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Erschienen in: Innovative Infrastructure Solutions 3/2020

01.12.2020 | Practice-oriented paper

Effect of fines on liquefaction resistance of sand

verfasst von: Asskar Janalizadeh Choobbasti, Hediyeh Selatahneh, Mehrdad Karimi Petanlar

Erschienen in: Innovative Infrastructure Solutions | Ausgabe 3/2020

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Abstract

To evaluate the effect of non-plastic fines on liquefaction resistance of Babolsar sand, a series of undrained static and cyclic triaxial tests alongside a series of numerical analysis were carried out. The cyclic triaxial tests were conducted in stress-controlled conditions with 1 Hz frequency at 0.35 constant cyclic stress ratio for 50 kPa and 0.25 for 100 and 200 kPa confining pressures. The samples contained 0%, 10%, 20%, 30% and 40% of fine grains. The numerical analysis was performed by a finite difference method, and Finn’s constitutive model was applied to investigate the liquefaction resistance of the mixtures. The tests’ results showed that the number of cycles leading to liquefaction of a sand–silt mixture decreases after increasing fine-grained percentage. Poorer performance in compression and better performance in tension was observed in this situation. The test outcomes also showed that dominant behavior of the mixtures changes from sand to silt at 20% fines content. It was observed from the test results and the numerical analysis that in low percentages of silt, the behavior of the sand–silt mixture is similar to those of the clean sand sample. But by increasing silt, the mixture’s behavior becomes more dependent on contacts between fine and granular particles. The concept presented by Thevanayagam was used to check the contacts between fine and coarse particles. It was also observed that the Finn constitutive model is in good consistency with the test results as long as the behavior of the sand is dominant in the mixture.

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Literatur
1.
Zurück zum Zitat Choobbasti AJ, Naghizaderokni M, Charaty R (2017) Microzonation of liquefaction hazard using liquefaction index in Babol City. Geotech Eng 48(3):137–143 Choobbasti AJ, Naghizaderokni M, Charaty R (2017) Microzonation of liquefaction hazard using liquefaction index in Babol City. Geotech Eng 48(3):137–143
2.
Zurück zum Zitat Choobbasti AJ, Ghalandarzadeh A, Esmaeili M (2014) Experimental study of the grading characteristic effect on the liquefaction resistance of various graded sands and gravelly sands. Arab J Geosci 7(7):2739–2748 Choobbasti AJ, Ghalandarzadeh A, Esmaeili M (2014) Experimental study of the grading characteristic effect on the liquefaction resistance of various graded sands and gravelly sands. Arab J Geosci 7(7):2739–2748
3.
Zurück zum Zitat Huang Y, Zhao L (2018) The effects of small particles on soil seismic liquefaction resistance: current findings and future challenges. Nat Hazards 92(1):567–579 Huang Y, Zhao L (2018) The effects of small particles on soil seismic liquefaction resistance: current findings and future challenges. Nat Hazards 92(1):567–579
4.
Zurück zum Zitat Akhila M, Rangaswamy K, Sankar N (2019) Effect of non-plastic fines on undrained response of fine sand. Int J 16(54):170–175 Akhila M, Rangaswamy K, Sankar N (2019) Effect of non-plastic fines on undrained response of fine sand. Int J 16(54):170–175
5.
Zurück zum Zitat Putti SP, Satyam N (2018) Ground response analysis and liquefaction hazard assessment for Vishakhapatnam city. Innov Infrastruct Solut 3(1):12 Putti SP, Satyam N (2018) Ground response analysis and liquefaction hazard assessment for Vishakhapatnam city. Innov Infrastruct Solut 3(1):12
6.
Zurück zum Zitat Singnar L, Sil A (2018) Liquefaction potential assessment of Guwahati city using first-order second-moment method. Innov Infrastruct Solut 3(1):36 Singnar L, Sil A (2018) Liquefaction potential assessment of Guwahati city using first-order second-moment method. Innov Infrastruct Solut 3(1):36
7.
