DOI QR코드

DOI QR Code

Durability assessments of limestone mortars containing polypropylene fibres waste

  • Bendjillali, Khadra (Department of Civil Engineering, Laboratory of Structures Rehabilitation and Materials, University Amar Telidji) ;
  • Boulekbache, Bensaid (Department of Civil Engineering, Laboratory of Materials Sciences and Environment, University Hassiba Benbouali) ;
  • Chemrouk, Mohamed (Department of Structure and Materials, Laboratory of Buildings in the Environment, University of Sciences and Technology Houari Boumediene)
  • 투고 : 2020.05.14
  • 심사 : 2020.08.06
  • 발행 : 2020.08.25

초록

The main objective of this study is the assessment of the ability of limestone mortars to resist to different chemical attacks. The ability of polypropylene (PP) fibres waste used as reinforcement of these concrete materials to enhance their durability is also studied. Crushed sand 0/2 mm which is a fine limestone residue obtained by the crushing of natural rocks in aggregates industry is used for the fabrication of the mortar. The fibres used, which are obtained from the waste of domestic plastic sweeps' fabrication, have a length of 20 mm and a diameter ranging between 0.38 and 0.51 mm. Two weight fibres contents are used, 0.5 and 1%. The durability tests carried out in this investigation included the water absorption by capillarity, the mass variation, the flexural and the compressive strengths of the mortar specimens immersed for 366 days in 5% sodium chloride, 5% magnesium sulphate and 5% sulphuric acid solutions. A mineralogical analysis by X-ray diffraction (XRD) and a visual inspection are used for a better examination of the quality of tested mortars and for better interpretation of their behaviour in different solutions. The results indicate that the reinforcement of limestone mortar by PP fibres waste is an excellent solution to improve its chemical resistance and durability. Moreover, the presence of PP fibres waste does not affect significantly the water absorption by capillarity of mortar nether its mass variation, when exposed to chloride and sulphate solutions. While in sulphuric acid, the mass loss is higher with the presence of PP fibres waste, especially after an exposure of 180 days. The results reveal that these fibres have a considerable effect of the flexural and the compressive behaviour of mortar especially in acid solution, where a reduction of strength loss is observed. The mineralogical analysis confirms the good behaviour of mortar immersed in sulphate and chloride solutions; and shows that more gypsum is formed in mortar exposed to acid environment causing its rapid degradation. The visual observation reveals that only samples exposed to acid attack during 366 days have showed a surface damage extending over a depth of approximately 300 ㎛.

키워드

참고문헌

  1. Afroughsabet, V. and Ozbakkaloglu, T. (2015), "Mechanical and durability properties of high-strength concrete containing steel and polypropylene fibers", Constr. Build. Mater., 94, 73-82. https://doi.org/10.1016/j.conbuildmat.2015.06.051.
  2. Afroughsabet, V., Biolzi, L. and Ozbakkaloglu, T. (2016), "High-performance fiber-reinforced concrete: a review", J. Mater. Sci., 51, 6517-6551. https://doi.org/10.1007/s10853-016-9917-4.
  3. Al-Hadithi, A.I. and Abbas, M.A. (2018), "The Effects of adding waste plastic fibers on the flexural toughness of normal concrete", J. Eng. Appl. Sci., 13(24), 10282-10290.
  4. Al-Kheetan, M.J. and Rahman, M.M. (2019), "Integration of anhydrous sodium acetate (ASAc) into concrete pavement for protection against harmful impact of deicing salt", JOM, 71(12), 4899-4909. https://doi.org/10.1007/s11837-019-03624-3.
  5. Al-Kheetan, M.J., Rahman, M.M. and Chamberlain, D.A. (2019), "Moisture evaluation of concrete pavement treated with hydrophobic surface impregnants", Int. J. Pavement. Eng, 1-9. https://doi.org/10.1080/10298436.2019.1567917.
  6. Al-Kheetan, M.J., Rahman, M.M., Ghaffar, S.H., Al-Tarawneh, M. and Jweihan, Y.S. (2020), "Comprehensive investigation of the long-term performance of internally integrated concrete pavement with Sodium Acetate", Result. Eng., 6, 100110. https://doi.org/10.1016/j.rineng.2020.100110.
  7. Ashish, D.K., Singh, B. and Verma, S.K. (2016), "The effect of attack of chloride and sulphate on ground granulated blast furnace slag concrete", Adv. Concrete Constr., 4(2), 107-121. http://dx.doi.org/10.12989/acc.2016.4.2.107.
