Structural Behavior of Reinforced Lightweight Concrete Slabs

Authors

  • Yahyia M. Hameed Department of Civil Engineering, University of Diyala, 32001 Diyala, Iraq
  • Murtada A. Ismael Department of High way and Airport Engineering, University of Diyala, 32001 Diyala, Iraq

DOI:

https://doi.org/10.24237/djes.2022.15212

Keywords:

Structural,, Reinforced,, Lightweight,, Concrete slabs

Abstract

This paper presents an exploration of choosing the optimum density for concrete that achieves the best structural performance for two-way slabs made of concrete with fine aggregate in different proportions less than the ratio used in ordinary concrete to produce different densities, by taking advantage of the idea of fine aggregate concrete which considers as light-weight concrete to achieve lighter concrete with higher structural endurance. The experimental program includes constructing and testing five slabs, four of them made of concrete with different fine aggregate radios 75%, 50%, 25%, and 0% to get different densities (2207, 1792, 1536, 1310 kg/m3) as well as another slab made of normal concrete used as a reference slab with a density of 2414 kg/m3. The outcomes reveal that decreasing the density of the slab from 2414 kg/m3 to 1310 kg/m3 by reduction fine aggregate in concrete from 100% to 0% respectively has more effect on the first crack load than that on the ultimate load of two-way slabs as the first crack load decreases with percentages 16.7%, 33.3%, 38.9%, and 61.1% the while the ultimate load decreases with percentages 7.3%, 21.9%, 46.3%, and 56.1%, respectively as compared to the reference (normal wight concrete slab). Also, decreasing the density of the slab made the cracks form and spread quickly and the slab failure tends towards the brittleness, and the cracks diffused and grew faster and wider.

Downloads

Download data is not yet available.

References

Newman, J., & Choo, B. S. (Eds.). Advanced concrete technology 3: processes. Elsevier, 2003.

Neville, A. M., & Brooks, J. J. Concrete technology, 2010.

Slaby, A.A., Aziz, K.I., & Hadeed, A.F., "Mechanical Properties of Porcelinite Reinforced Concrete Beams", Iraqi Journal of Civil Engineering, 10(10), 1-24, 2008.

Neville, A.M., "Properties of Concrete. Prentice Hall", Upper Saddle River, NJ, USA,1981.

Sommerville, J., Craig, N. & Charles, A., "No-fines concrete in the UK social housing stock: 50 years on", Structural Survey, 29(4), PP. 294-302, 2011.

Alam, B., Javed, M., Ali, Q., Ahmad, N. & Ibrahim, M., "Mechanical properties of no-fines bloated slate aggregate concrete for construction application, experimental study", International Journal of Civil and Structural Engineering, 3(2), 2012.

Osman M., Marzouk H., & Helmy S., "Behavior of High-Strength Lightweight Concrete Slabs under Punching Loads", ACI Structural Journal, 97(3) PP. 492_498, 2000.

Abdul Rasoul Z. M. R., "Experimental Study of Punching Shear Strength of Self Compacting Concr5ete Slabs with Openings", Journal of Kerbala University, 9 (2) PP. 88-100, 2011.

YOUM, K. S.; JEON, H. K.; PARK, Y. S.; LEE, S. H.; & MOON, J., "Experimental study on punching shear of lightweight concrete slab", The Thirteenth East Asia-Pacific Conference on Structural Engineering and Construction (EASEC-13), September 11- 13, Sapporo, Japan. PP. 1-7, 2013.

Abdulah M. D., "Behavior of Reinforced Lightweight Concrete Two Way Slabs Strengthened with CFRP Sheets", Engineering and Technology Journal, 33 (8), PP. 1813, 2015.

Zaher A.A., Abdelrahman A.A., Eldeib A. S., & Mohamed A.A, "Punching shear behavior of Lightweight foamed RC slabs", International Journal of Application or Innovation in Engineering & Management (IJAIEM), 4(7) PP. 67-73, 2015.

Adil, M. A. and Abdulrazzaq, O. A., "Flexural Behavior of Composite Reinforced Concrete Slabs", Iraqi Journal of Civil Engineering 11(2), 55-65, 2016.

Al-Azzawi, A. A. and Abdul Al-Aziza, B. M., "Behavior of reinforced lightweight aggregate concrete hollow-core slabs", Computers and Concrete, 21(2)117-126, 2018.

Iraqi Specification, No. 5/1984, “Portland Cement”, Ministry of Planning /Central Organization for Standardization and Control Quality.

Iraqi Specification, No. 45/1984, “Aggregate from Natural Sources for Concrete and Construction”, Ministry of Planning /Central Organization for Standardization and Control Quality.

ASTM A615/615M-05a, "Standard Specification for Deformed and Plain Carbon Structural Steel Bars for Concrete Reinforcement", Annual Book of ASTM Standards, Vol.01.02, 2005.

ACI 213R-87, Guide for Structural Lightweight Aggregate Concrete, Detroit, Michigan, 1999.

Downloads

Published

2022-06-01

How to Cite

[1]
“Structural Behavior of Reinforced Lightweight Concrete Slabs”, DJES, vol. 15, no. 2, pp. 122–132, Jun. 2022, doi: 10.24237/djes.2022.15212.

Similar Articles

11-20 of 154

You may also start an advanced similarity search for this article.