Zurück zum Zitat Karim ME, Alam MJ (2014) Effect of non-plastic silt content on the liquefaction behavior of sand–silt mixture. Soil Dyn Earthq Eng 65:142–150 Karim ME, Alam MJ (2014) Effect of non-plastic silt content on the liquefaction behavior of sand–silt mixture. Soil Dyn Earthq Eng 65:142–150
8.
Zurück zum Zitat Naeini S, Baziar M (2004) Effect of fines content on steady-state strength of mixed and layered samples of a sand. Soil Dyn Earthq Eng 24(3):181–187 Naeini S, Baziar M (2004) Effect of fines content on steady-state strength of mixed and layered samples of a sand. Soil Dyn Earthq Eng 24(3):181–187
9.
Zurück zum Zitat Casagrande A (1971) On liquefaction phenomena, by Professor A. Casagrande: Report of Lecture, vol 21 Casagrande A (1971) On liquefaction phenomena, by Professor A. Casagrande: Report of Lecture, vol 21
10.
Zurück zum Zitat Castro G, Seed RB, Keller TO, Seed HB (1992) Steady-state strength analysis of lower San Fernando Dam slide. J Geotech Eng 118(3):406–427 Castro G, Seed RB, Keller TO, Seed HB (1992) Steady-state strength analysis of lower San Fernando Dam slide. J Geotech Eng 118(3):406–427
11.
Zurück zum Zitat Karim ME, Alam MJ (2017) Effect of nonplastic silt content on undrained shear strength of sand–silt mixtures. Int J Geo-Eng 8(1):14 Karim ME, Alam MJ (2017) Effect of nonplastic silt content on undrained shear strength of sand–silt mixtures. Int J Geo-Eng 8(1):14
12.
Zurück zum Zitat Kim U-G, Zhuang L, Kim D, Lee J (2017) Evaluation of cyclic shear strength of mixtures with sand and different types of fines. Mar Georesour Geotechnol 35(4):447–455 Kim U-G, Zhuang L, Kim D, Lee J (2017) Evaluation of cyclic shear strength of mixtures with sand and different types of fines. Mar Georesour Geotechnol 35(4):447–455
13.
Zurück zum Zitat Benahmed N, Nguyen TK, Hicher PY, Nicolas M (2015) An experimental investigation into the effects of low plastic fines content on the behaviour of sand/silt mixtures. Eur J Environ Civ Eng 19(1):109–128 Benahmed N, Nguyen TK, Hicher PY, Nicolas M (2015) An experimental investigation into the effects of low plastic fines content on the behaviour of sand/silt mixtures. Eur J Environ Civ Eng 19(1):109–128
14.
Zurück zum Zitat Xenaki V, Athanasopoulos G (2003) Liquefaction resistance of sand–silt mixtures: an experimental investigation of the effect of fines. Soil Dyn Earthq Eng 23(3):1–12 Xenaki V, Athanasopoulos G (2003) Liquefaction resistance of sand–silt mixtures: an experimental investigation of the effect of fines. Soil Dyn Earthq Eng 23(3):1–12
15.
Zurück zum Zitat Porcino DD, Diano V (2017) The influence of non-plastic fines on pore water pressure generation and undrained shear strength of sand–silt mixtures. Soil Dyn Earthq Eng 101:311–321 Porcino DD, Diano V (2017) The influence of non-plastic fines on pore water pressure generation and undrained shear strength of sand–silt mixtures. Soil Dyn Earthq Eng 101:311–321
16.
Zurück zum Zitat Akhila M, Rangaswamy K, Sankar N (2019) Undrained response and liquefaction resistance of sand–silt mixtures. Geotech Geol Eng 37(4):2729–2745 Akhila M, Rangaswamy K, Sankar N (2019) Undrained response and liquefaction resistance of sand–silt mixtures. Geotech Geol Eng 37(4):2729–2745
17.
Zurück zum Zitat Chemmam M, Arab A, Belkhatir M, Bouferra R (2016) Behavior of loose silty sand of chlef river: effect of low plastic fine contents and other parameters. Mar Georesour Geotechnol 34(4):384–394 Chemmam M, Arab A, Belkhatir M, Bouferra R (2016) Behavior of loose silty sand of chlef river: effect of low plastic fine contents and other parameters. Mar Georesour Geotechnol 34(4):384–394
18.