  8. ASTM C 1012 (2004), Standard Test Method for Length Change of Hydraulic-Cement Mortars Exposed to a Sulfate Solution, ASTM International, West Conshohocken, USA.
  9. Ayinde, O.O., Zuo, X.B. and Yin, G.J. (2019), "Numerical analysis of concrete degradation due to chloride-induced steel corrosion", Adv. Concrete Constr., 7(4), 203-210. https://doi.org/10.12989/acc.2019.7.4.203.
  10. Aziez, M.N. and Bezzar, A. (2017), "Effect of temperature and type of sand on the magnesium sulphate attack in sulphate resisting Portland cement mortars", J. Adhesion. Sci. Tech., 32(3), 272-290. https://doi.org/10.1080/01694243.2017.1353398.
  11. Bendjillali, K. (2015), "Study of the influence of polypropylene fibrous reinforcement on the physic-mechanical performances and durability of cement mortar based on limestone sand", Ph.D. Dissertation, USTHB, Algiers.
  12. Bendjillali, K. and Chemrouk, M. (2018), "Study of the reinforcement of structure members by polypropylene fibres waste", MATEC. Web. Conf., 149, 01022. https://doi.org/10.1051/matecconf/201814901022.
  13. Bendjillali, K. and Makhloufi, Z. (2012), "Study of the effect of the nature of aggregates on the mechanical behaviour of the concrete in hot and dry zones "Contribution of the curing"", MATEC. Web. Conf., 2, 01013. https://doi.org/10.1051/matecconf/20120201013.
  14. Bendjillali, K., Chemrouk, M. and Boulekbache, B. (2019), "Performances of cementitious mortars containing recycled synthetic fibres under hot-dry climate", Eur. J. Environ. Civil Eng., 23(10), 1235-1247. https://doi.org/10.1080/19648189.2017.1344152
  15. Berredjem, L., Arabi, N. and Molez, L. (2020), "Mechanical and durability properties of concrete based on recycled coarse and fine aggregates produced from demolished concrete", Constr. Build. Mater., 246, 118421. https://doi.org/10.1016/j.conbuildmat.2020.118421.
  16. Bolat, H., Simsek, O., Cullu, M., Durmus, G. and Can, O. (2014), "The effects of macro synthetic fiber reinforcement use on physical and mechanical properties of concrete", Compos. Part B: Eng., 61, 191-198. https://doi.org/10.1016/j.compositesb.2014.01.043.
  17. Boyd, A.J. and Mindess, S. (2004), "The use of tension testing to investigate the effect of W/C ratio and cement type on the resistance of concrete to sulfate attack", Cement Concrete Res., 34(3), 373-377. https://doi.org/10.1016/j.cemconres.2003.08.010.
  18. Chemrouk, M. (2015), "The deteriorations of reinforced concrete and the option of high performances reinforced concrete", Procedia Eng., 125, 713-724. https://doi.org/10.1016/j.proeng.2015.11.112.
  19. Costa, A. and Appleton, J. (1999), "Chloride penetration into concrete in marine environment-Part I: Main parameters affecting chloride penetration", Mater. Struct., 32(4), 252-259. https://doi.org/10.1007/BF02479594.
  20. Darwin, D., Browning, J., Gong, L. and Hughes, S.R. (2008), "Effects of deicers on concrete deterioration", ACI. Mater. J., 105(6), 622-627. http://hdl.handle.net/1808/23271.
  21. de Larrard, T. (2010), "Variability of concrete properties: experimental characterisation and probabilistic modelling for calcium leaching", Ph.D. Dissertation, ENS Cachan, Cachan.
  22. De Schutter, G. (2012), Damage to Concrete Structures, CRC Press, Taylor & Francis Group, Boca Raton, USA.
  23. EN 13057 (2002), British Standards: Test Methods-Determination of Resistance of Capillary Absorption, BSI, London, UK.
  24. EN 196-1 (2005), British Standards: Methods of Testing Cement-Part 1: Determination of Strength, BSI, London, UK.
  25. Faraj, R.H., Hama Ali, H.F., Sherwani, A.F.H., Hassan, B.R. and Karim, H. (2020), "Use of recycled plastic in self-compacting concrete: A comprehensive review on fresh and mechanical properties", J. Build. Eng., 30, 101283. https://doi.org/10.1016/j.jobe.2020.101283.
