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A new improvement technique for expansive soils

Yıl 2024, Cilt: 42 Sayı: 4, 1058 - 1066, 01.08.2024

Öz

In this study, a Unified Soil Improvement Technique (USIT) that consists of prewetting, calcium lignosulphonate lime piles, fabric, and soil nail was applied to an expansive soil specimen to both accelerate the process and increase the effect of these techniques. 19 boreholes that had 0.45 cm diameter and 1.9 cm height were opened into an expansive soil specimen in an oedometer ring. Then, these boreholes were filled with a calcium lignosulphonate-water mixture prepared in a liquid form during the prewetting process. Thereafter, these boreholes were filled with a mixture including calcium lignosulphonate, water, and lime. Finally, a fabric was laid down over this specimen and seven pieces of soil nails were used for connecting the fabric and the lime piles. To sum up, the swelling potential of expansive soil specimens under 7 kPa decreased from 43.95 % to 1.58 % after 28 day curing period. The CBR swell of the USIT specimens, which waited in the humid room for 90 days, was measured as 1.14% under 7 kPa surcharge pressure and was measured as 0.4% under 25 kPa surcharge pressure. The significant changes in the swell potential values suggest that the Unified Soil Improvement Technique’s performance is better than calcium lignosulphonate-added lime piles in the improvement of expansive clays.

Kaynakça

  • [1] Nelson JD, Chao KC, Overton DD, Nelson EJ. Foundation Engineering for Expansive Soils Foundation Engineering for Expansive Soils. 1st ed. New Jersey: Wiley; 2015. [CrossRef]
  • [2] Parhi PS, Garanayak L, Mahamaya M, Das SK. Stabilization of expansive soil using alkali-activated fly ash based geopolymer. In: Hoyos L, McCartney J, editors. Advances in Characterization and Analysis of Expansive Soils and Rocks. New York, USA: Springer; 2017. p. 36–50. [CrossRef]
  • [3] Nelson J, Miller DJ. Expansive Soils: Problems and Practice in Foundation and Pavement Engineering. New York: Wiley; 1992.
  • [4] Teng TCP, Mattox RM, Clisby MB. A study of active clays as related to highway design. Available at: https://trid.trb.org/view/285608. Accessed on Jul 4, 2024.
  • [5] Callebaut F, Gabriels D, Boodt MD. The effect of polymer structure on soil physicochemical properties and soil water evaporation. J Chem Technol Biotechnol 1979;29:723–729. [CrossRef]
  • [6] Rana D, Neale GH, Hornof V. Surface tension of mixed surfactant systems: Lignosulfonate and sodium dodecyl sulfate. Colloid Polym Sci 2002;280:775–758. [CrossRef]
  • [7] Yang D, Qiu X, Zhou M, Lou H. Properties of sodium lignosulfonate as a dispersant of coal water slurry. Energy Convers Manage 2007;48:2433–2438. [CrossRef]
  • [8] Ekinci CE, Ay S, Baykuş N, Ay A. Examination of the impact of lignin sulfonate based structure chemicals on fresh and hardened concrete. Pamukkale Univ Muh Bil Derg 2016;22:478–485. Turkish. [CrossRef]
  • [9] Tingle J, Santoni R. Stabilization of clay soils with nontraditional additives. Transp Res Rec 2003;1819:72–84. [CrossRef]
  • [10] Vakili AH, Salimi M, Lu Y, Shamsi M, Nazari Z. Strength and post-freeze-thaw behavior of a marl soil modified by lignosulfonate and polypropylene fiber: An environmentally friendly approach. Constr Build Mater 2022;332:127364. [CrossRef]
