle accumulation model.” Soil Dyn. Earthquake Eng. 70 (3): 118–132. https://doi.org/10.1016/j.soildyn.2014.12.011.
Wu, T. Y., Y. Q. Cai, L. Guo, D. S. Ling, and J. Wang. 2017. “Influence of shear stress level on cyclic deformation behaviour of intact Wenzhou soft clay under traffic loading.” Eng Geol. 228 (10): 61–70. https://doi.org/10.1016/j.enggeo.2017.06.013.
Zhang, S., C. A. Tang, X. D. Zhang, Z. C. Zhang, and J. X. Jin. 2015. “Cumulative plastic strain of frozen Aeolian soil under highway dynamic loading.” Cold Reg. Sci. Technol. 120 (12): 89–95. https://doi.org/10.1016/j.coldregions.2015.09.004.
Zhu, Z. Y., X. Z. Ling, S. J. Chen, F. Zhang, L. N. Wang, Z. Y. Wang, and Z. Y. Zou. 2010. “Experimental investigation on the train-induced subsidence prediction model of Beiluhe permafrost subgrade along the Qinghai–Tibet railway in China.” Cold Reg. Sci. Technol. 62 (1): 67–75. https://doi.org/10.1016/j.coldregions.2010.02.010.

Information & Authors

Information

Published In

Go to Journal of Materials in Civil Engineering
Journal of Materials in Civil Engineering
Volume 31Issue 8August 2019

History

Received: Jul 23, 2018
Accepted: Mar 13, 2019
Published online: May 25, 2019
Published in print: Aug 1, 2019
Discussion open until: Oct 25, 2019

Permissions

Request permissions for this article.

Authors

Affiliations

Zhiping Hu
Professor, School of Civil Engineering, Chang’an Univ., Xi’an 710061, China; Professor, Institute of Underground Structure and Engineering, Chang’an Univ., Xi’an 710061, China.
Ph.D. Candidate, School of Civil Engineering, Chang’an Univ., Xi’an 710061, China (corresponding author). Email: [email protected]
Xiang Ren
Ph.D. Candidate, School of Civil Engineering, Chang’an Univ., Xi’an 710061, China.
Xueni Wei
M.S. Student, School of Civil Engineering, Chang’an Univ., Xi’an 710061, China.
Qiang Wang
M.S. Student, School of Civil Engineering, Chang’an Univ., Xi’an 710061, China.

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share