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1

Steel-concrete composite bridges. Thomas Telford, 2005.

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2

Institution, British Standards. Steel, concrete and composite bridges. BSI, 1988.

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3

P, Johnson R., ed. Designers' guide to EN 1994-2 Eurocode 4: Design of composite steel and concrete structures. Thomas Telford, 2006.

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4

Ranzi, Gianluca, ed. Time-dependent behaviour and design of composite steel-concrete structures. International Association for Bridge and Structural Engineering (IABSE), 2021. http://dx.doi.org/10.2749/sed018.

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<p>Steel-concrete composite structures are widely used throughout the world for buildings and bridges. A distinguishing feature of this form of construction is the combination of concrete and steel components to achieve enhanced structural performance. <p>The time-dependent response of concrete and its infl uence on the service behaviour and design of composite structures are the main focus of this SED. For the fi rst time, a publication combines a state-of-the-art review of the research with the available design specifi cations of Europe, Australia and New Zealand, and USA. This p
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5

Hayward, Alan C. G. Composite steel highway bridges. British Steel, 1997.

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6

Kachlakev, Damian I. Strengthening bridges using composite materials. Oregon Dept. of Transportation, Research Unit, 1998.

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7

Composite structures of steel and concrete. 2nd ed. Blackwell Scientific, 1994.

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8

Johnson, Roger P. Composite Structures of Steel and Concrete. John Wiley & Sons, Ltd, 2018. http://dx.doi.org/10.1002/9781119401353.

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9

Composite Structures of Steel and Concrete. John Wiley & Sons, Ltd., 2008.

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10

Design guide for composite highway bridges. Spon Press, 2002.

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11

Hughes, G. Longitudinal shear in composite concrete bridge beams. Transport and Road Research Laboratory, 1986.

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12

Hughes, G. Longitudinal shear in composite concrete bridge beams. Transport and Road Research Laboratory, 1987.

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13

Steel-concrete composite buildings: Designing with Eurocodes. Thomas Telford, 2010.

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14

Osegueda, Roberto Alejandro. Positive moment tests for precast concrete panel-decked composite bridges. Texas Transportation Institute, Texas A&M University, 1987.

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15

Abendroth, R. E. Steel diaphragms in prestressed concrete girder bridges. Center for Transportation Research and Education, Iowa State University, 2004.

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16

Grace, Nabil F. Environmental/durability evaluation of FRP composite strengthened bridges. Lawrence Technological University, Civil Engineering Dept., 2003.

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17

Taranath, Bungale S. Steel, concrete, and composite design of tall buildings. 2nd ed. McGraw-Hill, 1998.

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18

Taranath, Bungale S. Steel, concrete, and composite design of tall buildings. 2nd ed. McGraw-Hill, 1998.

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19

1955-, Bradford M. A., ed. Composite steel and concrete structural members: Fundamental behaviour. Pergamon, 1995.

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20

Both, Cornelis. The fire resistance of composite steel-concrete slabs. Delft Univ. Press, 1998.

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21

Eric, DeLony, ed. Wood, concrete, stone, and steel: Minnesota's historic bridges. University of Minnesota Press, 2008.

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22

Kennedy, Stephen John. Behaviour of transversely loaded continuous steel-concrete composite plates. Dept. of Civil Engineering, University of Alberta, 1987.

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23

1955-, Bradford M. A., ed. Elementary behaviour of composite steel and concrete structural members. Butterworth-Heinemann, 1999.

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24

Wipf, Terry J. Evaluation of post-tension strengthened steel girder bridge using FRP bars. Center for Transportation Research and Education, Iowa State University, 2003.

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25

Newhook, John Patrick. The behaviour of steel-free concrete bridge deck slabs under static loading conditions. Nova Scotia CAD/CAM Centre, Dalhousie University, 1997.

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26

Kachlakev, Damian I. Behavior of concrete specimens reinforced with composite materials: Laboratory study. Oregon Dept. of Transportation, Research Group, 2000.

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27

International Symposium Composite Steel Concrete Structures (1987 Bratislava, Czechoslovakia). Medzinárodné sympózium Spriahnuté ocel'obetónové konštrukcie =: International Symposium Composite Steel Concrete Structures. Dom techniky ČSVTS Bratislava, 1987.

