Araştırma Makalesi
BibTex RIS Kaynak Göster
Yıl 2020, Cilt: 3 Sayı: 4, 157 - 165, 31.12.2020
https://doi.org/10.35208/ert.782042

Öz

Kaynakça

  • https://www.european-dredging.eu/Dredging, The European Dredging Association website. [Online]. Available: (2018)
  • B. Rekik and M. Boutouil, “Geotechnical properties of dredged marine sediments treated at high water/cement ratio,” Geo – Marine Letters, Vol.29, pp. 171 – 179, 2009.
  • Z. Shahri and C.M. Chan, “On the characterization of dredged marine soils from Malaysian waters: physical properties,” Environment and Pollution, Vol. 4, pp. 1 – 9, 2015.
  • J. Limeria, L. Agullo, and M. Etxeberria, “Dredged marine sand as construction material,” in Proc. Journees Nationales Genie Cotier – Genie Civil, 2010.
  • D. Ganesalingam, A. Arulrajah, J. Ameratunga, P. Boyle, and N. Sivakugan, “Geotechnical properties of reconstituted dredged mud,” in Proc. Pan-AM CGS Geotechnical Conference, pp. 1 – 7, 2011.
  • L. Zeng, Z. Hong, and Y. Gao, “Practical estimation of compression behavior of dredged clays with three physical parameters,” Engineering Geology, Vol. 217, pp. 102 – 109, 2017.
  • N.E. Malasavage, S. Jagupilla, D.G. Grubb, M. Wazne, and W.P. Coon, “Geotechnical performance of dredged material – steel slag fines blends: laboratory and field evaluation,” Journal of Geotechnical and Geoenvironmental Engineering, Vol. 8, pp. 981 – 991, 2012. S. Thiyyakkandi and S. Annex, “Effect of organic content on geotechnical properties of Kuttanan clay,” Electronic Journal of Geotechnical Engineering, Vol. 16, pp. 1653 – 1663, 2011.
  • T.T.M. Nguyen, S. Rabbanifar, N.A. Brake, Q. Qian, K. Kibodeaux, H.E. Crochet, S. Oruji, R. Whitt, J. Farrow, B. Belaire, P. Bernazzani, and M. Jao, “Stabilization of silty clayey dredged material,” Journal of Material in Civil Engineering, Vol. 30 (9), pp. 1 – 11, 2018.
  • H. Yu, J. Yin, A. Soleimanbeigi, and W.J. Likos, “Effects of curing time and fly ash content on properties of stabilized dredged material,” Journal of Materials in Civil Engineering, Vol. 29 (10), pp. 1 – 11, 2017.
  • M.Z. Rosman and C. Chan, “Settlement reduction of dredged marine soils (DMS) admixed with cement & waste granular materials (WGM): 1-D compressibility study,” International Journal of GEOMATE, Vol. 13 (38), pp. 104 – 110, 2017. H. Lei, Y. Xu, X. Li, G. Zheng, and G. Liu, “Effects of polyacrylamide on the consolidation behaviour of dredged clay,” Journal of Materials in Civil Engineering, Vol. 30 (3), pp. 1 – 10, 2018.
  • M. Jaditager and N. Sivakugan, “Consolidation behaviour of fly ash-based geopolymer-stabilized dredged mud,” Journal of Waterway, Port, Coastal and Ocean Engineering, Vol. 144 (4), pp. 1 – 7, 2018.
  • B. Ozkırlı and O. Urker, “İzmir Körfezi ve Limanı Rehabilitasyon Projesi kapsamında, Gediz Deltası sulak alanı içerisinde yapılması planlanan tarama malzemesi depolanması ve işlenmesi sürecinin ekolojik ve hukuki olarak incelenmesi,” Doğa Derneği, 2012.
  • ASTM D2974 – 14, “Standard test methods for moisture, ash, and organic matter of peat and other organic soils,” ASTM International, 2014, www.astm.org.
  • ASTM D854-14, “Standard test methods for specific gravity of soil solids by water pycnometer,” ASTM International, 2014, www.astm.org. G. Kocasoy. Atıksu arıtma çamuru ve katı atık ve kompost örneklerinin analiz yöntemleri, 1st ed., Boğaziçi Üniversitesi Yayınları, İstanbul, Turkey. 1994.
  • ASTM D422-63(2007)e2, “Standard test method for particle-size analysis of soils (Withdrawn 2016),” ASTM International, 2007, www.astm.org.
  • ASTM D6913-04(2009)e1, “Standard test methods for particle-size distribution (Gradation) of soils using sieve analysis,” ASTM International, 2009, www.astm.org.
  • BS 1377-1, “Methods of test for soils for civil engineering purposes,” British Standard Institution, London, 2016. ASTM D4318-10e1, “Standard test methods for liquid limit, plastic limit, and plasticity index of soils,” ASTM International, 2010, www.astm.org.
  • ASTM D2487-11, “Standard practice for classification of soils for engineering purposes (Unified Soil Classification System),” ASTM International, 2011, www.astm.org.
  • ASTM D2435/D2435M-11, “Standard test methods for one-dimensional consolidation properties of soils using incremental loading,” ASTM International, 2011, www.astm.org.
  • C. Huang and P.F. Kerr, “Infrared study of the carbonate minerals,” Am. Mineral, Vol. 45, pp. 311 – 324, 1960.
  • T. Nguyen, L.J. Janik, and M. Raupach, “Diffuse reflectance infrared Fourier transform (DRIFT) spectroscopy in soil studies,” Soil Research, Vol. 29(1), pp. 49 – 67, 1991.
  • R. Ravisankar, A. Chandrasekaran, S. Kalaiarsi, P. Eswaran, C. Rajashekhar, K. Vanasundari, and A. Athavale, “Mineral analysis in beach rocks of Andaman Island, India by spectroscopic techniques,” Archives of Applied Science Research, Vol. 3(3), pp. 77 – 84, 2011.
  • C. Chan, “Geo-parametric study of dredged marine clay with solidification for potential reuse as good engineering soil,” Environmental Earth Sciences, Vol. 75, pp. 941 – 955, 2016.
  • G. Kang, T. Tsuchida, and A.M.R. Athapaththu, “Engineering behaviour of cement-treated marine dredged clay during early and later stages of curing,” Engineering Geology, Vol. 209, pp. 163 – 174, 2016.
  • G. Kang, T. Tsuchida, and Y. Kim, “Strength and stiffness of cement-treated marine dredged clay at various curing stages,” Construction and Building Materials, Vol. 132, pp. 71 – 84., 2017.
  • D. Wang, N.E. Abriak, and R. Zentar, “One-dimensional consolidation of lime-treated dredged harbour sediments,” European Journal of Environmental and Civil Engineering, Vol. 19, pp. 199 – 218, 2015.
  • I. Develioglu, and H.F. Pulat, “Geotechnical Properties and Compressibility Behaviorof Organic Dredged Soils,” in Proc. 19th International Conference on Earthquake Geotechnical Engineering, pp. 194 –1 98, 2017.
  • A. Federico, C. Vitone, and A. Murianni, “On the mechanical behaviour of dredged submarine clayey sediments stabilized with lime or cement,” Canadian Geotechnical Journal, Vol. 52, pp. 2030 – 2040, 2015.
  • G. Xu, Y. Gao, J. Yin, R. Yang, and J. Ni, “Compression behaviour of dredged slurries at high water contents,” Marine Georesources & Geotechnology, Vol. 33, pp. 99 – 108, 2015.

Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil

Yıl 2020, Cilt: 3 Sayı: 4, 157 - 165, 31.12.2020
https://doi.org/10.35208/ert.782042

Öz

The use of alternative materials in civil engineering applications contributes to sustainable development and the economy. Large amounts of sediment are produced as waste material regarding to dredging activities in canals and ports. Storage or disposal of this material may cause some environmental and economic problems. To overcome these problems, dredged soils can be used for various civil engineering applications such as filling materials of road, foundation, and embankment. However, dredged soils generally have low bearing capacity, shear strength, and high compressibility due to their organic matter content. Therefore, these soils need to be improved with various additives before using as fillers. In this study, the index and compressibility parameters of a dredged soil were examined. The dredged soils were obtained from İzmir Bay. In the first part, Atterberg’s limit test, sieve analysis, specific gravity, pH determination, scanning electron microscope analysis, Fourier transform infrared spectroscopy and consolidation test has been conducted for dredged samples which have various organic matter content (0, 4, 7 and 11%). In the next part, natural dredged soil samples were mixed with lime and silica fume in various proportions (5, 10, 15, and 20%), and compressibility performance was compared with the natural samples. It has been obtained that liquid and plastic limit, compression index, and void ratio change of natural dredged samples increased when organic matter content increased. While the silica fume has a negative effect on the compressibility behavior of dredged soil, the lime has a positive effect.