Zurück zum Zitat Arab A, Sadek M, Belkhatir M, Shahrour I (2014) Monotonic preloading effect on the liquefaction resistance of Chlef silty sand: a laboratory study. Arab J Sci Eng 39(2):685–694 Arab A, Sadek M, Belkhatir M, Shahrour I (2014) Monotonic preloading effect on the liquefaction resistance of Chlef silty sand: a laboratory study. Arab J Sci Eng 39(2):685–694
19.
Zurück zum Zitat Noorzad R, Amini PF (2014) Liquefaction resistance of Babolsar sand reinforced with randomly distributed fibers under cyclic loading. Soil Dyn Earthq Eng 66:281–292 Noorzad R, Amini PF (2014) Liquefaction resistance of Babolsar sand reinforced with randomly distributed fibers under cyclic loading. Soil Dyn Earthq Eng 66:281–292
20.
Zurück zum Zitat Jafarian Y, Ghorbani A, Salamatpoor S, Salamatpoor S (2013) Monotonic triaxial experiments to evaluate steady-state and liquefaction susceptibility of Babolsar sand. J Zhejiang Univ Sci A 14(10):739–750 Jafarian Y, Ghorbani A, Salamatpoor S, Salamatpoor S (2013) Monotonic triaxial experiments to evaluate steady-state and liquefaction susceptibility of Babolsar sand. J Zhejiang Univ Sci A 14(10):739–750
21.
Zurück zum Zitat Askari F, Dabiri R, Shafiee A, Jafari MK (2011) Liquefaction resistance of sand–silt mixtures using laboratory based shear Wave velocity. Int J Civ Eng 9(2):135–144 Askari F, Dabiri R, Shafiee A, Jafari MK (2011) Liquefaction resistance of sand–silt mixtures using laboratory based shear Wave velocity. Int J Civ Eng 9(2):135–144
22.
Zurück zum Zitat Kuerbis R, Negussey D, Vaid Y (1988) Effect of gradation and fines content on the undrained response of sand. In: Hydraulic fill structures. Publ by ASCE, pp 330–345 Kuerbis R, Negussey D, Vaid Y (1988) Effect of gradation and fines content on the undrained response of sand. In: Hydraulic fill structures. Publ by ASCE, pp 330–345
23.
Zurück zum Zitat Wei X, Yang J (2019) Cyclic behavior and liquefaction resistance of silty sands with presence of initial static shear stress. Soil Dyn Earthq Eng 122:274–289 Wei X, Yang J (2019) Cyclic behavior and liquefaction resistance of silty sands with presence of initial static shear stress. Soil Dyn Earthq Eng 122:274–289
24.
Zurück zum Zitat Bensoula M, Missoum H, Bendani K (2018) Liquefaction potential sand–silt mixtures under static loading. Rev Constr J Constr 17(2):196–208 Bensoula M, Missoum H, Bendani K (2018) Liquefaction potential sand–silt mixtures under static loading. Rev Constr J Constr 17(2):196–208
25.
Zurück zum Zitat Hernández YA, Towhata I, Gunji K, Yamada S (2015) Laboratory tests on cyclic undrained behavior of loose sand with cohesionless silt and its application to assessment of seismic performance of subsoil. Soil Dyn Earthq Eng 79:365–378 Hernández YA, Towhata I, Gunji K, Yamada S (2015) Laboratory tests on cyclic undrained behavior of loose sand with cohesionless silt and its application to assessment of seismic performance of subsoil. Soil Dyn Earthq Eng 79:365–378
26.
Zurück zum Zitat Hsiao D-H, Phan VT-A, Hsieh Y-T, Kuo H-Y (2015) Engineering behavior and correlated parameters from obtained results of sand–silt mixtures. Soil Dyn Earthq Engi 77:137–151 Hsiao D-H, Phan VT-A, Hsieh Y-T, Kuo H-Y (2015) Engineering behavior and correlated parameters from obtained results of sand–silt mixtures. Soil Dyn Earthq Engi 77:137–151
27.
