References
- American Concrete Institute (ACI). Building Code Requirements for Reinforced Concrete. ACI 318, 1989
- American Institute of Steel Construction (AISC). Manual of Steel Construction, Load and Resistance Factor Design (LRFD), 2nd ed. Chicago: American Institute of Steel Construction; 1994. ASCE, 1992, 1421-154
- British Standards Institution. Steel, Concrete and Composite Bridges: Part 5: Code of Practice for Design of Composite Bridges (BS 5400). London: British Standards Institution, 1979
- Cai, J., Zheng, Y. and Yang, C. (2002), 'Experimental study on steel reinforced concrete beams', J. South China Univ. of Tech., 30(7), 52-56
- Caughey, R.A. and Scott, W.B. (1929), 'A practical method for the design of I beams haunched in concrete', Struct. Eng., 7(2), 75-93
- Chapman, J.C. and Balakrishnan, S. (1964), 'Experiments on composite beams', Struct Eng., 42(3), 69-83
- China Association for Engineering Construction Standardization. Specification for the Design of Steel Reinforced Concrete Structures (YB9082-97). Beijing, 1998
- China Association for Engineering Construction Standardization. Technical Specification for the Design of Steel Reinforced Concrete Composite Structures (JGJ138-2001). Beijing, 2002
- Dai, G.-L., Jiang, Y.-S. etc. (2003), 'Experimental study on aseismic behaviors of transfer story with steel reinforced concrete in low stories with large space', China Civil Eng. J., 36(4), 24-32
- ECCS. Composite Structure. London and New York, The Construction Press, 1981
- Elnashai, A.S., Takanashi, K., Elghaouli, A.Y. and Dowling, P.J. (1991), 'Experimental behaviour of partially encased composite beam-columns under cyclic and dynamic loads', Proc. Institution Civil Eng. Part 2, 91, 259-272
- European Committee for Standardization. Design of Composite Steel and Concrete Structures, Part 1.1: General Rules and Rules for Buildings (Eurocode 4). Brussels: European Committee for Standardization, 1992
- Kindmann, R. and Bergmann, R. (1993), 'Effect of reinforced concrete between the flanges of steel profile of partially encased composite beams', J. Construct. Steel Res., 27, 107-122 https://doi.org/10.1016/0143-974X(93)90009-H
- Mergulhao, A.J.R., Freitas, A.M.S. and Machado, R.M. (1998), 'Composite steel beams strength evaluation constituted of steel profiles filled with reinforced concrete', J. Construct. Steel Res., 46, 223-224 https://doi.org/10.1016/S0143-974X(98)00097-2
- Nakamura, S.-I. and Narita, N. (2003), 'Bending and shear strengths of partially encased composite I-girders', J. Construct. Steel Res., 59, 1435-1453 https://doi.org/10.1016/S0143-974X(03)00104-4
- Purkiss, J.A. (1996), Fire Safety Engineering, Butterworth Heinemann
- Subedi, N.K. (1989), 'Reinforced concrete beams with plate reinforcement for shear', Proc. of ICE, Part 2, September 377-399
- Subedi, N.K. (1990), 'Ultimate strength analysis of reinforced concrete coupling beams', The Struct. Eng., 68(3), 45-49
- Subedi, N.K. and Baglin, P.S. (1999), 'Plate reinforced concrete beams: Experimental work', Eng. Struct., 21, 232-254 https://doi.org/10.1016/S0141-0296(97)00171-5
- Subedi, N.K. and Baglin, P.S. (2001), 'Ultimate load analysis of plate reinforced concrete beams', Eng. Struct., 23, 1068-1079 https://doi.org/10.1016/S0141-0296(01)00013-X
- Yam, L.C.P. and Chapman, J.C. (1968), 'The inelastic behaviour of simply supported beam of steel and concrete', J. Instil. Civ. Eng., 41(6), 51-83
- Ye, L.P., Zhao, S.H. and Fang, E.H. (1999), 'Calculation of flexural strength for SRC element', Eng. Mech., 16(2), 29-36
- Ye, L.P. and Fang, E.H. (2000), 'State-of-the-art of study on the behaviors of steel reinforced concrete structure', China Civil Eng. J., 33(5), 1-12
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