Kaynakça

  • https://www.european-dredging.eu/Dredging, The European Dredging Association website. [Online]. Available: (2018)
  • B. Rekik and M. Boutouil, “Geotechnical properties of dredged marine sediments treated at high water/cement ratio,” Geo – Marine Letters, Vol.29, pp. 171 – 179, 2009.
  • Z. Shahri and C.M. Chan, “On the characterization of dredged marine soils from Malaysian waters: physical properties,” Environment and Pollution, Vol. 4, pp. 1 – 9, 2015.
  • J. Limeria, L. Agullo, and M. Etxeberria, “Dredged marine sand as construction material,” in Proc. Journees Nationales Genie Cotier – Genie Civil, 2010.
  • D. Ganesalingam, A. Arulrajah, J. Ameratunga, P. Boyle, and N. Sivakugan, “Geotechnical properties of reconstituted dredged mud,” in Proc. Pan-AM CGS Geotechnical Conference, pp. 1 – 7, 2011.
  • L. Zeng, Z. Hong, and Y. Gao, “Practical estimation of compression behavior of dredged clays with three physical parameters,” Engineering Geology, Vol. 217, pp. 102 – 109, 2017.
  • N.E. Malasavage, S. Jagupilla, D.G. Grubb, M. Wazne, and W.P. Coon, “Geotechnical performance of dredged material – steel slag fines blends: laboratory and field evaluation,” Journal of Geotechnical and Geoenvironmental Engineering, Vol. 8, pp. 981 – 991, 2012. S. Thiyyakkandi and S. Annex, “Effect of organic content on geotechnical properties of Kuttanan clay,” Electronic Journal of Geotechnical Engineering, Vol. 16, pp. 1653 – 1663, 2011.
  • T.T.M. Nguyen, S. Rabbanifar, N.A. Brake, Q. Qian, K. Kibodeaux, H.E. Crochet, S. Oruji, R. Whitt, J. Farrow, B. Belaire, P. Bernazzani, and M. Jao, “Stabilization of silty clayey dredged material,” Journal of Material in Civil Engineering, Vol. 30 (9), pp. 1 – 11, 2018.
  • H. Yu, J. Yin, A. Soleimanbeigi, and W.J. Likos, “Effects of curing time and fly ash content on properties of stabilized dredged material,” Journal of Materials in Civil Engineering, Vol. 29 (10), pp. 1 – 11, 2017.
  • M.Z. Rosman and C. Chan, “Settlement reduction of dredged marine soils (DMS) admixed with cement & waste granular materials (WGM): 1-D compressibility study,” International Journal of GEOMATE, Vol. 13 (38), pp. 104 – 110, 2017. H. Lei, Y. Xu, X. Li, G. Zheng, and G. Liu, “Effects of polyacrylamide on the consolidation behaviour of dredged clay,” Journal of Materials in Civil Engineering, Vol. 30 (3), pp. 1 – 10, 2018.
  • M. Jaditager and N. Sivakugan, “Consolidation behaviour of fly ash-based geopolymer-stabilized dredged mud,” Journal of Waterway, Port, Coastal and Ocean Engineering, Vol. 144 (4), pp. 1 – 7, 2018.
  • B. Ozkırlı and O. Urker, “İzmir Körfezi ve Limanı Rehabilitasyon Projesi kapsamında, Gediz Deltası sulak alanı içerisinde yapılması planlanan tarama malzemesi depolanması ve işlenmesi sürecinin ekolojik ve hukuki olarak incelenmesi,” Doğa Derneği, 2012.
  • ASTM D2974 – 14, “Standard test methods for moisture, ash, and organic matter of peat and other organic soils,” ASTM International, 2014, www.astm.org.
  • ASTM D854-14, “Standard test methods for specific gravity of soil solids by water pycnometer,” ASTM International, 2014, www.astm.org. G. Kocasoy. Atıksu arıtma çamuru ve katı atık ve kompost örneklerinin analiz yöntemleri, 1st ed., Boğaziçi Üniversitesi Yayınları, İstanbul, Turkey. 1994.
  • ASTM D422-63(2007)e2, “Standard test method for particle-size analysis of soils (Withdrawn 2016),” ASTM International, 2007, www.astm.org.
  • ASTM D6913-04(2009)e1, “Standard test methods for particle-size distribution (Gradation) of soils using sieve analysis,” ASTM International, 2009, www.astm.org.
  • BS 1377-1, “Methods of test for soils for civil engineering purposes,” British Standard Institution, London, 2016. ASTM D4318-10e1, “Standard test methods for liquid limit, plastic limit, and plasticity index of soils,” ASTM International, 2010, www.astm.org.
  • ASTM D2487-11, “Standard practice for classification of soils for engineering purposes (Unified Soil Classification System),” ASTM International, 2011, www.astm.org.
  • ASTM D2435/D2435M-11, “Standard test methods for one-dimensional consolidation properties of soils using incremental loading,” ASTM International, 2011, www.astm.org.
  • C. Huang and P.F. Kerr, “Infrared study of the carbonate minerals,” Am. Mineral, Vol. 45, pp. 311 – 324, 1960.
  • T. Nguyen, L.J. Janik, and M. Raupach, “Diffuse reflectance infrared Fourier transform (DRIFT) spectroscopy in soil studies,” Soil Research, Vol. 29(1), pp. 49 – 67, 1991.
  • R. Ravisankar, A. Chandrasekaran, S. Kalaiarsi, P. Eswaran, C. Rajashekhar, K. Vanasundari, and A. Athavale, “Mineral analysis in beach rocks of Andaman Island, India by spectroscopic techniques,” Archives of Applied Science Research, Vol. 3(3), pp. 77 – 84, 2011.
  • C. Chan, “Geo-parametric study of dredged marine clay with solidification for potential reuse as good engineering soil,” Environmental Earth Sciences, Vol. 75, pp. 941 – 955, 2016.
  • G. Kang, T. Tsuchida, and A.M.R. Athapaththu, “Engineering behaviour of cement-treated marine dredged clay during early and later stages of curing,” Engineering Geology, Vol. 209, pp. 163 – 174, 2016.
  • G. Kang, T. Tsuchida, and Y. Kim, “Strength and stiffness of cement-treated marine dredged clay at various curing stages,” Construction and Building Materials, Vol. 132, pp. 71 – 84., 2017.
  • D. Wang, N.E. Abriak, and R. Zentar, “One-dimensional consolidation of lime-treated dredged harbour sediments,” European Journal of Environmental and Civil Engineering, Vol. 19, pp. 199 – 218, 2015.
  • I. Develioglu, and H.F. Pulat, “Geotechnical Properties and Compressibility Behaviorof Organic Dredged Soils,” in Proc. 19th International Conference on Earthquake Geotechnical Engineering, pp. 194 –1 98, 2017.
  • A. Federico, C. Vitone, and A. Murianni, “On the mechanical behaviour of dredged submarine clayey sediments stabilized with lime or cement,” Canadian Geotechnical Journal, Vol. 52, pp. 2030 – 2040, 2015.
  • G. Xu, Y. Gao, J. Yin, R. Yang, and J. Ni, “Compression behaviour of dredged slurries at high water contents,” Marine Georesources & Geotechnology, Vol. 33, pp. 99 – 108, 2015.
Toplam 29 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Çevresel Olarak Sürdürülebilir Mühendislik
Bölüm Research Articles
Yazarlar