Zurück zum Zitat Amini F, Qi G (2000) Liquefaction testing of stratified silty sands. J Geotech Geoenviron Eng 126(3):208–217 Amini F, Qi G (2000) Liquefaction testing of stratified silty sands. J Geotech Geoenviron Eng 126(3):208–217
28.
Zurück zum Zitat Dezfulian H (1982) Effects of silt content on dynamic properties of sandy soils. In: Proceedings of the eighth world conference on earthquake engineering, pp 63–70 Dezfulian H (1982) Effects of silt content on dynamic properties of sandy soils. In: Proceedings of the eighth world conference on earthquake engineering, pp 63–70
29.
Zurück zum Zitat Finn W, Ledbetter R, Wu G (1994) Liquefaction in silty soils: design and analysis. In: Ground failures under seismic conditions. ASCE, pp 51–76 Finn W, Ledbetter R, Wu G (1994) Liquefaction in silty soils: design and analysis. In: Ground failures under seismic conditions. ASCE, pp 51–76
30.
Zurück zum Zitat Chang N, Yeh S, Kaufman L (1982) Liquefaction potential of clean and silty sands. In: Proceedings of the third international earthquake microzonation conference, pp 1017–1032 Chang N, Yeh S, Kaufman L (1982) Liquefaction potential of clean and silty sands. In: Proceedings of the third international earthquake microzonation conference, pp 1017–1032
31.
Zurück zum Zitat Thevanayagam S, Fiorillo M, Liang J (2000) Effect of non-plastic fines on undrained cyclic strength of silty sands. Soil Dyn Liquefaction 2000:77–91 Thevanayagam S, Fiorillo M, Liang J (2000) Effect of non-plastic fines on undrained cyclic strength of silty sands. Soil Dyn Liquefaction 2000:77–91
32.
Zurück zum Zitat Thevanayagam S (2000) Liquefaction potential and undrained fragility of silty soils. In: Proceedings of the 12th world conference earthquake engineering. New Zealand Society of Earthquake Engineering, Wellington, New Zealand Thevanayagam S (2000) Liquefaction potential and undrained fragility of silty soils. In: Proceedings of the 12th world conference earthquake engineering. New Zealand Society of Earthquake Engineering, Wellington, New Zealand
33.
Zurück zum Zitat Thevanayagam S, Martin G (2002) Liquefaction in silty soils—screening and remediation issues. Soil Dyn Earthq Eng 22(9–12):1035–1042 Thevanayagam S, Martin G (2002) Liquefaction in silty soils—screening and remediation issues. Soil Dyn Earthq Eng 22(9–12):1035–1042
34.
Zurück zum Zitat Malidarreh N, Shooshpasha I, Mirhosseini S, Dehestani M (2018) Effects of recycled Polyethylene terephthalate fibers on strength behavior of cemented Babolsar sand. Sci Iran 27:1130–1143 Malidarreh N, Shooshpasha I, Mirhosseini S, Dehestani M (2018) Effects of recycled Polyethylene terephthalate fibers on strength behavior of cemented Babolsar sand. Sci Iran 27:1130–1143
35.
Zurück zum Zitat Amini PF, Noorzad R (2018) Energy-based evaluation of liquefaction of fiber-reinforced sand using cyclic triaxial testing. Soil Dyn Earthq Eng 104:45–53 Amini PF, Noorzad R (2018) Energy-based evaluation of liquefaction of fiber-reinforced sand using cyclic triaxial testing. Soil Dyn Earthq Eng 104:45–53
37.
Zurück zum Zitat Ghadakpour M, Janalizadeh Choobbasti A, Soleimani Kutanaei S (2019) Investigation of the deformability properties of fiber reinforced cemented sand. J Adhes Sci Technol 33(17):1913–1938 Ghadakpour M, Janalizadeh Choobbasti A, Soleimani Kutanaei S (2019) Investigation of the deformability properties of fiber reinforced cemented sand. J Adhes Sci Technol 33(17):1913–1938
38.