  26. Ghaffar, S.H., Al-Kheetan, M.J., Ewens, P., Wang, T. and Zhuang, J. (2020), "Investigation of the interfacial bonding between flax/wool twine and various cementitious matrices in mortar composites", Constr. Build. Mater., 239, 117833. https://doi.org/10.1016/j.conbuildmat.2019.117833.
  27. Gjorv, O.E. (2013), "Durability design and quality assurance of major concrete infrastructure", Adv. Concrete Constr., 1(1), 45-63. http://dx.doi.org/10.12989/csm.2013.1.1.045.
  28. Hekal, E.E., Kishar, E. and Mostafa, H. (2002), "Magnesium sulfate attack on hardened blended cement pastes under different circumstances", Cement Concrete Res., 32(9), 1421-1427. https://doi.org/10.1016/S0008-8846(02)00801-3.
  29. Kakooei, S., Akil, H.M., Jamshidi, M. and Rouhi, J. (2012), "The effects of polypropylene fibers on the properties of reinforced concrete structures", Constr. Build. Mater., 27(1), 73-77. https://doi.org/10.1016/j.conbuildmat.2011.08.015.
  30. Kalinowski, M. and Tragardh, J. (2007), "Microstructure and durability of self-compacting concretes containing PP fibres", 5th International RILEM Symposium on Self-Compacting Concrete, Ghent, Belgium, September.
  31. Karanth, S.S., Ghorpade, V.G. and Rao, H.S. (2017), "Shear and impact strength of waste plastic fibre reinforced concrete", Adv. Concrete Constr., 5(2), 173-182. https://doi.org/10.12989/acc.2017.5.2.173.
  32. Kilinckale, F.M. (1997), "The effect of MgSO4 and HCL solutions on the strength and durability of pozzolan cement mortars", Cement Concrete Res., 27(12), 1911-1918. https://doi.org/10.1016/S0008-8846(97)00208-1.
  33. Koleva, D.A., Hu, J., Fraaij, A.L.A., van Breugel, K. and de Wit, J.H.W. (2007), "Microstructural analysis of plain and reinforced mortars under chloride-induced deterioration", Cement Concrete Res., 37(4), 604-617. https://doi.org/10.1016/j.cemconres.2006.12.001.
  34. Lakhssassi, M.Z., Alehyen, S., El Alouani, M. and Taibi, M. (2019) "The effect of aggressive environments on the properties of a low calcium fly ash based geopolymer and the ordinary Portland cement pastes", Mater. Today: Proc., 13(3), 1169-1177. https://doi.org/10.1016/j.matpr.2019.04.085.
  35. Lee, S.T., Hooton, R.D., Jung, H.S., Park, D.H. and Choi, C.S. (2008), "Effect of limestone filler on the deterioration of mortars and pastes exposed to sulfate solutions at ambient temperature", Cement Concrete Res., 38(1), 68-76. https://doi.org/10.1016/j.cemconres.2007.08.003.
  36. Liu, K., Deng, M. and Mo, L. (2015), "Influence of pH on the formation of gypsum in cement materials during sulfate attack", Adv. Cement Res., 27(8), 487-493. https://doi.org/10.1680/jadcr.14.00076.
  37. Madhuri, G. and Srinivasa Rao, K. (2018), "Performance of alkali-activated slag concrete against sulphuric acid attack", Asian. J. Civil Eng., 19, 451-461. https://link.springer.com/article/10.1007/s42107-018-0028-1.
  38. Makhloufi, Z., Kadri, E.H., Bouhicha, M. and Benaissa, A. (2012), "Resistance of limestone mortars with quaternary binders to sulfuric acid solution", Constr. Build. Mater., 26, 497-504. https://doi.org/10.1016/j.conbuildmat.2011.06.050.
  39. Massaad, G., Roziere, E., Loukili, A. and Izoret, L. (2016), "Advanced testing and performance specifications for the cementitious materials under external sulfate attacks", Constr. Build. Mater., 127, 918-931. https://doi.org/10.1016/j.conbuildmat.2016.09.133.
  40. Meziane, E.H., Ezziane, K., Kenai, S. and Kadri, A. (2015), "Mechanical, hydration, and durability modifications provided to mortar made with crushed sand and blended cements", J. Adhesion. Sci. Tech., 29(18), 1987-2005. https://doi.org/10.1080/01694243.2015.1048931.
  41. Mohammadhosseini, H. and Tahir, M.M. (2018), "Durability performance of concrete incorporating waste metalized plastic fibres and palm oil fuel ash", Constr. Build. Mater., 180, 92-102. https://doi.org/10.1016/j.conbuildmat.2018.05.282.
