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Change in pore-size distribution of collapsible loess due to loading and inundating

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Abstract

It is well known that the hydromechanical behavior of both saturated and unsaturated loess soils is significantly influenced by the soil fabric. However, there is limited understanding of how the soil fabric or structure evolves due to mechanical, hydraulic and chemical changes on loess soils. Information of the microstructural evolution or change in pore-size distribution (i.e., PSD) of loess soils along different stress paths is valuable for proposing an advanced constitutive model that considers the microstructure and can better model the hydromechanical behavior of loess soils. For this reason, in the present study, the microstructure is characterized on intact and saturated loess specimens before and after oedometer consolidation tests, using scanning electron microscopy and mercury intrusion porosimetry methods. The results suggest that the loading-induced change in PSD varies with stress level and saturation state of the loess soil. A reduction arises in the cumulative intrusion void ratio due to an increase in vertical stress, which accounts for compression of inter-aggregate pores greater than 6 μm. However, loading saturated loess leads to transformation from a bimodal PSD into a trimodal one that defines three major pore series, namely large-pore series (i.e., more than 6 μm), medium-pore series (i.e., between 0.1 and 6 μm) and small-pore series (i.e., less than 0.1 μm). The trimodal nature of PSD is, however, destructed under higher vertical stresses. Both large pores and medium pores are compressed under higher vertical stresses (i.e., > 600 kPa). The inundating-induced change in PSD is dependent on loading condition and can be discerned to take place in the same three pore series. Not only large pores but also medium pores collapse upon inundating under higher vertical stresses (i.e., > 600 kPa). The microstructural evolution is consistent with the mechanical responses of both intact and saturated loess.

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References

  1. Alonso EE, Gens A, Josa AA (1990) Constitutive model for partially saturated soils. Géotechnique 40(3):405–430

    Google Scholar 

  2. ASTM (2006) Annual book of ASTM standards. ASTM International, West Conshohocken

    Google Scholar 

  3. Barden L, McGown A, Collins K (1973) The collapse mechanism in partly saturated soil. Eng Geol 7(1):49–60

    Google Scholar 

  4. Booth AR (1977) Collapse settlement in compacted soils. CSIR Research Report 324, National Institute for Transport and Road Research Bulletin, vol 13, pp 1–40

  5. Burton GJ, Pineda JA, Sheng D, Airey D (2015) Microstructural changes of an undisturbed, reconstituted and compacted high plasticity clay subjected to wetting and drying. Eng Geol 193:363–373

    Google Scholar 

  6. Casini F, Vaunat J, Romero E, Desideri A (2012) Consequences on water retention properties of double-porosity features in a compacted silt. Acta Geotech 7(2):139–150

    Google Scholar 

  7. Collins K, McGown A (1974) The form and function of microfabric features in a variety of natural soils. Géotechnique 24(2):223–254

    Google Scholar 

  8. Cui YJ, Loiseau C, Delage P (2002) Microstructure changes of a confined swelling soil due to suction controlled hydration. In: Proceedings of 3rd international conference on unsaturated soils, Recife, Brazil

  9. Dafalias YF (2016) Must critical state theory be revisited to include fabric effects? Acta Geotech 11(3):479–491

    Google Scholar 

  10. Delage P, Lefebvre G (1984) Study of the structure of a sensitive Champlain clay and of its evolution. Can Geotech J 21(1):21–35

    Google Scholar 

  11. Delage P, Audiguier M, Cui YJ, Howat MD (1996) Microstructure of a compacted silt. Can Geotech J 33(1):150–158

    Google Scholar 

  12. Delage P, Cui YJ, Antoine P (2005) Geotechnical problems related with loess deposits in Northern France. In: Proceedings of international conference on problematic soils, Famagusta, N. Cyprus

  13. Delage P (2010) A microstructure approach to the sensitivity and compressibility of some Eastern Canada sensitive clays. Géotechnique 60(5):353–368

    Google Scholar 

  14. Derbyshire E, Mellors TW (1988) Geological and geotechnical characteristics of some loess and loessic soils from China and Britain: a comparison. Eng Geol 25(2):135–175

    Google Scholar 

  15. Derbyshire E (2001) Geological hazards in loess terrain, with particular reference to the loess regions of China. Earth Sci Rev 54(1):231–260