Inci Develioglu 0000-0001-6594-8095

Hasan Fırat Pulat 0000-0002-8298-7106

Yayımlanma Tarihi 31 Aralık 2020
Gönderilme Tarihi 18 Ağustos 2020
Kabul Tarihi 28 Eylül 2020
Yayımlandığı Sayı Yıl 2020 Cilt: 3 Sayı: 4

Kaynak Göster

APA Develioglu, I., & Pulat, H. F. (2020). Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil. Environmental Research and Technology, 3(4), 157-165. https://doi.org/10.35208/ert.782042
AMA Develioglu I, Pulat HF. Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil. ERT. Aralık 2020;3(4):157-165. doi:10.35208/ert.782042
Chicago Develioglu, Inci, ve Hasan Fırat Pulat. “Experimental Evaluation of Compressibility Parameters of Lime and Silica Fume Stabilized Dredged Soil”. Environmental Research and Technology 3, sy. 4 (Aralık 2020): 157-65. https://doi.org/10.35208/ert.782042.
EndNote Develioglu I, Pulat HF (01 Aralık 2020) Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil. Environmental Research and Technology 3 4 157–165.
IEEE I. Develioglu ve H. F. Pulat, “Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil”, ERT, c. 3, sy. 4, ss. 157–165, 2020, doi: 10.35208/ert.782042.
ISNAD Develioglu, Inci - Pulat, Hasan Fırat. “Experimental Evaluation of Compressibility Parameters of Lime and Silica Fume Stabilized Dredged Soil”. Environmental Research and Technology 3/4 (Aralık 2020), 157-165. https://doi.org/10.35208/ert.782042.
JAMA Develioglu I, Pulat HF. Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil. ERT. 2020;3:157–165.
MLA Develioglu, Inci ve Hasan Fırat Pulat. “Experimental Evaluation of Compressibility Parameters of Lime and Silica Fume Stabilized Dredged Soil”. Environmental Research and Technology, c. 3, sy. 4, 2020, ss. 157-65, doi:10.35208/ert.782042.
Vancouver Develioglu I, Pulat HF. Experimental evaluation of compressibility parameters of lime and silica fume stabilized dredged soil. ERT. 2020;3(4):157-65.