Tensile strength behavior of cement-stabilized dredged sediment reinforced by polypropylene fiber
Lei LANG, Jiangshan LI, Xin CHEN, Lijun HAN, Ping WANG
Tensile strength behavior of cement-stabilized dredged sediment reinforced by polypropylene fiber
This study evaluated the feasibility of using polypropylene fiber (PF) as reinforcement in improving tensile strength behavior of cement-stabilized dredged sediment (CDS). The effects of cement content, water content, PF content and length on the tensile strength and stress–strain behavioral evolutions were evaluated by conducting splitting tensile strength tests. Furthermore, the micro-mechanisms characterizing the tensile strength behavior inside PF-reinforced CDS (CPFDS) were clarified via analyzing macro failure and microstructure images. The results indicate that the highest tensile strengths of 7, 28, 60, and 90 d CPFDS were reached at PF contents of 0.6%, 1.0%, 1.0%, and 1.0%, exhibiting values 5.96%, 65.16%, 34.10%, and 35.83% higher than those of CDS, respectively. Short, 3 mm, PF of showed the best reinforcement efficiency. The CPFDS exhibited obvious tensile strain-hardening characteristic, and also had better ductility than CDS. The mix factor (CCa/Cwb) and time parameter (qt0(t)) of CDS, and the reinforcement index (kt-PF) of CPFDS were used to establish the tensile strength prediction models of CDS and CPFDS, considering multiple factors. The PF “bridge effect” and associated cementation-reinforcement coupling actions inside CPFDS were mainly responsible for tensile strength behavior improvement. The key findings contribute to the use of CPFDS as recycled engineering soils.
dredged sediment / chemical stabilization / fiber reinforcement / splitting tensile strength / micro-mechanisms
[1] |
Wu J, Xu Z, Li H, Li P, Wang M, Xiong L, Zhang J. Long-term effect of water diversion and CSOs on the remediation of heavy metals and microbial community in river sediments. Water Science and Technology, 2019, 79(12): 2395–2406
CrossRef
Google scholar
|
[2] |
KvasnickaJBurton G A JSemrauJJollietO. Dredging contaminated sediments: Is it worth the risks? Environmental Toxicology and Chemistry, 2020, 39(3): 515–516
|
[3] |
Lirer S, Liguori B, Capasso I, Flora A, Caputo D. Mechanical and chemical properties of composite materials made of dredged sediments in a fly-ash based geopolymer. Journal of Environmental Management, 2017, 191: 1–7
CrossRef
Google scholar
|
[4] |
Bates M E, Fox-Lent C, Seymour L, Wender B A, Linkov I. Life cycle assessment for dredged sediment placement strategies. Science of the Total Environment, 2015, 511: 309–318
CrossRef
Google scholar
|
[5] |
Zhang Y, Ong Y J, Yi Y. Comparison between CaO- and MgO-activated ground granulated blast-furnace slag (GGBS) for stabilization/solidification of Zn-contaminated clay slurry. Chemosphere, 2022, 286: 131860
CrossRef
Google scholar
|
[6] |
Lang L, Liu N, Chen B. Strength development of solidified dredged sludge containing humic acid with cement, lime and nano-SiO2. Construction & Building Materials, 2020, 230: 116971
CrossRef
Google scholar
|
[7] |
Lang L, Chen B, Li J. High-efficiency stabilization of dredged sediment using nano-modified and chemical-activated binary cement. Journal of Rock Mechanics and Geotechnical Engineering, 2023, 15(8): 2117–2131
CrossRef
Google scholar
|
[8] |
Wang D, Wang H, Larsson S, Benzerzour M, Maherzi W, Amar M. Effect of basalt fiber inclusion on the mechanical properties and microstructure of cement-solidified kaolinite. Construction & Building Materials, 2020, 241: 118085
