Experimental and numerical investigation of the behavior of LWFC L-girders under combined torsion

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dc.contributor.author Deifalla, A
dc.contributor.author Awad, A
dc.contributor.author Seleem, H
dc.contributor.author Abdelrahman, A
dc.date.accessioned 2020-05-03T13:34:00Z
dc.date.available 2020-05-03T13:34:00Z
dc.date.issued 2020-08
dc.identifier.citation (2014) ACI 213R-14 “Guide for Structural Lightweight-Aggregate Concrete”, ACI Committee 213, American Concrete Institute, Farmington Hills, Michigan, USA: 2 Hassanpour, M., Shafigh, P., Mahmud, H.B. Lightweight aggregate concrete fiber reinforcement - A review (2012) Construction and Building Materials, 37, pp. 452-461. Cited 102 times. doi: 10.1016/j.conbuildmat.2012.07.071 View at Publisher 3 Greene, G.G., Garybeal, B.A. (2015) Lightweight Concrete: Shear Performance” FHWA Publication No.: FHWA-HRT-15-021, Technical summary of the Federal Highway Administration Report Lightweight Concrete: Shear Performance (FHWA-HRT-15-022)., U.S. Department of Transportationp. 176. 4 Recent Approaches to Shear Design of Structural Concrete: By ASCE-ACI Committee 445 on Shear and Torsion (1998) Journal of Structural Engineering, 124 (12), pp. 1375-1417. Cited 332 times. doi: 10.1061/(ASCE)0733-9445(1998)124:12(1375) View at Publisher 5 Nawaz, W., Abdalla, J.A., Hawileh, R.A., Alajmani, H.S., Abuzayed, I.H., Ataya, H., Mohamed, H.A. Experimental study on the shear strength of reinforced concrete beams cast with Lava lightweight aggregates (2019) Archives of Civil and Mechanical Engineering, 19 (4), pp. 981-996. Cited 4 times. http://www.sciencedirect.com/science/journal/16449665 doi: 10.1016/j.acme.2019.05.003 View at Publisher 6 Vakili, S.E., Homami, P., Esfahani, M.R. Effect of fibers and hybrid fibers on the shear strength of lightweight concrete beams reinforced with GFRP bars (2019) Structures, 20, pp. 290-297. doi: 10.1016/j.istruc.2019.04.006 View at Publisher 7 Yap, S.P., Khaw, K.R., Alengaram, U.J., Jumaat, M.Z. Effect of fibre aspect ratio on the torsional behaviour of steel fibre-reinforced normal weight concrete and lightweight concrete (2015) Engineering Structures, 101, pp. 24-33. Cited 19 times. http://www.journals.elsevier.com/engineering-structures/ doi: 10.1016/j.engstruct.2015.07.007 View at Publisher 8 Hamadi, Y.D., Regan, P.E. , pp. 67-77. Behavior in shear of beams with flexural cracks. 1980, 32(1) 9 Bardhan-Roy, B.K., Swami, R.N. Prediction of Shear strength of structural lightweight aggregate concrete T-beams (1995) International Symposium on structural lightweight aggregate concrete, Sandefjord Norway, pp. 117-130. Cited 3 times. 10 Thorenfeldt, E., Stemland, H. Shear Capacity of Lightweight Concrete Beams without shear reinforcements (2000) 2nd international Symposium Concrete Beams on Structural Lightweight Aggregate Concrete. Kristiansand Norway, 2000, pp. 244-255. Cited 8 times. 11 Walraven, J., Al-Zubi, N. (1995) , pp. 91-104. Cited 11 times. “Shear Capacity of Lightweight Concrete Beams with shear reinforcements”. international Symposium Concrete Beams on Structural Lightweight Aggregate Concrete. Norway, 1995 12 Regan, P.E., Arasten, A. (1990) , pp. 167-173. Lightweight Aggregate Foamed Concrete”. The Structural Engineer 68(9); May; 13 Rodrigo, R.G., Miguel, F.R. Influence of flanges on the shear-carrying capacity of reinforced concrete L-beams without web reinforcement”, FIB. International Federation for Structural Concrete, vol.18. 2017. p. 720–232. 