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1

Loo, Yew-Chaye. Reinforced and prestressed concrete: Analysis and design with emphasis on application of AS3600-2009. Port Melbourne, Vic: Cambridge University Press, 2010.

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2

Vance, Mary A. Concrete construction standards. Monticello, Ill: Vance Bibliographies, 1985.

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3

Ranzi, Gianluca, red. Time-dependent behaviour and design of composite steel-concrete structures. Zurich, Switzerland: 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 publication intends to enhance the awareness of the service response of composite structures and of the latest research and standards’ developments. It is aimed at designers and researchers alike. <p>The review of research available in open literature is provided and arranged according to structural typologies, i. e. slabs, beams, and columns. It serves as background information for current service design rules and provides insight into the most recent research advancements. The review of available design guidelines presents the similarities and differences of the recommended service design procedures infl uenced by concrete time effects. Selected case studies of building and bridge projects show possible design approaches and the rationale required when dealing with the time-dependent response and design of composite structures. The authors of this publication are design engineers and academics involved in the service design and research on the time-dependent response of composite structures.
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4

Association, Canadian Standards. Precast concrete: Materials and construction. Rexdale, Ont: Canadian Standards Association, 1994.

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5

Association, Canadian Standards. Concrete materials and methods of concrete construction: Methods of test for concrete. Rexdale, Ont: Canadian Standards Association, 1994.

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6

Darvall, P. Le P. Reinforced and prestressed concrete. South Melbourne: Macmillan Australia, 1989.

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7

American Society for Testing and Materials. ASTM standards in ACI 318. Farmington Hills, MI: American Concrete Institute, 2002.

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8

Ireland, National Standards Authority of. Eurocode 2: Design of concrete structures. Dublin: Eolas, 1992.

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9

American Society for Testing and Materials. ASTM standards in ACI 301 and 318. Farmington Hills, MI: American Concrete Institute, 1996.

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10

American Society for Testing and Materials. ASTM standards in ACI 301 and 318. Farmington Hills, MI: American Concrete Institute, 2000.

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11

E, Rowe R., red. Handbook to British standard BS 8110:1985: Structural use of concrete. London, England: Palladian Publications, 1987.

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12

ACI Committee 318. Building code requirements for structural concrete (ACI 318-11) and commentary. Farmington Hills, MI: American Concrete Institute, 2011.

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13

Chīmu, Doboku Kenkyūjo (Japan) Gijutsu Suishin Honbu Kōzōbutsu Manejimento Gijutsu. Konkurīto kōzōbutsu no sekkei ni kansuru kokusai hyōjun dōnyū ni yoru eikyō to sono taiō. [Tsukuba-shi]: Doboku Kenkyūjo, 2007.

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14

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

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15

Institute Of Electrical and Electronics Engineers. IEEE guide to the assembly and erection of concrete pole structures. New York, N.Y: Institute of Electrical and Electronics Engineers, 1993.

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16

318, ACI Committee. Building code requirements for structural concrete (ACI 318-05) and commentary (ACI 318R-05). Farmington Hills, Mich: American Concrete Institute, 2005.

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17

Ruiz, José Calavera. Manual for detailing reinforced concrete structures to EC2. London: Spon Press, 2012.

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18

Institute, American Concrete. Building code requirements for reinforced concrete (ACI 318-89) and commentary--ACI 318R-89. Detroit, Mich. (Box 19150 Redford Station, Detroit 48219): American Concrete Institute, 1989.

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19

K, Ghosh S., Rabbat Basile G i Portland Cement Association, red. Notes on ACI 318-89, building code requirements for reinforced concrete: With design applications. Wyd. 5. Skokie, Ill: Portland Cement Association, 1990.

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20

ACI Committee 318. Building code requirements for structural concrete (ACI 318M-99) and commentary (ACI 318RM-99). Farmington Hills, Mich: American Concrete Institute, 1999.

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21

Benussi, Fausto. The Nigerian code of practice for the structural use of concrete in buildings and the new European codes for the calculation of structures in the building and civil engineering sectors. Ife: [University of Ife], 1988.

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22

Delliou, Patrick Le. Béton précontraint aux eurocodes. Lyon: ENTPE, 2003.

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23

Bergmeister, Konrad, Frank Fingerloos i Johann Dietrich Wörner. 2009 Beton-Kalender: Konstruktiver Hochbau Aktuelle Massivbaunormen. Wyd. 9. Berlin: Ernst & Sohn, 2009.

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24

Narayanan, R. S. Designers' guide to EN 1992-1-1 and EN 1992-1-2: Eurocode 2: design of concrete structures : general rules and rules for buildings and structural fire design. London: Thomas Telford, 2005.

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25

Institution of Structural Engineers (Great Britain). Manual for the design of concrete building structures to Eurocode 2. London: Institution of Structural Engineers, 2006.