  42. Neville, A. (2004), "The confused world of sulfate attack on concrete", Cement Concrete Res., 34(8), 1275-1296. https://doi.org/10.1016/j.cemconres.2004.04.004.
  43. Nguyen, H., Kinnunen, P., Carvelli, V. and Illikainen, M. (2019), "Durability of ettringite-based composite reinforced with polypropylene fibers under combined chemical and physical attack", Cement Concrete Compos., 102, 157-168. https://doi.org/10.1016/j.cemconcomp.2019.04.021.
  44. Nili, M. and Afroughsabet, V. (2012), "The long-term compressive strength and durability properties of silica fume fiber-reinforced concrete", Mater. Sci. Eng: A, 531, 107-111. https://doi.org/10.1016/j.msea.2011.10.042.
  45. Nuaklong, P., Chittanurak, J., Jongvivatsakul, P., Pansuk, W., Lenwari, A. and Likitlersuang, S. (2020), "Effect of hybrid polypropylene-steel fibres on strength characteristics of UHPFRC", Adv. Concrete Constr., 10(1), 1-11. https://doi.org/10.12989/acc.2020.10.1.001.
  46. Pakravan, H.R., Jamshidi, M. and Latifi, M. (2012), "Adhesion of polypropylene fiber to cement matrix", J. Adhesion. Sci. Tech., 26(10-11), 1383-1393. https://doi.org/10.1163/156856111X618263
  47. Paliwal, G. and Marua, S. (2017), "Effect of fly ash and plastic waste on mechanical and durability properties of concrete", Adv. Concrete Constr., 5(6), 575-586. https://doi.org/10.12989/acc.2017.5.6.575 575.
  48. Pereira de Oliveira, L.A. and Castro-Gomes, J.P. (2011), "Physical and mechanical behaviour of recycled PET fibre reinforced mortar", Constr. Build. Mater., 25(4), 1712-1717. https://doi.org/10.1016/j.conbuildmat.2010.11.044.
  49. Peterson, O. (1995), "Chemical effects on cement mortar of calcium magnesium acetate as a deicing salt", Cement Concrete Res., 25(3), 617-626. https://doi.org/10.1016/0008-8846(95)00050-M.
  50. Prasad, J., Jain, D. and Ahuja, A. (2006), "Factors influencing the sulphate resistance of cement concrete and mortar", Asian. J. Civil Eng. (Build. Hous.), 7(3), 259-268.
  51. Qiao, C., Suraneni, P. and Weiss, J. (2018), "Damage in cement pastes exposed to NaCl solutions", Constr. Build. Mater., 171, 120-127. https://doi.org/10.1016/j.conbuildmat.2018.03.123.
  52. Ragoug, R., Metalssi, O.O., Barberon, F., Torrenti, J.M., Roussel, N., Divet, L. and de Lacaillerie, J.B.D.E. (2019), "Durability of cement pastes exposed to external sulfate attack and leaching: Physical and chemical aspects", Cement Concrete Res., 116(12), 134-145. https://doi.org/10.1016/j.cemconres.2018.11.006.
  53. Ramadoss, P. and Nagamani, K. (2008), "Tensile strength and durability characteristics of high-performance fiber reinforced concrete", Arab. J. Sci. Eng., 33(2B), 307-319.
  54. Ramezanianpour, A.A., Esmaeili, M., Ghahari, S.A. and Najafi, M.H. (2013), "Laboratory study on the effect of polypropylene fiber on durability, and physical and mechanical characteristic of concrete for application in sleepers", Constr. Build. Mater., 44, 411-418. https://doi.org/10.1016/j.conbuildmat.2013.02.076.
  55. Roziere, E. (2007), "Etude de la durabilite des betons par une approche performantielle", Ph.D. Dissertation, University of Nantes, Nantes.
  56. Roziere, E., Loukili, A., El Hachem, R. and Grondin, F. (2009), "Durability of concrete exposed to leaching and external sulphate attacks", Cement Concrete Res., 39(12), 1188-1198. https://doi.org/10.1016/j.cemconres.2009.07.021.
  57. Santhanam, M., Cohen, M.D. and Olek, J. (2002), "Mechanism of sulfate attack: A fresh look: Part 1: Summary of experimental results", Cement Concrete Res., 32(6), 915-921. https://doi.org/10.1016/S0008-8846(02)00724-X.
  58. Santhanam, M., Cohen, M.D. and Olek, J. (2003), "Mechanism of sulfate attack: a fresh look: Part 2. Proposed mechanisms", Cement Concrete Res., 33(3), 341-346. https://doi.org/10.1016/S0008-8846(02)00958-4.