    Google Scholar 

  16. Diamond S (1970) Pore size distribution in clays. Clays Clay Miner 18:7–23

    Google Scholar 

  17. Durner W (1994) Hydraulic conductivity estimation for soils with heterogeneous pore structure. Water Resour Res 30(2):211–223

    Google Scholar 

  18. Fan XM, Xu Q, Scaringi G, Li S, Peng DL (2017) A chemo-mechanical insight into the failure mechanism of frequently occurred landslides in the loess plateau, Gansu province, China. Eng Geol 228:337–345

    Google Scholar 

  19. Fan W, Deng LS, Yuan WN (2018) Double parameter binary-medium model of fissured loess. Eng Geol 236:22–28

    Google Scholar 

  20. Gao GR (1980) Classification for microstructure of loess and its collapsibility. Chin Sci Bull 12:1203–1212 (in Chinese)

    Google Scholar 

  21. Gens A, Alonso EE (1992) A framework for the behavior of unsaturated expansive clays. Can Geotech J 29:1013–1032

    Google Scholar 

  22. Griffiths FJ, Joshi RC (1989) Change in pore size distribution due to consolidation of clays. Géotechnique 39(1):159–167

    Google Scholar 

  23. Hu RL, Guan GL, Li XQ, Zhang LZ (1999) Microstructure effects on the subsidence of loess. J Eng Geol 7(2):161–167 (in Chinese)

    Google Scholar 

  24. Hu ZQ, Shen ZJ, Xie DY (2000) Research on structural behavior of unsaturated loess. Chin J Rock Mech Eng 19(6):775–779 (in Chinese)

    Google Scholar 

  25. Jennings JE, Knight K (1957) The additional settlement of foundations due to collapse of sandy soils on wetting. In: Proceedings of the fourth international conference on soil mechanics and foundation engineering

  26. Jiang MJ, Zhang FG, Hu HJ, Cui YJ, Peng JB (2014) Structural characterization of natural loess and remolded loess under triaxial tests. Eng Geol 181:249–260

    Google Scholar 

  27. Kong Y, Zhao J, Yao Y (2013) A failure criterion for cross-anisotropic soils considering microstructure. Acta Geotech 8(6):665–673

    Google Scholar 

  28. Lawton EC, Fragaszy RJ, Hetherington MD (1992) Review of wetting-induced collapse in compacted soil. J Geotech Eng 118(9):1376–1394

    Google Scholar 

  29. Lei XY (1987) Pore types of loess soils in China and its collapsibility. Chin Sci (B Sect) 12:1310–1316 (in Chinese)

    Google Scholar 

  30. Li P, Vanapalli SK, Li TL (2016) Review of collapse triggering mechanism of collapsible soils due to wetting. J Rock Mech Geotech Eng 8:256–274

    Google Scholar 

  31. Li YR, Zhang T, Zhang YB, Xu Q (2018) Geometrical appearance and spatial arrangement of structural blocks of the Malan loess in NW China and the implications for the formation of loess columns. J Asian Earth Sci 158:18–28

    Google Scholar 

  32. Liu DS, An ZS, Yuan BY (1985) Eolian process and dust mantle (loess) in China. Quat Sci 6(1):113–125 (in Chinese)

    Google Scholar 

  33. Liu Z, Liu F, Ma F, Wang M, Bai X, Zheng Y et al (2016) Collapsibility, composition, and microstructure of loess in China. Can Geotech J 53(4):673–686

    Google Scholar 

  34. Lloret A, Villar MV (2007) Advances on the knowledge of the thermo-hydro-mechanical behaviour of heavily compacted “FEBEX” bentonite. Phys Chem Earth 32:701–715

    Google Scholar 

  35. Lutenegger AJ, Saber RT (1988) Determination of collapse potential of soils. Geotech Test J 11(3):173–178

    Google Scholar 

  36. Lu J, Cheng B (2007) Research on soil-water characteristic curve of unsaturated loess. Chin J Geotech Eng 29(10):1591–1592 (in Chinese)

    Google Scholar 

  37. Monroy R, Zdravkovic L, Ridley A (2010) Microstructural evolution in compacted London Clay during wetting and loading. Géotechnique 60(2):105–119