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26

Reynolds, Charles E. Examples of the design of reinforced concrete buildings to BS8110. Wyd. 4. London: E. & F.N. Spon, 1992.

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27

Fédération internationale de la précontrainte. Commission on Prestressing Materials and Systems. Recommendations for the acceptance of post-tensioning systems. London: SETO, 1993.

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28

Atsuhiko, Machida, red. Recommendation for design and construction of concrete structures using continuous fiber reinforcing materials. Tokyo: Research Committee on Continuous Fiber Reinforcing Materials, Japan Society of Civil Engineers, 1997.

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29

J, Roberts J. Concrete masonry designer's handbook. Wyd. 2. New York: Spon Press, 2000.

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30

Jones, Scott Z., i Eric L. Kreiger, red. Standards Development for Cement and Concrete for Use in Additive Construction. 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959: ASTM International, 2021. http://dx.doi.org/10.1520/stp1636-eb.

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31

Chaallal, Omar. Reinforced concrete structures: Design according to CSA A23.3-04. Québec: Presses de l'Université du Québec, 2010.

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32

Allen, A. H. Design data for rectangular beams and slabs to BS 8110:Part 1. [London]: Palladian, 1987.

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33

J, Roberts J. Handbook to BS 5628, Part 2: BS 5628, 1985, British standard code of practice for use of masonry, Part 2 : structural use of reinforced and prestressed masonry. London: Palladian Publications, 1986.

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34

ACI Committee 318. Building code requirements for structural concrete (ACI 318-08) and commentary. Farmington Hills, MI: American Concrete Institute, 2009.

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35

Empelmann, Martin. Zum nichtlinearen Trag- und Verformungsverhalten von Stabtragwerken aus Konstruktionsbeton unter besonderer Berücksichtigung von Betriebsbeanspruchungen. Aachen: Lehrstuhl und Institut für Massivbau der RWTH Aachen, 1995.

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36

Transportation & Development Institute (American Society of Civil Engineers). Structural design of interlocking concrete pavement for municipal streets and roadways. Reston, VA: American Society of Civil Engineers, Transportation & Development Institute, 2010.

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37

Institute, American Concrete. Code requirements for nuclear safety related concrete structures: ACI 349-85 and commentary, ACI 349R-85. Detroit, Mich. (Box 19150, Redford Station, Detroit 48219): American Concrete Institute, 1985.

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38

332, American Concrete Institute Committee. Requirements for residential concrete construction and commentary (ACI 332-04): An ACI standard. Farmington Hills, Mich: American Concrete Institute, 2005.

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39

Institution of Structural Engineers (Great Britain). Manual for the design of building structures to Eurocode 1 and basis of structural design. London: Institution of Structural Engineers, 2010.

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40

Chaallal, Omar. Structures en béton armé: Calcul selon la norme ACNOR A23.3-04. Québec, Québec: Presses de l'Université du Québec, 2008.

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41

ACI Committee 318. Building code requirements for structural concrete: (ACI 318-95) ; and commentary (ACI 318R-95). Farmington Hills, MI: American Concrete Institute, 1995.

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42

Chaallal, Omar. Structures en béton armé: Calcul selon la norme ACNOR A23.3-04. Wyd. 2. Québec (Québec): Presses de l'Université du Québec, 2014.

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43

Chaallal, Omar. Structures en béton armé: Calcul selon la norme ACNOR A23.3-04. Wyd. 2. Québec, Québec: Presses de l'Université du Québec, 2012.

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44

Allen, A. H. Reinforced concrete design to BS8110: Simply explained. London: E. & F.N. Spon, 1988.

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45

Cheng, Richard. Design of concrete structures for retaining aqueous liquids: Design tables to BS 8007. London: Thomas Telford, 1996.

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46

Gifford, P. M. Development of an effective quality assurance program for exposed residential concrete flatwork. [Edmonton, Alta.]: Alberta Municipal Affairs, Innovative Housing Grants Program, 1990.

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47

ACI Committee 318. Building code requirements for structural concrete: (ACI 318-95) ; and commentary (ACI 318R-95). Farmington Hills, MI: American Concrete Institute, 1995.

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48

Council, International Code. 2009 IBC concrete quality and field practices: Based on the 2009 International Building Code (IBC). Country Club Hills, IL: International Code Council, 2009.

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49

ACI Committee 318. Building code requirements for structural concrete: (ACI 318-02) and commentary (ACI 318R-02). Farmington Hills, Mich: American Concrete Institute, 2002.

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50

318, ACI Committee. Building code requirements for structural concrete: (ACI 318-99) ; and commentary (ACI 318R-99). Farmington Hills, Mich: American Concrete Institute, 1999.

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