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Najm, I.N., Daud, R.A., & Al-Azzawi, A.A.: Behavior Of Reinforced Concrete Segmental Hollow Core Slabs Under Monotonic And Repeated Loadings. Structural Monitoring And Maintenance, 2019, 6(4), Pp. 269–289.Search in Google Scholar
ORTIZ, J. D.; KHEDMATGOZAR DOLATI, S. S.; MALLA, P.; NANNI, A.; MEHRABI, A.: FRP-reinf orced/strengthened concrete: State-of-the-art review on durability and mechanical effects, Materia ls, 2023, 16, 1990.Search in Google Scholar
WEI, L. L.; ZHU, J. H.; UEDA, T. et al.: Tensile behaviour of carbon fabric reinforced cementitious matrix composites as both strengthening and anode materials, Composite Structures, 2020, Article 111675.Search in Google Scholar
MAHMOUD, H. S.; HAWILEH, R. A.; ABDALLA, J. A.: Strengthening of high strength reinforced concrete thin slabs with CFRP laminates, Composite Structures, 2021, 275. doi:10.1016/j.compstruct.2021.114412Search in Google Scholar
MAHBOOB, A.; GIL, L.; BERNAT-MASO, E.; ESKENATI, A. R.: Experimental and numerical study of shear interface response of hybrid thin CFRP–concrete slabs, Materials, 2021, 14(18), 5184. doi:10.3390/ma14185184Search in Google Scholar
QIN, S.; ZHANG, J.; HUANG, C.; GAO, L.; BAO, Y.: Fatigue performance evaluation of steel-UHPC composite orthotropic deck in a long-span cable-stayed bridge under in-service traffic, Engineering Structures, 2022, 254, Article 113875.Search in Google Scholar
TENG, J. G.; YU, T.; FERNANDO, D.: Strengthening of steel structures with fiber-reinforced polymer composites, Journal of Constructional Steel Research, 2012, 78, pp. 131–143. doi:10.1016/j.jcsr.2012.06.011Search in Google Scholar
LIU, M.; DAWOOD, M.: Reliability analysis of debonding in steel beams strengthened with externally bonded CFRP composite, Journal of Composites for Construction, 2019, 23(1). doi:10.1061/(ASCE)CC.1943-5614.0000890Search in Google Scholar
FAHMY, M. F. M.; WU, Z.: Evaluating and proposing models of circular concrete columns confined with different FRP composites, Composites Part B: Engineering, 2010, 41(3), pp. 199–213.Search in Google Scholar
SOUDKI, K.; EL-SAYED, A. K.; VANZWOL, T.: Strengthening of concrete slab-column connections using CFRP strips, Journal of King Saud University – Engineering Sciences, 2012, 24(1), pp. 25–33.Search in Google Scholar
ELGHANDOUR, B.; ELTAHAWY, R.; SHEDID, M.; ABDELRAHMAN, A.: Prediction of shear strength for CFRP reinforced concrete beams without stirrups, Engineering Structures, 2023, 284, 115946.Search in Google Scholar
AL-ROUSAN, R.: The shear behaviour of CFRP strengthened RC beams, Magazine of Civil Engineering, 2020, 98(6), Article No. 9810. doi:10.18720/MCE.98.10Search in Google Scholar
GUPTA, S.; SHARMA, A.; VARMA, R. K.; KUSHVAHA, V.: A review on performance of near-surface mounted-carbon fiber-reinforced polymer laminates bonded into slits, Polymer Composites, 2022, 43(10). doi:10.1002/pc.26795Search in Google Scholar
AL-ROUSAN, R.: The impact of depth on shear behaviour of strengthened beams, Magazine of Civil Engineering, 2021, 105(5), Article No. 10501. doi:10.34910/MCE.105.1Search in Google Scholar
SAQAN, E. I.; RASHEED, H. A.; HAWILEH, R. A.: An efficient design procedure for flexural strengthening of RC beams based on ACI 440.2 R-08, Composites Part B: Engineering, 2013, 49, pp. 71–79.Search in Google Scholar
ABED, A.-M. O.; DAUD, S. A.: Flexure behaviour of corroded reinforcement concrete beams under sustained loads, Civil and Environmental Engineering, 2024, 20(2), pp. 1162–1173.Search in Google Scholar