CrossRef
Google scholar
|
[9] |
Akbari H R, Sharafi H, Goodarzi A R. Effect of polypropylene fiber inclusion in kaolin clay stabilized with lime and nano-zeolite considering temperature of 20 and 40 °C. Bulletin of Engineering Geology and the Environment, 2021, 80(2): 1841–1855
CrossRef
Google scholar
|
[10] |
Divya P V, Viswanadham B V S, Gourc J P. Evaluation of tensile strength-strain characteristics of fiber-reinforced soil through laboratory tests. Journal of Materials in Civil Engineering, 2014, 26(1): 14–23
CrossRef
Google scholar
|
[11] |
Tang C S, Wang D Y, Cui Y J, Shi B, Li J. Tensile strength of fiber-reinforced soil. Journal of Materials in Civil Engineering, 2016, 28(7): 04016031
CrossRef
Google scholar
|
[12] |
Correia A A S, Oliveira P J V, Custodio D G. Effect of polypropylene fibres on the compressive and tensile strength of a soft soil, artificially stabilised with binders. Geotextiles and Geomembranes, 2015, 43(2): 97–106
CrossRef
Google scholar
|
[13] |
Li J, Tang C, Wang D, Pei X, Shi B. Effect of discrete fibre reinforcement on soil tensile strength. Journal of Rock Mechanics and Geotechnical Engineering, 2014, 6(2): 133–137
CrossRef
Google scholar
|
[14] |
Abdi M R, Ghalandarzadeh A, Chafi L S. An investigation into the effects of lime on compressive and shear strength characteristics of fiber-reinforced clays. Journal of Rock Mechanics and Geotechnical Engineering, 2021, 13(4): 885–898
CrossRef
Google scholar
|
[15] |
Tamrakar S B, Toyosawa Y, Mitachi T, Itoh K. Tensile strength of compacted and saturated soils using newly developed tensile strength measuring apparatus. Soil and Foundation, 2005, 45(6): 103–110
CrossRef
Google scholar
|
[16] |
Viswanadham B V S, Jha B K, Pawar S N. Experimental study on flexural testing of compacted soil beams. Journal of Materials in Civil Engineering, 2010, 22(5): 460–468
CrossRef
Google scholar
|
[17] |
Kim T H, Kim T H, Kang G C, Ge L. Factors influencing crack-induced tensile strength of compacted soil. Journal of Materials in Civil Engineering, 2012, 24(3): 315–320
CrossRef
Google scholar
|
[18] |
Boz A, Sezer A. Influence of fiber type and content on freeze–thaw resistance of fiber reinforced lime stabilized clay. Cold Regions Science and Technology, 2018, 151: 359–366
CrossRef
Google scholar
|
[19] |
Akbari H R, Sharafi H, Goodarzi A R. Effect of polypropylene fiber and nano-zeolite on stabilized soft soil under wet–dry cycles. Geotextiles and Geomembranes, 2021, 49(6): 1470–1482
CrossRef
Google scholar
|
[20] |
Tang C, Shi B, Gao W, Chen F, Cai Y. Strength and mechanical behavior of short polypropylene fiber reinforced and cement stabilized clayey soil. Geotextiles and Geomembranes, 2007, 25(3): 194–202
CrossRef
Google scholar
|
[21] |
Liu C, Lv Y, Yu X, Wu X. Effects of freeze–thaw cycles on the unconfined compressive strength of straw fiber-reinforced soil. Geotextiles and Geomembranes, 2020, 48(4): 581–590
CrossRef
Google scholar
|
[22] |
Lv C, Zhu C, Tang C S, Cheng Q, Yin L Y, Shi B. Effect of fiber reinforcement on the mechanical behavior of bio-cemented sand. Geosynthetics International, 2021, 28(2): 195–205
CrossRef
Google scholar
|
[23] |
Lang L, Chen B. Strength properties of cement-stabilized dredged sludge incorporating nano-SiO2 and straw fiber. International Journal of Geomechanics, 2021, 21(7): 04021119
CrossRef
Google scholar
|
[24] |
GüllüHKhudirA. Effect of freeze–thaw on unconfined compressive strength of fine-grained soil treated with jute fiber, steel fiber and lime. Cold Regions Science and Technology, 2014, 106–107: 55-65