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28

Fanous, Fouad. Impact of deck cracking on durability. Center for Transportation Research and Education, Iowa State University, 2000.

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29

Johnson, R. P. Eurocode No. 4: Common unified rules for composite steel and concrete structures. Commission of the European Communities, 1985.

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30

Queensland, Australia) International Conference on Composite Construction in Steel and Concrete (7th 2013 North. Composite construction in steel and concrete VII: Proceedings of the 2013 International Conference on Composite Construction in Steel and Concrete, July 28-31, 2013, North Queensland, Australia. American Society of Civil Engineers, 2016.

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31

Schleich, J. B. Computer assisted analysis of the fire resistance of steel and composite concrete-steel structures (REFAO-CAFIR). Commission of the European Communities, 1987.

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32

Peden, Henry C. Bridges-- wrought iron to steel to reinforced concrete: Harford County's rural heritage. Jack Shagena, 2010.

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33

Luís, Borges, Davaine Laurence 1975-, European Convention for Constructional Steelwork, and Associação Portuguesa de Construcao Metalica e Mista, eds. Fatigue design of steel and composite structures: Eurocode 3: Design of Steel Structures, Part 1-9 Fatigue, Eurocode 4: Design of Composite Steel and Concrete Structures. European Convention for Constructional Steelwork, 2011.

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34

Funahasi, M. Development of a new sacrificial cathodic protection system for steel embedded in concrete. U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1997.

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35

Gao ceng gang--hun ning tu zu he jie gou. Hua nan li gong da xue chu ban she, 2003.

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36

Symposium on Connections Between Steel and Concrete (1st 2001 Stuttgart, Germany). Connections between steel and concrete: Stuttgart, Germany, 10-12 September 2001. RILEM publications, 2001.

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37

ISFF, '91 (1991 Madras India). Fatigue and fracture in steel and concrete structures: ISFF '91 proceedings. Oxford & IBH Pub. Co., 1992.

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38

Funahashi, M. Field evaluation of a new aluminum alloy as a sacrificial anode for steel embedded in concrete. U.S. Dept. of Transportation, Federal Highway Administration, Research and Development, Turner-Fairbank Highway Research Center, 1998.

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39

Presuel-Moreno, Francisco. Identification of commercially available alloys for corrosion-resistant metallic reinforcement and test methods for evaluating corrosion-resistant reinforcement. Virginia Transportation Research Council, 2008.

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40

Collings, David. Steel Concrete Composite Bridges. Thomas Telford, Ltd., 2005.

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41

Collings, David. Steel-concrete Composite Bridges, 2nd ed. Thomas Telford Ltd, 2013. http://dx.doi.org/10.1680/scb.58101.

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42

Johnson, R. P., and R. J. Buckby. Composite Structures of Steel and Concrete: Bridges. Blackwell Science Ltd, 1987.

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43

Hirt, Manfred, and Jean-Paul Lebet. Steel Bridges: Conceptual and Structural Design of Steel and Steel-Concrete Composite Bridges. Taylor & Francis Group, 2013.

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44

Steel Bridges: Conceptual and Structural Design of Steel and Steel-Concrete Composite Bridges. Taylor & Francis Group, 2013.

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45

Vayas, Ioannis, and Aristidis Iliopoulos. Design of Steel-Concrete Composite Bridges to Eurocodes. Taylor & Francis Group, 2017.

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46

Vayas, Ioannis, and Aristidis Iliopoulos. Design of Steel-Concrete Composite Bridges to Eurocodes. CRC Press, 2013. http://dx.doi.org/10.1201/b15690.

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47

Johnson, R. P. Composite Bridges Designed for Eurocodes: Composite Structures of Steel and Concrete. 3rd ed. Blackwell Scientific Publications (BSP), 2007.

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48

Finite Element Analysis and Design of Steel and Steel-Concrete Composite Bridges. Elsevier Science & Technology Books, 2014.

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49

Finite Element Analysis and Design of Steel and Steel-Concrete Composite Bridges. Elsevier, 2014. http://dx.doi.org/10.1016/c2013-0-01336-9.

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50

Offices, American Association Of State Highway and Transportation. Effective Slab Width for Composite Steel Bridge Members. Transportation Research Board National Resear, 2005.

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