References
- Shuvo D. Datta, Tahmidur R. Siam, Noshin, Tasnim, Nishat A. Taky, and Md R. Isam (2024). Performance o Ultra-High Strength Concrete by Utilizing Glass Materials for Eco-Friendly Construction: A Review. International Conference on Advances in Civil Engineering (ICACE2024).
- Tahwia, A. M., et al, (2022). Enhancing Sustainability of Ultra-High Performance Concrete Utilizing High-Volume Waste Glass Powder. Case Study in Construction Materials 17: p. e01649.
- Ali M. Onaizi., et al, (2021). Effect of the Addition of Nano Glass Powder on the Compressive Strength of High-Volume Fly Ash Modified Concrete. Materials Today: Proceeding.
- Yousef R. Alharbi, and Aref A. Abadel (2022). Engineering Properties of High-Volume Fly Ash Modified Cement Incorporated with Bottle Glass Waste Nanoparticles. Sustainability, Multidisciplinary Digital Publishing Institute (MDPI).
- ACI Committee 318 (2018). Building Code Requirements for Structural Concrete and Commentary. ACI 318-08/318R-08. American Concrete Institute, 471pp.
- C. P. Amulu, and C. A. Ezeagu (2017). Experimental and Analytical Compression of Torsion, Bending Moment, and Shear Forces in Reinforced Concrete Beams Using BS8110, EURO Code2, and ACI318 Provisions. Nigerian Journal of Technology (NIJOTECH)/ University of Azikiwe- Nigeria.
- ACI Committee 544 (2009). State of the Art Report on Fiber Reinforced Concrete. ACI 544.1R-96. American Concrete Institute.
- David Darwin, Charles W. Dolan, and Arthur H. Nilson (2016). Design of Concrete Structures. Published by McGraw-Hill Education, 2 Penn Plaza, New York, NY 10121/ Fifteenth Edition.
- Thomas T. C. Hsu (1962). Torsion of Structural Concrete Behavior of Reinforced Concrete Rectangular Members. PCA-Laboratories.
- Helen Broo (2008). Shear and Torsion in Concrete Structures. Department of Civil and Environmental Engineering/ Structural Engineering, Concrete Structures/ Chalmers University of Technology- Sweden.
- Luis F. A. Bernardo, Jorge M. A. Andrade, Luiz A. Pereira-De-Oliveira (2013). Reinforced and Prestressed Concrete Hollow Beams under Torsion. Journal of Civil Engineering and Management/ University of Beira- Portugal.
- Noora H. A. Al-khafaji and Ibrahim S. I. Harba (2023) . Shear and flexural behavior of lightweight concrete beams containing hybrid fiber. Journal of Civil and Environmental Engineering, Vol. 19, Issue 1, 206-217, https://sciendo.com/article/10.2478/cee-2023-0018
- Muntadher J. Taher, tareq S. Al-Attar and Aqeel S. Al-Adili (2024). Compatibility and mechanical performance of high-strength self-compacting concrete produced with recycles glass powder. Journal of Civil and Environmental Engineering, Vol. 20, Issue 2, 1107-1119, https://sciendo.com/article/10.2478/cee-2024-0080
- Nazari, A., Riahi, S., Riahi, S., Shamekhi, S.F. and Khademno, A. Influence of M. A. Largeau et al, (2010). Al2O3 Nanoparticles on the Compressive Strength and Workability of Blended Concrete. The Journal of American Science, 6, 6-9.
- Rahmat Madandoust, Ehasn Mohseni, Yasin Mousavi and Maryam Namnevis (2015). An Experimental Investigation on the Durability of Self-Compacting Mortar Containing Nano- SiO2, Nano-FeeO3 and Nano-CuO. Construction and Building Materials.
- N. Abdoli Yazdi, M. R. Arefi, E. Mollaahmadi and B. Abdollahi Nejand (2011). To Study the Effect of Adding FeeO3 nanoparticle on the Morphology Properties and Microstructure of Cement Mortar. Life Science Journal.
- Technical Datasheet of Hematite Powder API
- Moussa Anan Largeau, Raphael Mutuku and Joseph Thuo (2018). Effect of Iron Powder (Fe2O3) on Strength, Workability, and Porosity of the Binary Blended Concrete. Open Journal of Civil Engineering
- ASTM C 150, C 109 (2020). Standard Specification for Portland Cement.
- ASTM C33/C33M-13 (2013). Standard Specification for Concrete Aggregates.
- BS-1427 (2009). Guide To On-Site Test Methods For The Analysis of Waters.
- Technical Datasheet of Hyperplast PC200.
- ASTM C494/C494M-22 (2022) Type A and G. Standard Specification for Chemical Admixtures for Concrete.
- Technical Datasheet of Silica Fume MegaAdd MS(D).
- ASTM C1240-20 (2022). Standard Specification for Silica Fume Used in Cementitious Mixtures.
- ACI211.1-22 (2022). Selecting Proportions for Normal-Density and High-Density Concrete Guide.
- International ASTM Committee (2001). Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens. Designation: C 39/C 39M – 01, (2001).
- British Standard (1983). Testing Concrete-Method for Making Test Cubes from Fresh Concrete” Part: 108.
- ASTM C192/C192M-23 (2023). Standard Practice for Making and Curing Concrete Test Specimens in the Laboratory.
- Constantin E. Chalioris, Chris G. Karayannis (2009). Effectiveness of the Use of Steel Fibres on the Torsional Behavior of Flanged Concrete Beams. ELSEVIER/ Journal of Cement& Concrete Composites 31, pp. 331-341.
- ASTM C469/C469M-22 (2022). Standard Test Method for Static Modulus of Elasticity and Poisson’s Ratio of Concrete in Compression”, Vol. 4.2, 2002, PP. 1−5.
- Branch, Y. and Branch, T. (2011). Study the Effect of Adding Fe2O3 Nanoparticles on the Morphology Properties and Microstructure of Cement Mortar. Life Science Journal, 8, 550-554.
- Sikora, P., Horszczaruk, E., Cendrowski, K. and Mijowska, E. (2016). The Influence of Nano-Fe3O4 on the Microstructure and Mechanical Properties of Cementitious Composites. Nanoscale Research Letters, 11, 182.
- Meyyada Y. Alabdulhady, Lesley H. Sneed, Christian Carloni (2017). Torsional behavior of RC beams strengthened with PBOFRCM composite an experimental study. ELSEVIER/ Engineering Structures 136, pp. 393-405.