Zurück zum Zitat Janalizadeh Choobbasti A, Soleimani Kutanaei S, Taslimi Paein Afrakoti M (2019) Modeling of compressive strength of cemented sandy soil. J Adhes Sci Technol 33(8):791–807 Janalizadeh Choobbasti A, Soleimani Kutanaei S, Taslimi Paein Afrakoti M (2019) Modeling of compressive strength of cemented sandy soil. J Adhes Sci Technol 33(8):791–807
39.
Zurück zum Zitat Zahmatkesh A, Janalizadeh Choobbasti A (2017) Calibration of an advanced constitutive model for Babolsar sand accompanied by liquefaction analysis. J Earthq Eng 21(4):679–699 Zahmatkesh A, Janalizadeh Choobbasti A (2017) Calibration of an advanced constitutive model for Babolsar sand accompanied by liquefaction analysis. J Earthq Eng 21(4):679–699
40.
Zurück zum Zitat Jafarzadeh F, Sadeghi H (2012) Experimental study on dynamic properties of sand with emphasis on the degree of saturation. Soil Dyn Earthq Eng 32(1):26–41 Jafarzadeh F, Sadeghi H (2012) Experimental study on dynamic properties of sand with emphasis on the degree of saturation. Soil Dyn Earthq Eng 32(1):26–41
41.
Zurück zum Zitat Noorzad R, Shakeri M (2017) Effect of silt on post-cyclic shear strength of sand. Soil Dyn Earthq Eng 97:133–142 Noorzad R, Shakeri M (2017) Effect of silt on post-cyclic shear strength of sand. Soil Dyn Earthq Eng 97:133–142
42.
Zurück zum Zitat Bahadori H, Ghalandarzadeh A, Towhata I (2008) Effect of non plastic silt on the anisotropic behavior of sand. Soils Found 48(4):531–545 Bahadori H, Ghalandarzadeh A, Towhata I (2008) Effect of non plastic silt on the anisotropic behavior of sand. Soils Found 48(4):531–545
43.
Zurück zum Zitat Kutanaei SS, Choobbasti AJ (2015) Prediction of combined effects of fibers and cement on the mechanical properties of sand using particle swarm optimization algorithm. J Adhes Sci Technol 29(6):487–501 Kutanaei SS, Choobbasti AJ (2015) Prediction of combined effects of fibers and cement on the mechanical properties of sand using particle swarm optimization algorithm. J Adhes Sci Technol 29(6):487–501
44.
Zurück zum Zitat ASTM.D4253 Standard test methods for maximum index density and unit weight of soils using a vibratory table. American Society for Testing and Materials ASTM.D4253 Standard test methods for maximum index density and unit weight of soils using a vibratory table. American Society for Testing and Materials
45.
Zurück zum Zitat ASTM.D4254 Standard test methods for minimum index density and unit weight of soils using a vibratory table. American Society for Testing and Materials ASTM.D4254 Standard test methods for minimum index density and unit weight of soils using a vibratory table. American Society for Testing and Materials
46.
Zurück zum Zitat Wood FM, Yamamuro JA, Lade PV (2008) Effect of depositional method on the undrained response of silty sand. Can Geotech J 45(11):1525–1537 Wood FM, Yamamuro JA, Lade PV (2008) Effect of depositional method on the undrained response of silty sand. Can Geotech J 45(11):1525–1537
47.
Zurück zum Zitat Xia H, Hu T (1991) Effects of saturation and back pressure on sand liquefaction. J Geotech Eng 117(9):1347–1362 Xia H, Hu T (1991) Effects of saturation and back pressure on sand liquefaction. J Geotech Eng 117(9):1347–1362
48.
Zurück zum Zitat ASTM.D5311 Standard test methods for load controlled strength of soil. American Society for Testing and Materials ASTM.D5311 Standard test methods for load controlled strength of soil. American Society for Testing and Materials
49.
Zurück zum Zitat ASTM.D2850 Standard test method for unconsolidated-undrained triaxial compression test on cohesive soils. American Society for Testing and Materials ASTM.D2850 Standard test method for unconsolidated-undrained triaxial compression test on cohesive soils. American Society for Testing and Materials
50.
