Journal of Engineering and Applied Sciences

Year: 2018
Volume: 13
Issue: 11
Page No. 3985 - 3996

The Effects of Adding Waste Pet Fibers on the Some Mechanical Properties of Cement Mortar under Exposure to Elevated Temperature

Authors : Suaad Nasir, Bevian Ismail Al-Hadithi and Abdulkader Ismail Al-Hadithi

References

Abrams, M.S., 1971. Compressive strength of concrete at temperatures to 1600F. Spec. Publ., 25: 33-58.
Direct Link  |  

Akoz, F., N. Yuzer and S. Koral, 1995. The influence of high temperature on the physical and mechanical properties of ordinary Portland cement and silica fume mortar. Tech J. Turk Chamber Civ. Eng., 6: 287-292.

Al-Baghdadi, H.M., 2017. Effect of high temperature on some properties of light weight concrete. AlQadisiyah J. Eng. Sci., 7: 176-188.
Direct Link  |  

Al-Hadithi, A., A.T. Al-Ejbari and S.J. Ghassan, 2013. Behaviour of waste fiber concrete slabs under low velocity impact. Iraqi J. Civ. Eng., 9: 135-148.

Al-Hadithi, A.I. and N.N. Hilal, 2016. The possibility of enhancing some properties of self-compacting concrete by adding waste plastic fibers. J. Build. Eng., 8: 20-28.
Direct Link  |  

Al-Hadithi, A.I., 2008. Some properties of concrete using waste plastic fiber with a very small percentages. Proceedings of the 1st International Conference on Engineering Sciences (IESC’08), November 2-4, 2008, University of Aleppo, Aleppo, Syria, pp: 1-8.

Al-Hadithi, A.I., 2013. Improving impact and mechanical properties of gap-graded concrete by adding waste plastic fibers. Intl. J. Civ. Eng. Technol. India, 4: 118-131.

Al-Owaisy, S.R., 2006. Post heat exposure properties of steel fiber reinforced concrete. J. Eng. Dev., 10: 194-207.

Anonymous, 1982. State-of-the-art report on fiber reinforced concrete. ACE Committee 544, ACI Concrete International-American Concrete Institute, Michigan, USA.

Anonymous, 1984. Iraqi standard specification for Portland cements. Iraqi Standards No.5, Iraqi Central Organization for Standardization and quality control (ICOSQC), Baghdad, Iraq.

Anonymous, 1984. The aggregates of the natural resources used in concrete construction. Iraqi Standard Specification No. 45, Iraqi Central Organization for Standardization and quality control (ICOSQC), Baghdad, Iraq.

Anonymous, 1989. Guide for determining the fire endurance of concrete elements. ACI 216R-89, American Concrete Institute, Michigan, USA.

Anonymous, 2003. Standard specification for moist cabinets, moist room and water storage tanks used in the testing of hydraulic cements and concrete. ASTM C 511-03, ASTM, West Conshohocken, Pennsylvania.

Anonymous, 2005. Bangkok State of the environment, environmental quality management and control division. Bangkok Metropolitan Administration, Bangkok, Thailand.

Anonymous, 2009. Converting waste plastics into a resource. United Nations Environment Programme, International Environmental Technology Center, Nairobi, Kenya.

Anonymous, 2010. Standard test method for compressive strength of hydraulic cement mortars. ASTM C 109, American Society for Testing and Materials (ASTM), West Conshohocken, Pennsylvania.

Anonymous, 2010. Standard test method for flexural strength of hydraulic. ASTM C 348, ASTM, West Conshohocken, Pennsylvania.

Awal, A.A. and I.A. Shehu, 2015. Performance evaluation of concrete containing high volume palm oil fuel ash exposed to elevated temperature. Constr. Build. Mater., 76: 214-220.
Direct Link  |  

Awal, A.A. and I.A. Shehu, 2015. Performance evaluation of concrete containing high volume palm oil fuel ash exposed to elevated temperature. Construct. Build. Mater., 76: 214-220.
Direct Link  |  

Batayneh, M., I. Marie and I.M. Asi, 2007. Use of selected waste materials in concrete mixes. J. Waste Manage., 27: 1870-1876.
Direct Link  |  

Chan, Y.N., X. Luo and W. Sun, 2000. Compressive strength and pore structure of high-performance concrete after exposure to high temperature up to 800°C. Cem. Concr. Res., 30: 247-251.
Direct Link  |  

Chen, B. and J. Liu, 2004. Residual strength of hybrid-fiber-reinforced high-strengthconcrete after exposure to high temperatures. Cem. Concr. Res., 34: 1065-1069.
CrossRef  |  

Choi, Y.W., D.J. Moon, J.S. Chung and S.K. Cho, 2005. Effects of waste PET bottles aggregate on the properties of concrete. Cement Concrete Res., 35: 776-781.
CrossRef  |  Direct Link  |  

Correia, J.R., J.S. Lima and J. de Brito, 2014. Post-fire mechanical performance of concrete made with selected plastic waste aggregates. Cem. Concr. Compos., 53: 187-199.
CrossRef  |  Direct Link  |  

