Skip to main content


Study on Properties of Concrete Made with Industrial Waste

Issue Abstract

Abstract
The quick people increase, mechanical activities and living examples are delivering grouping of waste materials. These from one viewpoint require over the top expulsion practices and inestimable land while on the other hand filthy the particular basic resources and atmosphere. Further, a huge load of normal resources are being depleted at much speedier rate now than at some other time. The usage of waste or waste outcome for substitutions of concrete and absolute has extraordinarily added to practical improvement practices. The replacement of cement and sums by waste materials either mostly or in whole improves the mechanical properties too viz., compressive quality, flexural quality, inflexibility, bond quality, modulus of adaptability and diminishes permeability, chloride passage and chloride scattering of concrete. The helpfulness of waste concrete is normally improved. In this paper, a review of the effects of waste joining on the properties of new and hardened concrete is presented.


Keywords: Waste materials; Flexural quality; Modulus adaptability, M Sand, Ceramic Waste.,


Author Information
K. Sukumar
Issue No
6
Volume No
2
Issue Publish Date
05 Jun 2020
Issue Pages
1-7

Issue References

References
1. Abdus Salaam Cadersa, Jaylina Rana and Toolseeram Ramjeawon (2014), Assessing the Durability of Coal Bottom Ash as Aggregate Replacement in Low Strength Concrete, Journal of Emerging Trends in Engineering and Applied Sciences, Vol. 5(5), pp. 344-349.
2. Anna Halicka, Pawel Ogrodnik and Bartosz Zegardlo (2013), Using ceramic sanitary ware waste as concrete aggregate, Construction and building materials, Vol. 48, pp. 295-305.

3. Derrick J. Anderson, Scott T. Smithand and Francis Au T.K. (2016), Mechanical properties of concrete utilizing waste ceramic as coarse aggregate, Construction and building materials, Vol. 117, pp. 20-28.
4. Devananda Reddy and Krishnamurthy (2017), Experimented on mechanical properties of high strength concrete for M60 grade concrete, Construction and building materials, Vol. 95, pp. 55-59.
5. Devananda Reddy and Krishnamurthy (2017), Experimented on mechanical properties of high strength concrete for M60 grade concrete, Construction and building materials, Vol. 95, pp. 55-59.
6. Etaveni Madhavi, Vengal Rao. A, Chandra Shekar. A and Prabhaker. M (2016), Experimental Study of Coarse Aggregates and Fine Aggregates Replaced By Ceramic Waste and Quarry Dust, International Journal of Innovative Research in Science, Engineering and Technology, Vol. 5(4), pp. 2347-6710.
7. Gopinath. D and Senthamarai. RM (2012), Study the ceramic waste aggregate as replacement for conventional stone aggregate, Cement and Concrete Composites, Vol. 2, pp. 10-13.
8. Kou shi-congand poon chi-sun (2009), Properties of concrete prepared with crushed fine stone furnaces bottom ash and fine recycled aggregates as fine aggregates, Construction and Building Materials, Vol. 23, pp. 2877-2886. 9. Sudharsan, N,& Sivalingam, K. (2019). Potential utilization of waste material for sustainable development in construction industry. International Journal of Recent Technology and Engineering, 8(3), 3435–3438.
10. Pacheco Torgal. F and Jalali. S (2010), Reusing ceramic wastes in concrete, Construction and building materials, Vol. 24, pp. 832-838. 11. Sudharsan, N., & Palanisamy, T. (2018). A comprehensive study on potential use of waste materials in brick for sustainable development. Ecology, Environment and Conservation, 24, S339–S343.
12. Malkit Singh and Rafat Siddique (2015), Properties of concrete containing high volumes of coal bottom ash as fine aggregate, Journal of Cleaner Production, Vol. 91, pp. 269-278.
13. Paul O. Awoyera, Joseph O. Akinmusuru and Julius M. Ndambuki (2016), Green concrete production with ceramic wastes and laterite, Construction and building materials, Vol. 117, pp. 29-36.
14. Purushothaman. M and Senthamarai. RM (2013), Strength properties of high performances concrete using bottom ash as in aggregate, International Journal of Civil Engineering, Vol. 2, pp. 35-40.
15. Remyaraju, Mathews M, Paul and Aboobacker K.A (2014), Strength Performances of Concrete using Bottom ash as fine aggregate, International journal of research, Vol. 2, pp. 111-121.
16. Senthamarai R.M and Devadas Manoharan. P (2005), Concrete with ceramic waste aggregate, Cement and concrete composites, Vol. 27, pp. 910-913.
17. Subramani T and suresh B (2015), Experimental investigation of using ceramic waste as a coarse aggregate making a light weight concrete, International journal of Application or innovation in Engineering & Management, Vol. 4, pp. 153-162.
18. Weiguo shen, Zhenguo Yang, Lianghong Cao, Liu Cao, Yi Liu, Hui Yang, Zili Lu and Jian Bai (2016), Characterized the particle shape and surface texture of M sand and behavior of concrete, Construction and building materials, Vol. 114, pp. 595-601.
19. XinXin Ding, Changyong, Yangyang Xu, Fenglan Li and Shunbo Zhao (2016), Experimental Study on Compressive Strength of Manufactured Sand Concrete, Construction and building materials, Vol.108, pp. 67-73. 20. Vidhya, K., & Kandasamy, S. (2014). Study on the flexural strength of coal ash brick masonry wall elements. Journal of Structural Engineering (India), 41(4), 410–419. 21. Sudharsan, N, & Saravanaganesh, S. (2019). Feasibility studies on waste glass powder. International Journal of Innovative Technology and Exploring Engineering, 8(8), 1644–1647. 22. Vidhya, K., & Kandasamy, S. (2013). Study on properties of bricks manufactured using fly ash and pond ash. Pollution Research, 32(2), 405–409. 23. Vidhya, K., & Kandasamy, S. (2016). Experimental Investigations on the Properties of Coal-Ash Brick Units as Green Building Materials. International Journal of Coal Preparation and Utilization, 36(6), 318–325.
24. N. Sudharsan, T. Palanisamy, S. C. Yaragal, (2018), Environmental sustainability of waste glass as a valuable construction material - A critical review. Ecology, Environment and Conservation, 24 pp. S331–S338.