14 Chalioris, C.E., Karayannis, C.G. Effectiveness of the use of steel fibres on the torsional behaviour of flanged concrete beams (2009) Cement and Concrete Composites, 31 (5), pp. 331-341. Cited 56 times. doi: 10.1016/j.cemconcomp.2009.02.007 View at Publisher 15 Karayannis, C.G. Torsional analysis of flanged concrete elements with tension softening (1995) Computers and Structures, 54 (1), pp. 97-110. Cited 12 times. doi: 10.1016/0045-7949(94)00299-I View at Publisher 16 Razaqpur, A.Ghani, Ghali, Amin DESIGN OF TRANSVERSE REINFORCEMENT IN FLANGES OF T-BEAMS. (1986) Journal of the American Concrete Institute, 83 (4), pp. 680-689. 17 Deifalla, A., Ghobarah, A. , p. 8. Assessing the North American bridge codes for the design of T-girders under torsion and shear.” In: Proceeding of the 7th international conference on short & medium span bridges, Montreal, August 23–25, Paper No. 717. 2006. 18 Deifalla, A. Torsional Behavior of Rectangular and Flanged Concrete Beams with FRP Reinforcements (2015) Journal of Structural Engineering (United States), 141 (12), art. no. 04015068. Cited 3 times. http://ascelibrary.org/journal/jsendh doi: 10.1061/(ASCE)ST.1943-541X.0001322 View at Publisher 19 Deifalla, A., Ghobarah, A. Behavior and analysis of inverted T-shaped RC beams under shear and torsion (2014) Engineering Structures, 68, pp. 57-70. Cited 13 times. http://www.elsevier.com/inca/publications/store/3/0/4/1/5/index.htt doi: 10.1016/j.engstruct.2014.02.011 View at Publisher 20 Hassan, M.M., Deifalla, A. Evaluating the new CAN/CSA-S806-12 torsion provisions for concrete beams with FRP reinforcements (2016) Materials and Structures/Materiaux et Constructions, 49 (7), pp. 2715-2729. doi: 10.1617/s11527-015-0680-9 View at Publisher 21 De Domenico, D., Ricciardi, G. Shear strength of RC beams with stirrups using an improved Eurocode 2 truss model with two variable-inclination compression struts (2019) Engineering Structures, 198, art. no. 109359. Cited 2 times. http://www.journals.elsevier.com/engineering-structures/ doi: 10.1016/j.engstruct.2019.109359 View at Publisher 22 Cladera, A., Marí, A., Bairán, J.M., Ribas, C., Oller, E., Duarte, N. The compression chord capacity model for the shear design and assessment of reinforced and prestressed concrete beams (2016) Structural Concrete, 17 (6), pp. 1017-1032. Cited 23 times. http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1751-7648 doi: 10.1002/suco.201500214 View at Publisher 23 Deifalla, A., Awad, A., Elrahman, A.A., Seleem, H. Investigating the Behavior of Lightweight Foamed Concrete T-Beams under Torsion, shear, and Flexure (2019) Engineering Structures Elsevier ENGSTRUCT_2020_279_Revision 1_V0, accepted for publication 24 Deifalla, A. (2019) Torsion Strength of Lightweight Concrete Rectangular and Flanged Beams with and without Fibers.” Under review, Structures, Elsevier, STRUCTURES-S-19-01469, under review since December. 25 Tawfik, M., Abdelrahman, A. Behavior of LWC under uniaxial eccentric compressive stresses (2017) Int J Eng Res Dev, 13 (9), pp. 15-27. 26 Altun, F., Aktaş, B. Investigation of reinforced concrete beams behavior of steel fiber added lightweight concrete (2013) Construction and Building Materials, 38, pp. 575-581. Cited 40 times. doi: 10.1016/j.conbuildmat.2012.09.022 View at Publisher 27 MasterFiber® 012, propylene fibers specifications https://assets.master-builders-solutions.basf.com/en-ke/basf-masterfiber-012-tds.pdf 28 Caratelli, A., Meda, A., Rinaldi, Z. Monotonic and cyclic behaviour of lightweight concrete beams with and without steel fiber reinforcement (2016) Construction and Building Materials, 122, pp. 23-35. Cited 8 times. doi: 10.1016/j.conbuildmat.2016.06.045 View at Publisher 29 Jones, M.R., McCarthy, A. (2005) , pp. 21-31. Preliminary views on the potential of foamed concrete as a structural material, magazine of concrete research 57 (1), February 30 Falliano, D., De Domenico, D., Ricciardi, G., Gugliandolo, E. Experimental investigation on the compressive strength of foamed concrete: Effect of curing conditions, cement type, foaming agent and dry density (2018) Construction and Building Materials, 165, pp. 735-749. Cited 46 times. doi: 10.1016/j.conbuildmat.2017.12.241 View at Publisher 31 Park, R., Pauly, T. Reinforced concrete structures: basic assumption of theory for flexural strength (1975) . Cited 2055 times. John Wiley & Sons Inc USA 32 Huang, L., Lu, Y., Shi, C. Unified calculation method for symmetrically reinforced concrete section subjected to combined loading (2013) ACI Structural Journal, 110 (1), pp. 127-136. Cited 13 times. http://www.concrete.org/tempComDocs/-49148/110-s13.pdf 33 ANSYS Ansys user's manual revision 15 (2013) . Cited 115 times. ANSYS Inc. USA en_US
dc.identifier.issn 23520124
dc.identifier.other https://doi.org/10.1016/j.istruc.2020.03.070
dc.identifier.uri https://t.ly/1OyO
dc.description Scopus en_US
dc.description.abstract View references (34) In most of the internationally recognized design codes, the design provisions for Light weight concrete (LWC) elements was developed based on modifying normal weight concrete (NWC) ones. With the many impressive advances in manufacturing of LWC including but not limited to adding fibers to the mix. And LWC structures are spread worldwide in various applications. Thus, design codes need a revisit based on actual testing of LWC beams. Since, experimental testing is essential to establish base for the verification of numerical models and updating the current design codes, this paper focused on investigating the behavior of lightweight Foamed concrete (LWFC) L-beams under combined loading. An experimental program was conducted, which included testing five L-beams. A numerical model was developed, which was implemented to model seventeen LWFC L-beams. The effect of the moment to shear-depth ratio (M/Vd), the torsion to shear-depth ratio (T/Vd), the flange width to web width ratio (B/b), and the transversal reinforcement ratio (ρw) was examined. For LWFC L-beams under combined loading with large moment-to-shear-depth ratio (M/Vd > 2), the following was observed: 1) The strength increased with the decrease of moment-to-shear-depth ratio, 2) Increasing torsion to shear-depth ratio by 67% was not effective, as the failure mode was governed by flexure. On the other hand, for the ones with small moment-to-shear-depth ratio (M/Vd ≤ 2), the following was observed: 1) increasing torsion to shear-depth ratio by 67%, decreased the failure load by 28% and changed failure mode from flexure failure to combined shear, and torsion failure; 2) the Concrete contributed significantly to the strength of beams. In addition, for LWFC L-beams under combined loading, the following remarks were observed: 1) Increasing the flange width 1.7 times lead to an increase in the failure load by 24%, which is insignificant, and 2) Using transversal reinforcement ratio above 1.2% changed the failure mode from ductile to brittle. The selected design code was found to be overly conservative, in particular cases of significant torsion and shear. © 2020 Institution of Structural Engineers en_US
dc.description.uri https://www.scimagojr.com/journalsearch.php?q=21100372467&tip=sid&clean=0
dc.language.iso en_US en_US
dc.publisher Elsevier Ltd en_US
dc.relation.ispartofseries Structures;Volume 26, August 2020, Pages 362-377
dc.subject L-beams en_US
dc.subject Lightweight foamed concrete en_US
dc.subject Moment en_US
dc.subject Shear en_US
dc.subject Torsion en_US
dc.title Experimental and numerical investigation of the behavior of LWFC L-girders under combined torsion en_US
dc.type Article en_US
dc.identifier.doi https://doi.org/10.1016/j.istruc.2020.03.070
dc.Affiliation October University for modern sciences and Arts (MSA)


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