Diederichs, U. and U. Schneider, 1981. Bond strength at high temperatures. Mag. Concr. Res., 33: 75-84.
Direct Link  |  

Fadhil, S. and M. Yaseen, 2015. The production of economical precast concrete panels reinforced by waste plastic fibers. Am. J. Civ. Eng. Archit., 3: 80-85.
CrossRef  |  Direct Link  |  

Faiyadh, F.I. and M.A. Al-Ausi, 1986. Effect of elevated temperature and method of recooling on the compressive strength of plain and fiber reinforced concrete. Proceedings of the 3rd RILEM International Symposium on Developments in Fiber Reinforced Cement and Concrete, July 7-16, 1986, University of Sheffield, Sheffield, England, UK., pp: 225-230.

Faiyadh, F.I. and M.A. Al-Ausi, 1989. Effect of elevated temperature on splitting tensile strength of fibre concrete. Intl. J. Cem. Compos. Lightweight Concr., 11: 175-178.
Direct Link  |  

Foti, D., 2011. Preliminary analysis of concrete reinforced with waste bottles PET fibers. Constr. Build. Mater., 25: 1906-1915.
CrossRef  |  Direct Link  |  

Guerrero, L.A., G. Maas and W. Hogland, 2013. Solid waste management challenges for cities in developing countries. Waste Manage., 33: 220-232.
CrossRef  |  PubMed  |  Direct Link  |  

Hannawi, K., W. Prince and S. Kamali-Bernard, 2010. Effect of thermoplastic aggregates incorporation on physical, mechanical and transfer behavior of cementitious materials. Waste Biomass Valorization, 1: 251-259.
CrossRef  |  

Hannawi, K., W. Prince and S.K. Bernard, 2012. Strain capacity and cracking resistance improvement in mortars by adding plastic particles. J. Mater. Civ. Eng., 25: 1602-1610.
CrossRef  |  Direct Link  |  

Harada, T., J. Takeda, S. Yamane and F. Furumura, 1972. Strength, elasticity and thermal properties of concrete subjected to elevated temperatures. Spec. Publ., 34: 377-406.
Direct Link  |  

Iadav, I., 2008. Laboratory investigations of the properties of concrete containing recycled plastic aggregates. Master Thesis, Civil Engineering Department, Thapar University, Patiala, India.

Ismail, Z.Z. and E.A. Al-Hashmi, 2008. Use of waste plastic in concrete mixture as aggregate replacement. Waste Manage., 28: 2041-2047.
CrossRef  |  Direct Link  |  

Iucolano, F., B. Liguori, D. Caputo, F. Colangelo and R. Cioffi, 2013. Recycled plastic aggregate in mortars composition: Effect on physical and mechanical properties. Mater. Des., 52: 916-922.
CrossRef  |  Direct Link  |  

Kalifa, P., G. Chene and C. Galle, 2001. High-temperature behaviour of HPC with polypropylene fibres: From spalling to microstructure. Cem. Concr. Res., 31: 1487-1499.
CrossRef  |  Direct Link  |  

Kim, Y.J., T. Siriwardanage, A. Hmidan and J. Seo, 2014. Material characteristics and residual bond properties of organic and inorganic resins for CFRP composites in thermal exposure. Construct. Build. Mater., 50: 631-641.
Direct Link  |  

Liguori, B., F. Iucolano, I. Capasso, M. Lavorgna and L. Verdolotti, 2014. The effect of recycled plastic aggregate on chemico-physical and functional properties of composite mortars. Mater. Des., 57: 578-584.
Direct Link  |  

Malhotra, H.L., 1956. The effect of temperature on the compressive strength of concrete. Mag. Concr. Res., 8: 85-94.
Direct Link  |  

Mark, J.E., 1999. Polymer Data Handbook. Oxford University Press, Inc., Oxford, England, UK.,.

Marzouk, O.Y., R.M. Dheilly and M. Queneudec, 2007. Valorization of post-consumer waste plastic in cementitious concrete composites. Waste Manage., 27: 310-318.
CrossRef  |  

Mesbah, H.A. and F. Buyle-Bodin, 1999. Efficiency of polypropylene and metallic fibres on control of shrinkage and cracking of recycled aggregate mortars. Constr. Build. Mater., 13: 439-447.
Direct Link  |  

Mohamedbhai, G.T.G., 1986. Effect of exposure time and rates of heating and cooling on residual strength of heated concrete. Mag. Concr. Res., 38: 151-158.
Direct Link  |  

Moreley, P.D. and R. Royels, 1983. Response of the bond in reinforced concrete to high temperature. Mag. Concr. Res., 38: 67-75.

Muthadhi, A. and S. Kothandaraman, 2014. Experimental investigations on polymer-modified concrete subjected to elevated temperatures. Mater. Struct., 47: 977-986.
Direct Link  |  

Nikolai, G.Z., 1971. Thermal properties of concrete under sustained elevated temperatures. ACI-SP25, American Concrete Institute, Farmington Hills, Michigan, USA.