ZHENG, Y.; ZHOU, Y.; PAN, T.; ZHANG, Q.; LIU, D.: Cracking behaviour of reinforced concrete beams strengthened with CFRP anchorage system under cyclic and monotonic loading, Engineering Structures, 2020, 207, 110222. doi:10.1016/j.engstruct.2020.110222Search in Google Scholar
KHALIFA, A. M.: Flexural performance of RC beams strengthened with near surface mounted CFRP strips, Alexandria Engineering Journal, 2016, 55(2), pp. 1497–1505. doi:10.1016/j.aej.2016.01.033Search in Google Scholar
ABDULMAJED, D. A. A.; DAUD, S. A.; ALRSHOUDI, F.: Numerical validation of long-term behaviour of reinforced recycled aggregate concrete beam, Civil and Environmental Engineering, 2024, 20(2), pp. 1129–1139.Search in Google Scholar
JASIM, N. R.; DAUD, R. A.: Behaviour of hollow core slabs strengthened by NSM CFRP plates subjected to repeated loading, AIP Conference Proceedings, 2024, 3009, 030086. doi:10.1063/5.0193577Search in Google Scholar
HAMEED, M. O.; DAUD, R. A.: Behaviour of fatigue damaged reinforced concrete one-way slabs repaired with CFRP sheets, Civil and Environmental Engineering, 2024, 20(1), pp. 364–376. doi:10.2478/cee-2024-0028Search in Google Scholar
KADER, H. A.; DAUD, S. A.: Numerical validation of reinforced concrete one-way slabs under long-term loading using nonlinear finite element analysis, Innovative Infrastructure Solutions, 2024, 9(9).Search in Google Scholar
GAO, D.; ZHU, W.; GU, Z.; YANG, L.: Flexural capacity prediction of steel fiber reinforced concrete beam with recycled fine and coarse aggregate, Advances in Structural Engineering, 2023, 26(6), pp. 1042–1058. doi:10.1177/13694332221151016Search in Google Scholar
EL-NIMRI, R.; ABDEL-JABER, M. S.; HUNAITI, Y. M.; ABDEL-JABER, M.: Behaviour of light-gauge steel beams filled with recycled concrete, Magazine of Civil Engineering, 2021, 101(1), Article No. 10102. doi:10.34910/MCE.101.2Search in Google Scholar
SEARA-PAZ, S.; GONZÁLEZ-FONTEBOA, B.; MARTÍNEZ-ABELLA, F.; EIRAS-LÓPEZ, J.: Flexural performance of reinforced concrete beams made with recycled concrete coarse aggregate, Engineering Structures, 2018, 156, pp. 32–45. doi:10.1016/j.engstruct.2017.11.015Search in Google Scholar
DAUD, H. A.; DAUD, S. A.; AL-AZZAWI, A. A.: Thermal behavior of hollow and solid steel beams with different boundary conditions, Computer Assisted Methods in Engineering and Science, 2021, 28(3), pp. 171–191.Search in Google Scholar
EVANGELISTA, L.; DE BRITO, J.: Flexural behaviour of reinforced concrete beams made with fine recycled concrete aggregates, KSCE Journal of Civil Engineering, 2017, 21(1), pp. 353–363. doi:10.1007/s12205-016-0653-8Search in Google Scholar
ABED, M.; NEMES, R.; TAYEH, B. A.: Properties of self-compacting high-strength concrete containing multiple use of recycled aggregate, Journal of King Saud University – Engineering Sciences, 2020, 32(2), pp. 108–114.Search in Google Scholar
AL-ALLAF, M. H.; DAUD, R. A.; DAUD, S. A.: Nonlinear finite element analysis of concrete corbels with hybrid reinforcements, Mechanics of Advanced Materials and Structures, 2024.Search in Google Scholar
WU, Y.; PENG, K.: Finite element-smeared crack combined algorithm based bridge corbel analysis, IOP Conference Series: Materials Science and Engineering, 2018.Search in Google Scholar
MURGO, F. S.; MAZZOTTI, C.: Masonry columns strengthened with FRCM system: Numerical and experimental evaluation, Construction and Building Materials, 2019, 202, pp. 208–222.Search in Google Scholar
THORENFELDT, E.; TOMASZEWICZ, A.; JENSEN, J. J.: Mechanical properties of high-strength concrete and applications in design, Proceedings of the Symposium on Utilization of High-Strength Concrete, Trondheim, Norway, 1987Search in Google Scholar
HORDIJK, D. A.: Local approach to fatigue of concrete, PhD thesis, Delft University of Technology, 1991.Search in Google Scholar