  • [11] Tingle JS, Newman JK, Larson SL, Weiss CA, Rushing JF. Stabilization mechanisms of non-traditional additives. Transp Res Rec 2007;1989-2:59–67. [CrossRef]
  • [12] Vinod JS, Indraratna B, Mahamud M. Stabilization of an erodible soil using chemical admixtures. Available at: https://ro.uow.edu.au/cgi/viewcontent.cgi?article=1721&context=eispapers. Accessed on Jul 4, 2024.
  • [13] Chen Q, Indraratna B. Shear behavior of sandy silt treated with lignosulfonate. Can Geotech J 2015;52(8):1180–1185. [CrossRef]
  • [14] Vakili AH, Kaedi M, Mokhberi M, bin Selamat MR, Salimi M. Treatment of highly dispersive clay by lignosulfonate addition and electroosmosis application. Appl Clay Sci 2018;152:1–8. [CrossRef]
  • [15] Rogers CDF, Glendinning S. Modification of clay soils using lime. In Proceedings, Seminar on Lime Stabilization; 1996 Sept 25; London, United Kingdom. 1996. p. 99–114.
  • [16] Muntohar AS. A laboratory test on the strength and load-settlement characteristic of improved soft soil using lime-column. Dinamika Teknik Sipil 2010;10:202–207.
  • [17] Subbarao RGV. Foundation practices and rehabilitation of structures on expansive soil. Available at: https://www.nbmcw.com/product-technology/construction-chemicals-waterproofing/waterproofing-repair-chemicals/foundation-practices-a-rehabilitation-of-structures-on-expansive-soils.html. Accessed on Jul 4, 2024.
  • [18] Özkan İ, Çokça E. The effect of lime pile parameters on the improvement of the swelling potential of expansive clay. Arab J Geosci 2022;15:1–13. [CrossRef]
  • [19] Gnana Prasanna G, Kumar M, Dhanaraj A, Raja Sekhar K. Shear strength behavior of the flyash treated lime columns on expansive soils. In proceedings of the Indian Geotechnical Conference; 2022 Jun 8; New Delhi, India. 2022.
  • [20] Subaida EA, Chandrakaran S, Sankar N. Laboratory performance of unpaved roads reinforced with woven coir geotextiles. Geotext Geomembr 2009;27:204–210. [CrossRef]
  • [21] Nguyen TT, Indraratna B. Experimental and numerical investigations into hydraulic behavior of coir fiber drain. Can Geotech J 2017;54:75–87. [CrossRef]
  • [22] Broda J, Grzybowska-Pietras J, Gawłowski A, Rom M, Przybylo S, Laszczak R. Application of wool geotextiles for the protection of steep slopes. Procedia Eng 2017;200:112–119. [CrossRef]
  • [23] Prambauer M, Wendeler C, Weitzenböck J, Burgstaller C. Biodegradable geotextiles — An overview of existing and potential materials. Geotext Geomembr 2019;47:48–59. [CrossRef]
  • [24] Tiwari N, Satyam N. An experimental study on the behavior of lime and silica fume-treated coir geotextile reinforced expansive soil subgrade. Eng Sci Technol Int J 2020;23:1214–1222. [CrossRef]
  • [25] Lazarte CA, Robinson H, Gómez JE, Baxter A, Cadden A, Berg R. Soil nail walls reference manual. Available at: https://www.fhwa.dot.gov/engineering/geotech/pubs/nhi14007.pdf. Accessed on Jul 4, 2024.
  • [26] Madhyannapu RS, Puppala AJ. Design and construction guidelines for deep soil mixing to stabilize expansive soils. J Geotech Geoenviron Eng 2014;140:04014051. [CrossRef]
  • [27] Seed HB, Woodward RJ Jr, Lundgren R. Prediction of swelling potential for compacted clays. J ASCE Soil Mech Found Div 1962;88:53–87. [CrossRef]
Yıl 2024, Cilt: 42 Sayı: 4, 1058 - 1066, 01.08.2024