Nishida, A. and N. Yamazaki, 1995. Study on the properties of high strength concrete with short polypropylene fibre for spalling resistance. Proceedings of the International Conference on Concrete Under Severe Conditions (CONSEC’95), August 2-4, 1995, E&FN Spon, Sapporo, Japan, pp: 1141-1150.

Noumowe, A., 2005. Mechanical properties and microstructure of high strength concrete containing polypropylene fibres exposed to temperatures up to 200°C. Cem. Concr. Res., 35: 2192-2198.
Direct Link  |  

Pandya, J.M. and B.M. Purohit, 2014. Experimental study on the mechanical properties of concrete incorporating PET fibers. Intl. J. Sci. Res. Dev., 2: 43-45.
Direct Link  |  

Panyakapo, P. and M. Panyakapo, 2008. Reuse of thermosetting plastic waste for lightweight concrete. Waste Manage., 28: 1581-1588.
CrossRef  |  Direct Link  |  

Phan, L.T. and N.J. Carino, 1998. Review of mechanical properties of HSC at elevated temperature. J. Mater. Civ. Eng., 10: 58-64.
CrossRef  |  Direct Link  |  

Poon, C.S., Z.H. Shui and L. Lam, 2004. Compressive behavior of fiber reinforced high-performance concrete subjected to elevated temperatures. Cem. Concr. Res., 34: 2215-2222.
Direct Link  |  

Purkiss, J.A., 1984. Steel fibre reinforced concrete at elevated temperatures. Intl. J. Cem. Compos. Lightweight Concr., 6: 179-184.
Direct Link  |  

Qian, C.X. and P. Stroeven, 2000. Development of hybrid polypropylene-steel fiber reinforced concrete. Cem. Concr. Res., 30: 63-69.
CrossRef  |  

Ravindrarajah, R.S., R. Lopez and H. Reslan, 2002. Effect of elevated temperature on the properties of high-strength concrete containing cement supplementary materials. Proceedings of the 9th International Conference on Durability of Building Materials and Components, March 17-20, 2002, Australasian Corrosion Association, Brisbane, Australia, pp: 1-8.

Remadnia, A., R.M. Dheilly, B. Laidoudi and M. Queneudec, 2009. Use of animal proteins as foaming agent in cementitious concrete composites manufactured with recycled PET aggregates. Constr. Build. Mater., 23: 3118-3123.
Direct Link  |  

Romualdi, J.P. and G.B. Batson, 1963. Mechanics of crack arrest in concrete. J. Eng. Mech. Divis. ASCE., 89: 147-168.
Direct Link  |  

Safi, B., M. Saidi, D. Aboutaleb and M. Maallem, 2013. The use of plastic waste as fine aggregate in the self-compacting mortars: Effect on physical and mechanical properties. Constr. Build. Mater., 43: 436-442.
Direct Link  |  

Saikia, N. and J. de Brito, 2012. Use of plastic waste as aggregate in cement mortar and concrete preparation: A review. Constr. Build. Mater., 34: 385-401.
CrossRef  |  Direct Link  |  

Salem, S.M.A., P. Lettieri and J. Baeyens, 2009. Recycling and recovery routes of Plastic Solid Waste (PSW): A review. Waste Manage., 29: 2625-2643.
Direct Link  |  

Salem, S.M.A., P. Lettieri and J. Baeyens, 2009. Recycling and recovery routes of Plastic Solid Waste (PSW): A review. Waste Manage., 29: 2625-2643.
Direct Link  |  

Salman, B.T., 2015. Study the effect of preparation and diagnosis of Polyethylene Terephthalate (PET) as additive modification on concrete properties. Basrah J. Eng. Sci., 15: 25-31.

Shakir, A.S. and A.T. Jasim, 2009. Performance of fiber light-weight aggregate concrete exposed to elevated temperatures. Eng. Technol. J., 27: 2393-2410.

Tam, V.W.Y. and C.M. Tam, 2006. A review on the viable technology for construction waste recycling. Resourc. Conserv. Recycl., 47: 209-221.
CrossRef  |  Direct Link  |  

Verdolotti, L., F. Iucolano, I. Capasso, M. Lavorgna and S. Iannace et al., 2014. Recycling and recovery of PE‐PP‐PET‐based fiber polymeric wastes as aggregate replacement in lightweight mortar: Evaluation of environmental friendly application. Environ. Progress Sustainable Energy, 33: 1445-1451.
CrossRef  |  Direct Link  |  

Weigler, H. and R. Fischer, 1972. Influence of high temperatures on strength and deformation of concrete. Intl. Concr. Abstracts Portal, 34: 481-494.
Direct Link  |  

Wu, G., J. Li and Z. Xu, 2013. Triboelectrostatic separation for granular plastic waste recycling: A review. Waste Manage., 33: 585-597.
CrossRef  |  Direct Link  |  

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