Zurück zum Zitat Moayed RZ, Khavaninzadeh E, Tochaee MG (2019) Effect of silt presence on shear strength parameters of unsaturated sandy soils. Int J Geotech Geol Eng 13(6):439–442 Moayed RZ, Khavaninzadeh E, Tochaee MG (2019) Effect of silt presence on shear strength parameters of unsaturated sandy soils. Int J Geotech Geol Eng 13(6):439–442
51.
Zurück zum Zitat Phan VT-A, Hsiao D-H, Nguyen PT-L (2016) Effects of fines contents on engineering properties of sand–fines mixtures. Procedia Eng 142:213–220 Phan VT-A, Hsiao D-H, Nguyen PT-L (2016) Effects of fines contents on engineering properties of sand–fines mixtures. Procedia Eng 142:213–220
52.
Zurück zum Zitat Ishihara K (1985) Stability of natural deposits during earthquakes. In: Paper presented at the the 11th international conference on soil mechanics and foundation engineering Ishihara K (1985) Stability of natural deposits during earthquakes. In: Paper presented at the the 11th international conference on soil mechanics and foundation engineering
53.
Zurück zum Zitat Ishihara K, Tatsuoka F, Yasuda S (1975) Undrained deformation and liquefaction of sand under cyclic stresses. Soils Found 15(1):29–44 Ishihara K, Tatsuoka F, Yasuda S (1975) Undrained deformation and liquefaction of sand under cyclic stresses. Soils Found 15(1):29–44
54.
Zurück zum Zitat Rahman MM, Lo S, Gnanendran C (2008) On equivalent granular void ratio and steady state behaviour of loose sand with fines. Can Geotech J 45(10):1439–1456 Rahman MM, Lo S, Gnanendran C (2008) On equivalent granular void ratio and steady state behaviour of loose sand with fines. Can Geotech J 45(10):1439–1456
55.
Zurück zum Zitat Yang S, Sandven R, Grande L (2006) Instability of sand–silt mixtures. Soil Dyn Earthq Eng 26(2–4):183–190 Yang S, Sandven R, Grande L (2006) Instability of sand–silt mixtures. Soil Dyn Earthq Eng 26(2–4):183–190
56.
Zurück zum Zitat Ni Q, Tan T, Dasari G, Hight D (2004) Contribution of fines to the compressive strength of mixed soils. Géotechnique 54(9):561–569 Ni Q, Tan T, Dasari G, Hight D (2004) Contribution of fines to the compressive strength of mixed soils. Géotechnique 54(9):561–569
57.
Zurück zum Zitat Lentini V, Castelli F (2019) Liquefaction resistance of sandy soils from undrained cyclic triaxial tests. Geotech Geol Eng 37(1):201–216 Lentini V, Castelli F (2019) Liquefaction resistance of sandy soils from undrained cyclic triaxial tests. Geotech Geol Eng 37(1):201–216
58.
Zurück zum Zitat El-Kady MS, ElMesmary MA (2018) Cyclic strengths for high density soils related to pore water pressure. Innov Infrastruct Solut 3(1):46 El-Kady MS, ElMesmary MA (2018) Cyclic strengths for high density soils related to pore water pressure. Innov Infrastruct Solut 3(1):46
59.
Zurück zum Zitat Kumar A, Kumari S (2019) Numerical modeling of shallow foundation on liquefiable soil under sinusoidal loading. Geotech Geol Eng 37(2):517–532 Kumar A, Kumari S (2019) Numerical modeling of shallow foundation on liquefiable soil under sinusoidal loading. Geotech Geol Eng 37(2):517–532
Metadaten
Titel
Effect of fines on liquefaction resistance of sand
verfasst von
Asskar Janalizadeh Choobbasti
Hediyeh Selatahneh
Mehrdad Karimi Petanlar
Publikationsdatum
01.12.2020
Verlag
Springer International Publishing
Erschienen in
Innovative Infrastructure Solutions / Ausgabe 3/2020
Print ISSN: 2364-4176
Elektronische ISSN: 2364-4184
DOI
https://doi.org/10.1007/s41062-020-00338-3

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