    Google Scholar 

  38. Muñoz-Castelblanco JA, Pereira JM, Delage P, Cui YJ (2012) The water retention properties of a natural unsaturated loess from northern France. Géotechnique 62(2):95–106

    Google Scholar 

  39. Ng CWW, Sadeghi H, Hossen SB, Chiu CF, Alonso EE, Baghbanrezvan S (2016) Water retention and volumetric characteristics of intact and re-compacted loess. Can Geotech J 53:1258–1269

    Google Scholar 

  40. Otalvaro IF, Neto MPC, Delage P, Caicedo B (2016) Relationship between soil structure and water retention properties in a residual compacted soil. Eng Geol 205:73–80

    Google Scholar 

  41. Rao SM, Revanasiddappa K (2002) Collapse behaviour of a residual soil. Géotechnique 52(4):259–268

    Google Scholar 

  42. Reis RM, Saboya F, Tibana S, Marciano CR, Ribeiro AB (2013) Determination of soil-water retention curve for a young residual soil using a small centrifuge. In: Proceedings of the 18th international conference on soil mechanics and geotechnical engineering, Paris, France

  43. Rogers CDF, Dijkstra TA, Smalley IJ (1994) Hydroconsolidation and subsidence of loess: studies from China, Russia, North America and Europe. Eng Geol 37:83–113

    Google Scholar 

  44. Romero E, Simms PH (2008) Microstructure investigation in unsaturated soils: a review with special attention to contribution of mercury intrusion porosimetry and environmental scanning electron microscopy. J Geotech Geol Eng 26(6):705–727

    Google Scholar 

  45. Shao XX, Zhang HY, Tan Y (2018) Collapse behavior and microstructural alteration of remolded loess under graded wetting tests. Eng Geol 233:11–22

    Google Scholar 

  46. Shen ZJ, Hu ZQ (2003) Binary medium model for loess. J Hydraul Eng 7:1–6 (in Chinese)

    Google Scholar 

  47. Simms PH, Yanful EK (2001) Measurement and estimation of pore shrinkage and pore distribution in. Can Geotech J 38(4):741–754

    Google Scholar 

  48. Sun DA, Sheng DC, Xu YF (2007) Collapse behavior of unsaturated compacted soil with different initial densities. Can Geotech J 44(6):673–686

    Google Scholar 

  49. Thom R, Sivakumar R, Sivakumar V (2006) Effects of pressure on the distribution of bi-modal pore size distribution in unsaturated kaolin. In: Proceedings of 4th international conference on unsaturated soils, Carefree, United States

  50. Wen BP, Yan YJ (2014) Influence of structure on shear characteristics of the unsaturated loess in lanzhou, china. Eng Geol 168(1):46–58

    MathSciNet  Google Scholar 

  51. Xie YL, Xing YC (2015) Soil mechanics for loess soils. High Education Press, Beijing (in Chinese)

    Google Scholar 

  52. Xie X, Qi SW, Zhao FS, Wang DH (2018) Creep behavior and the microstructural evolution of loess-like soil from Xi’an area, China. Eng Geol 236:43–59

    Google Scholar 

  53. Yang YL (1988) Study on collapsible mechanism of loess soils. Sci China (Ser B) 7:756–766 (in Chinese)

    Google Scholar 

  54. van Genuchten MT (1980) A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Sci Soc Am J 44(5):892–898

    Google Scholar 

  55. Zhang MH, Xie YL, Liu BJ (2005) Characteristics of collapsibility coefficient curves of loess during moistening and demoistening process. Rock Soil Mech 26(9):1363–1368

    Google Scholar 

Download references

Acknowledgements

Authors acknowledge the funding received from the National Key Research and Development Plan (2018YFC1504703), the National Natural Science Foundation of China (41630639), the Key Laboratory of Western China's Mineral Resource and Geological Engineering, Ministry of Education (300102269505), the Shaanxi Key Laboratory of Loess Mechanics and Engineering (LME201803), and the China Postdoctoral Science Foundation (2019M653883XB).

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Wang, JD., Li, P., Ma, Y. et al. Change in pore-size distribution of collapsible loess due to loading and inundating. Acta Geotech. 15, 1081–1094 (2020). https://doi.org/10.1007/s11440-019-00815-9

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