  59. Singh, S., Shukla, A. and Brown, R. (2004), "Pullout behavior of polypropylene fibers from cementitious matrix", Cement Concrete Res., 34(10), 1919-1925. https://doi.org/10.1016/j.cemconres.2004.02.014.
  60. Skaropoulou, A., Kakali, G. and Tsivilis, S. (2012), "Thaumasite form of sulfate attack in limestone cement concrete: "The effect of cement composition, sand type and exposure temperature", Constr. Build. Mater., 36, 527-533. https://doi.org/10.1016/j.conbuildmat.2012.06.048.
  61. Soroushian, P. and Bayasi, Z. (1991), "Fiber-type effects on the performance of steel fiber reinforced concrete", ACI Mater. J., 88(2), 129-134.
  62. Soylev, T.A. and Ozturan, T. (2014), "Durability, physical and mechanical properties of fiber-reinforced concretes at low-volume fraction", Constr. Build. Mater., 73, 67-75. https://doi.org/10.1016/j.conbuildmat.2014.09.058.
  63. Stakne, K., Smole, M.S., Kleinschek, K.S., Jaroschuk, A. and Ribitsch, V. (2003), "Characterisation of modified polypropylene fibres", J. Mater. Sci., 38(10), 2167-2169. https://doi.org/10.1023/A:1023776030473.
  64. Sun, Z. and Xu, Q. (2009), "Microscopic, physical and mechanical analysis of polypropylene fiber reinforced concrete", Mater. Sci. Eng: A, 527(1-2), 198-204. https://doi.org/10.1016/j.msea.2009.07.056.
  65. Wang, H.L., Dai, J.G., Sun, X.Y. and Zhang, X.L. (2016), "Characteristics of concrete cracks and their influence on chloride penetration", Constr. Build. Mater., 107, 216-225. https://doi.org/10.1016/j.conbuildmat.2016.01.002.
  66. Wegian, F.M. (2010), "Effect of seawater for mixing and curing on structural concrete", IES. J. Part A: Civil Struct. Eng., 3(4), 235-243. https://doi.org/10.1080/19373260.2010.521048.
  67. Wittmann, F.H. and Zhao, T. (2012), "Knowledge of microstructure of concrete for the design of durable reinforced concrete structures", Second International Conference on Microstructural-related Durability of Cementitious Composites, Amsterdam, Netherlands, April.
  68. Yi, Y., Zhu, D., Guo, S., Zhang, Z. and Shi, C. (2020), "A review on the deterioration and approaches to enhance the durability of concrete in the marine environment", Cement Concrete Compos., 113, 103695. https://doi.org/10.1016/j.cemconcomp.2020.103695.
  69. Yildirim, K. and Sumer, M. (2013), "Effects of sodium chloride and magnesium sulfate concentration on the durability of cement mortar with and without fly ash", Compos. Part B: Eng, 52, 56-61. https://doi.org/10.1016/j.compositesb.2013.03.040.
  70. Yin, S., Tuladhar, R., Shi, F., Combe, M., Collister, T. and Sivakugan, N. (2015), "Use of macro plastic fibres in concrete: A review", Constr. Build. Mater., 93, 180-188. https://doi.org/10.1016/j.conbuildmat.2015.05.105.
  71. Zhang, M., Chen, J., Lv, Y., Wang, D. and Ye, J. (2013), "Study on the expansion of concrete under attack of sulfate and sulfate- chloride ions", Constr. Build. Mater., 39, 26-32. https://doi.org/10.1016/j.conbuildmat.2012.05.003.
  72. Zhang, P. and Li, Q.F. (2013), "Effect of polypropylene fiber on durability of concrete composite containing fly ash and silica fume", Compos: Part B: Eng., 45(1), 1587-1594. https://doi.org/10.1016/j.compositesb.2012.10.006.
  73. Zhang, S. and Zhao, B. (2012), "Influence of polypropylene fibre on the mechanical performance and durability of concrete materials", Eur. J. Environ. Civil Eng., 16(10), 1269-1277. https://doi.org/10.1080/19648189.2012.709681.
  74. Zhang, Z., Zhou, J., Yang, J., Zou, Y. and Wang, Z. (2020), "Understanding of the deterioration characteristic of concrete exposed to external sulfate attack: Insight into mesoscopic pore structures", Constr. Build. Mater., 260, 119932. https://doi.org/10.1016/j.conbuildmat.2020.119932.