|
[25] |
Wang Y X, Guo P P, Ren W X, Yuan B X, Yuan H P, Zhao Y L, Shan S B, Cao P. Laboratory investigation on strength characteristics of expansive soil treated with jute fiber reinforcement. International Journal of Geomechanics, 2017, 17(11): 04017101
CrossRef
Google scholar
|
[26] |
Valipour M, Shourijeh P T, Mohammadinia A. Application of recycled tire polymer fibers and glass fibers for clay reinforcement. Transportation Geotechnics, 2021, 27: 100474
CrossRef
Google scholar
|
[27] |
Lang L, Chen B, Li D. Effect of nano-modification and fiber-reinforcement on mechanical behavior of cement-stabilized dredged sediment. Marine Georesources and Geotechnology, 2022, 40(8): 936–952
CrossRef
Google scholar
|
[28] |
Wang H S, Tang C S, Gu K, Shi B, Inyang H I. Mechanical behavior of fiber-reinforced, chemical stabilized dredged sludge. Bulletin of Engineering Geology and the Environment, 2020, 79(2): 629–643
CrossRef
Google scholar
|
[29] |
Changizi F, Haddad A. Strength properties of soft clay treated with mixture of nano-SiO2 and recycled polyester fiber. Journal of Rock Mechanics and Geotechnical Engineering, 2015, 7(4): 367–378
CrossRef
Google scholar
|
[30] |
Xiao Y, He X, Evans T M, Stuedlein A W, Liu H. Unconfined compressive and splitting tensile strength of basalt fiber-reinforced biocemented sand. Journal of Geotechnical and Geoenvironmental Engineering, 2019, 145(9): 04019048
CrossRef
Google scholar
|
[31] |
Consoil N C, Festugato L, Miguel G D, Moreira E B, Filho H C S. Fatigue life of green stabilized fiber-reinforced sulfate-rich dispersive soil. Journal of Materials in Civil Engineering, 2021, 33(9): 04021249
CrossRef
Google scholar
|
[32] |
Yadav J S, Tiwari S K. Evaluation on failure of fiber-reinforced sand. Journal of Geotechnical and Geoenvironmental Engineering, 2017, 139(1): 95–106
|
[33] |
Cristelo N, Cunha V M C F, Gomes A T, Araujo N, Miranda T. Influence of fibre reinforcement on the post-cracking behaviour of a cement-stabilised sandy-clay subjected to indirect tensile stress. Construction & Building Materials, 2017, 138: 163–173
CrossRef
Google scholar
|
[34] |
Zhao Y, Xiao Z, Fan C, Shen W, Wang Q, Liu P. Comparative mechanical behaviors of four fiber-reinforced sand cemented by microbially induced carbonate precipitation. Bulletin of Engineering Geology and the Environment, 2020, 79(6): 3075–3086
CrossRef
Google scholar
|
[35] |
Xiao H, Liu Y. A prediction model for the tensile strength of cement-admixed clay with randomly orientated fibres. European Journal of Environmental and Civil Engineering, 2018, 22(9): 1131–1145
CrossRef
Google scholar
|
[36] |
Festugato L, Silva A P, Diambra A, Consoil N C, Ibraim E. Modelling tensile/compressive strength ratio of fibre reinforced cemented soils. Geotextiles and Geomembranes, 2018, 46(2): 155–165
CrossRef
Google scholar
|
[37] |
GB/T50123-2019. Standard for Soil Test Method. Beijing: Standards Press of China, 2019 (in Chinese)
|
[38] |
ASTMC496-2011. Standard Test Method for Splitting Tensile Strength of Cylindrical Concrete Specimens. PA: ASTM International, 2011
|
[39] |
Wang Y, Guo P, Shan S, Yuan H, Yuan B. Study on strength influence mechanism of fiber-reinforced expansive soil using jute. Geotechnical and Geological Engineering, 2016, 34(4): 1079–1088
CrossRef
Google scholar
|
[40] |
Wang S, Xue Q, Ma W, Zhao K, Wu Z. Experimental study on mechanical properties of fiber-reinforced and geopolymer-stabilized clay soil. Construction & Building Materials, 2021, 272: 121914
CrossRef
Google scholar
|
/
〈 | 〉 |