Öz

Kaynakça

  • [1] Nelson JD, Chao KC, Overton DD, Nelson EJ. Foundation Engineering for Expansive Soils Foundation Engineering for Expansive Soils. 1st ed. New Jersey: Wiley; 2015. [CrossRef]
  • [2] Parhi PS, Garanayak L, Mahamaya M, Das SK. Stabilization of expansive soil using alkali-activated fly ash based geopolymer. In: Hoyos L, McCartney J, editors. Advances in Characterization and Analysis of Expansive Soils and Rocks. New York, USA: Springer; 2017. p. 36–50. [CrossRef]
  • [3] Nelson J, Miller DJ. Expansive Soils: Problems and Practice in Foundation and Pavement Engineering. New York: Wiley; 1992.
  • [4] Teng TCP, Mattox RM, Clisby MB. A study of active clays as related to highway design. Available at: https://trid.trb.org/view/285608. Accessed on Jul 4, 2024.
  • [5] Callebaut F, Gabriels D, Boodt MD. The effect of polymer structure on soil physicochemical properties and soil water evaporation. J Chem Technol Biotechnol 1979;29:723–729. [CrossRef]
  • [6] Rana D, Neale GH, Hornof V. Surface tension of mixed surfactant systems: Lignosulfonate and sodium dodecyl sulfate. Colloid Polym Sci 2002;280:775–758. [CrossRef]
  • [7] Yang D, Qiu X, Zhou M, Lou H. Properties of sodium lignosulfonate as a dispersant of coal water slurry. Energy Convers Manage 2007;48:2433–2438. [CrossRef]
  • [8] Ekinci CE, Ay S, Baykuş N, Ay A. Examination of the impact of lignin sulfonate based structure chemicals on fresh and hardened concrete. Pamukkale Univ Muh Bil Derg 2016;22:478–485. Turkish. [CrossRef]
  • [9] Tingle J, Santoni R. Stabilization of clay soils with nontraditional additives. Transp Res Rec 2003;1819:72–84. [CrossRef]
  • [10] Vakili AH, Salimi M, Lu Y, Shamsi M, Nazari Z. Strength and post-freeze-thaw behavior of a marl soil modified by lignosulfonate and polypropylene fiber: An environmentally friendly approach. Constr Build Mater 2022;332:127364. [CrossRef]
  • [11] Tingle JS, Newman JK, Larson SL, Weiss CA, Rushing JF. Stabilization mechanisms of non-traditional additives. Transp Res Rec 2007;1989-2:59–67. [CrossRef]
  • [12] Vinod JS, Indraratna B, Mahamud M. Stabilization of an erodible soil using chemical admixtures. Available at: https://ro.uow.edu.au/cgi/viewcontent.cgi?article=1721&context=eispapers. Accessed on Jul 4, 2024.
  • [13] Chen Q, Indraratna B. Shear behavior of sandy silt treated with lignosulfonate. Can Geotech J 2015;52(8):1180–1185. [CrossRef]
  • [14] Vakili AH, Kaedi M, Mokhberi M, bin Selamat MR, Salimi M. Treatment of highly dispersive clay by lignosulfonate addition and electroosmosis application. Appl Clay Sci 2018;152:1–8. [CrossRef]
  • [15] Rogers CDF, Glendinning S. Modification of clay soils using lime. In Proceedings, Seminar on Lime Stabilization; 1996 Sept 25; London, United Kingdom. 1996. p. 99–114.
  • [16] Muntohar AS. A laboratory test on the strength and load-settlement characteristic of improved soft soil using lime-column. Dinamika Teknik Sipil 2010;10:202–207.
  • [17] Subbarao RGV. Foundation practices and rehabilitation of structures on expansive soil. Available at: https://www.nbmcw.com/product-technology/construction-chemicals-waterproofing/waterproofing-repair-chemicals/foundation-practices-a-rehabilitation-of-structures-on-expansive-soils.html. Accessed on Jul 4, 2024.
  • [18] Özkan İ, Çokça E. The effect of lime pile parameters on the improvement of the swelling potential of expansive clay. Arab J Geosci 2022;15:1–13. [CrossRef]
  • [19] Gnana Prasanna G, Kumar M, Dhanaraj A, Raja Sekhar K. Shear strength behavior of the flyash treated lime columns on expansive soils. In proceedings of the Indian Geotechnical Conference; 2022 Jun 8; New Delhi, India. 2022.
  • [20] Subaida EA, Chandrakaran S, Sankar N. Laboratory performance of unpaved roads reinforced with woven coir geotextiles. Geotext Geomembr 2009;27:204–210. [CrossRef]
  • [21] Nguyen TT, Indraratna B. Experimental and numerical investigations into hydraulic behavior of coir fiber drain. Can Geotech J 2017;54:75–87. [CrossRef]
  • [22] Broda J, Grzybowska-Pietras J, Gawłowski A, Rom M, Przybylo S, Laszczak R. Application of wool geotextiles for the protection of steep slopes. Procedia Eng 2017;200:112–119. [CrossRef]
  • [23] Prambauer M, Wendeler C, Weitzenböck J, Burgstaller C. Biodegradable geotextiles — An overview of existing and potential materials. Geotext Geomembr 2019;47:48–59. [CrossRef]
  • [24] Tiwari N, Satyam N. An experimental study on the behavior of lime and silica fume-treated coir geotextile reinforced expansive soil subgrade. Eng Sci Technol Int J 2020;23:1214–1222. [CrossRef]
  • [25] Lazarte CA, Robinson H, Gómez JE, Baxter A, Cadden A, Berg R. Soil nail walls reference manual. Available at: https://www.fhwa.dot.gov/engineering/geotech/pubs/nhi14007.pdf. Accessed on Jul 4, 2024.
  • [26] Madhyannapu RS, Puppala AJ. Design and construction guidelines for deep soil mixing to stabilize expansive soils. J Geotech Geoenviron Eng 2014;140:04014051. [CrossRef]
  • [27] Seed HB, Woodward RJ Jr, Lundgren R. Prediction of swelling potential for compacted clays. J ASCE Soil Mech Found Div 1962;88:53–87. [CrossRef]
Toplam 27 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Yapısal Biyoloji
Bölüm Research Articles
Yazarlar

İlyas Özkan Bu kişi benim 0000-0001-9660-8229

Erdal Cokca 0000-0001-8367-2539

Yayımlanma Tarihi 1 Ağustos 2024
Gönderilme Tarihi 10 Ocak 2023
Yayımlandığı Sayı Yıl 2024 Cilt: 42 Sayı: 4

Kaynak Göster

Vancouver Özkan İ, Cokca E. A new improvement technique for expansive soils. SIGMA. 2024;42(4):1058-66.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK https://eds.yildiz.edu.tr/sigma/