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An Overview Study on CO2 Absorption in High-strength Concrete

Amena I. Tamboli, Jivak K. Ambhore

Abstract


Today, global warming is a major issue facing all over the world. The main reason behind an increase in the effect of greenhouse gas. The emission of carbon dioxide (CO2) from the construction industry contributes 9% to increasing greenhouse gas therefore it is our responsibility to work on the reduction of CO2. In this paper, we study CO2 absorption by using zeolite powder in concrete as a partial replacement for cement. The effect of zeolite powder on the surface of the concrete is taken into consideration and likewise, glass fiber could be an innovative material that can enhance and maintain the strength of concrete. In this study, the material property along with its application with concrete is reviewed.

Keywords


CO2 absorption, zeolite, glass fiber, compressive strength

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References


Shan Y, Guan D, Zheng H, Ou J, Li Y, Meng J et al. China CO2 emission accounts for 1997–

Sci Data. 2018;5:170201. doi: 10.1038/sdata.2017.201.

Anderson TR, Hawkins E, Jones PD. CO2, the greenhouse effect and global warming: from the

pioneering work of Arrhenius and Callendar to today’s Earth System Models. Endeavour.

;40(3):178–87. doi: 10.1016/j.endeavour.2016.07.002.

Onat NC, Kucukvar M. Carbon footprint of construction industry: A global review and supply

chain analysis. Renewable and Sustainable Energy Reviews. 2020;124. doi:

1016/j.rser.2020.109783.

Hanifa M, Agarwal R, Sharma U, Thapliyal PC, Singh LP. A review on CO2 capture and

sequestration in the construction industry: emerging approaches and commercialised technologies.

Journal of CO2 Utilization. 2023;67. doi: 10.1016/j.jcou.2022.102292.

Chen J, Wang Y, Shi Q, Peng X, Zheng J. An international comparison analysis of CO2 emissions

in the construction industry. Sustainable Development. 2021;29(4):754–67. doi: 10.1002/sd.2172.

Mercado Burciaga U, Sáez PV, Javier Hernández Ayón F. Strategies to Reduce CO2 Emissions in

Housing Building by Means of CDW. Emerg Sci J;3(5):274–84. doi: 10.28991/esj-2019-01190.

Hasanbeigi A, Price L, Lin E. Emerging energy-efficiency and CO2 emission-reduction

technologies for cement and concrete production: a technical review. Renewable and Sustainable

Energy Reviews. 2012;16(8):6220–38. doi: 10.1016/j.rser.2012.07.019.

Nguyen TT, Goodier CI, Austin SA. Factors affecting the slump and strength development of

geopolymer concrete. Construction and Building Materials. 2020;261. doi:

1016/j.conbuildmat.2020.119945.

Bambroo V, Gupta S, Bhoite P, Sekar SK. Study on potential of carbon dioxide absorption in

reinforced concrete beams. IOP Conf S Mater Sci Eng. 2017;263:032033. doi: 10.1088/1757–

X/263/3/032033.

Tagwale P, Bambroo V, Bande R, Rathod P, Dr. Mali ST. Potential of carbon dioxide absorption

in concrete. Int J Stud Res Technol Manag. May 2015;3(5):369–72. doi:

18510/ijsrtm.2015.357.

Gond SJ, Mitra AP, Yadav S, Yadav J, Saxena VK. Use of zeolite powder as a supplement of

cement in concrete: a review. Int Res J Eng Technol. 2020;07(05, May).

Adil SEashan, Vasudev A, Kumar PV. A Santhosh Reddy study on CO2 absorbing concrete. Int J

Civ Eng Technol (IJCIET). 2017;8(4, April):1778–84:Article ID: IJCIET_08_04_201.

Madhusudhan VS, Latha KM. Study of mechanical properties of concrete with zeolite powder and

steel slag. Int J Eng Sci Comput. 2019;9(11, November).

Durisety H, Palcham K, Babu KP. The concrete incorporated with zeolite for reducing

atmospheric carbon dioxide. Int J Recent. 2020;8(6, March):2117–21. doi:

35940/ijrte.F8083.038620.

Gowram Iswarya BM, Beulah M. Use of zeolite and industrial waste materials in high strength

concrete – a review. Materials Today: Proceedings. 2021;46:116–23. doi:

1016/j.matpr.2020.06.329.

Najimi M, Sobhani J, Ahmadi B, Shekarchi M. An experimental study on durability properties of

concrete containing zeolite as a highly reactive natural pozzolana. Constr Build Mater.

;35(October):1023–33. doi: 10.1016/j.conbuildmat.2012.04.038.

Khaleque A, Masruck Alam MM, Hoque M, Mondal S, Haider JB, Xu B et al. Zeolite synthesis

from low-cost materials and environmental applications: a review. Environmental Advances.

;2. doi: 10.1016/j.envadv.2020.100019.

Subramani T, Karthickrajan J. Experimental study on absorption of CO2 by M30 concrete as A

partial replacement of cement by 25% of zeolite. International Journal of Application or

Innovation in Engineering & Management. 2016;5(5, May).

Rhodes CJ. Properties and applications of zeolites. Sci Prog. 2010;93(3):223–84. doi:

3184/003685010X12800828155007.

Rashad AM, Seleem HEDH. A Study on High Strength Concrete with moderate cement content

incorporating limestone powder. Build Res J. 2014;61(1):43–58. doi: 10.2478/brj-2014-0004.

Revanth JC, Vinodh K. High strength concrete. Int J Eng Sci Res Technol. February

;6(2):394–407. doi: 10.5281/zenodo.291853.

El-Sayed W, Sadek DM, Al-Samahy BI. Behavior and durability of high and ultra high strength

concrete manufactured by local materials. JES Journal of Engineering Sciences. 2011;39(4):811–

doi: 10.21608/jesaun.2011.127712.

Hemalatha S, Leema Rose A. An experimental study on glass fibre reinforced concrete. Int Res J

Eng Technol. April 2016;3(4).

Chaitanya JD, Kumar GVS, Abhilash P, Khan K, Manikantasai G, Tarakaram V. Experimental

studies on glass fibre concrete. Am J Eng Res. 2016;5(5):100–4.

Tuli G, Garg I. Study of glass fibre reinforced concrete IOSR journal of mechanical and civil

engineering (IOSR-JMCE). Available from: http://www.iosrjournals.org. Vol. 13(3). Ver:

Veterinary Ireland; May–June 2016. p. 58–61. doi: 10.9790/1684-1303065861.

Bhoi G, Pate V, Patel MR. Study on the effect of glass fibre reinforced concrete and concrete tiles

reinforced concrete. IJRASET. 2022;10(5, May):2564–9. doi: 10.22214/ijraset.2022.42753.


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