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1

Concrete and concrete structures: Numerical modelling and applications. London: Elsevier Applied Science, 1989.

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2

A, Noor F., and Boswell L. F, eds. Small scale modelling of concrete structures. London: Elsevier Applied Science, 1992.

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3

Dynamic behavior of concrete structures. Amsterdam: Elsevier, 1994.

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4

Elezaby, Yehia K. Modelling and design of unbraced reinforced concrete frames. Edmonton, Alta: Dept. of Civil Engineering, University of Alberta, 1992.

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5

A, Pimanmas, and Okamura Hajime 1938-, eds. Nonlinear mechanics of reinforced concrete. New York: Spon Press, 2003.

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6

L, Clarke J., Garas F. K, Armer G. S. T, and Institution of Structural Engineers (Great Britain). Informal Study Group for "Model Analysis as a Design Tool"., eds. Design of concrete structures: The use of model analysis. London: Elsevier Applied Science Publishers, 1985.

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7

Knorovsky, G. A. Evaluation of materials of construction for the reinforced concrete reactor containment model. Washington, DC: Division of Engineering, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1988.

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8

IABSE Colloquium (1987 Delft, Netherlands). Computational mechanics of concrete structures: Advances and applications : report. Zürich, Switzerland: IABSE, 1987.

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9

Tetsuya, Ishida, and Kishi Toshiharu 1955-, eds. Multi-scale modelling of structural concrete. London: Taylor & Francis, 2008.

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10

Tekkin konkurīto kōzō no sekkei. Tōkyō: Morikita Shuppan, 2001.

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11

(undifferentiated), Walter Kaufmann. Strength and deformations of structural concrete subjected to in-plane shear and normal forces. Basel: Birkhäuser Verlag, 1998.

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12

Grasty, R. L. The design, construction, and application of concrete models for calibrating borehole gamma-ray spectrometers. Ottawa, Canada: Geological Survey of Canada, 1993.

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13

Lazić, Vera B. Mathematical theory of composite and prestressed structures. Beograd: Matematički institut SANU, 2003.

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14

USSD Committee on Earthquakes. Numerical models for seismic evaluation of concrete dams: Review, evaluation and interpretation of results. Denver, CO: U.S. Society on Dams, 2008.

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15

Pettinga, J. Didier. Dynamic behaviour of reinforced concrete frames designed with direct displacement- based design. Pavia: Rose school, 2005.

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16

Kenel, Albin. Zur Berechnung von Holz/Beton-Verbundkonstruktionen: Entwicklung und Vergleich verschiedener Berechnungsmethoden = Calculation and dimensioning of timber concrete composite structural elements : development and comparison of various methods. Dübendorf: EMPA, Eidgenössische Materialprüfungs- und Forschungsanstalt, Abt. Holz, 2000.

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17

Fédération internationale du béton. Task Group 4.4. Practitioners' guide to finite element modelling of reinforced concrete structures: State-of-art report. Lausanne, Switzerland: International Federation for Structural Concrete, 2008.

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18

Martinez, D. Fred. Development of an analytical model to predict volumetric properties. Helena]: Montana Dept. of Transportation, 1997.

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19

Boven, Erica, and Marieke Winkler, eds. The Construction and Dynamics of Cultural Icons. NL Amsterdam: Amsterdam University Press, 2021. http://dx.doi.org/10.5117/9789463728225.

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Departing from the present need for cultural models within the public debate, this volume offers a new contribution to the study of cultural icons. From the traditional religious icon to the modern mass media icon, from the recognizable visual icon to the complex entanglement of image and collective narratives: The Construction and Dynamics of Cultural Icons offers an overview of existing theories, compares different definitions and proposes a comprehensive view on the icon and the iconic. Focusing in particular on the making of iconic representations and their changing social-cultural meanings through time, scholars from cultural memory studies, art history and literary studies present concrete operationalizations of the ways different types of cultural icons can be studied.
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20

Benchmark, Workshop on Numerical Analysis of Dams (5th 1999 Denver Colo ). Proceedings: Fifth Benchmark Workshop on Numerical Analysis of Dams. Denver, Colo: U.S. Committee on Large Dams, 2000.

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21

Bangash, M. Y. H. Staircases: Structural analysis and design. Rotterdam: A.A. Balkema, 1999.

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22

EURO-C Conference 2003 (2003 Sankt Johann im Pongau, Austria (Politischer Bezirk)). Computational modelling of concrete structures: Proceedings of the EURO-C Conference 2003, St. Johann im Pongau, Austria, 17-20 March 2003. Lisse: A.A. Balkema, 2003.

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23

Béton, Comité Euro-International du. CEB-FIP model code 1990: First draft. Lausanne: Comité Euro-International du Béton, 1990.

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24

Concrete: Beton. [Potsdam]: H.F. Ullmann, 2008.

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25

Béton, Comité Euro-International du. CEB-FIP model code 1990: Final draft, chapters 4-10. Lausanne: Comité Euro-International du Béton, 1991.

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26

Phuket, Thailand) IABSE Colloquium (1999. Concrete model code for Asia: Structural concrete : design, materials and construction, and maintenance : report. Bangkok: Thailand Group IABSE, 1999.

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27

1960-, Bell Michael, and Buckley Craig, eds. Solid states: Concrete in transition. New York, N.Y: Princeton Architectural Press, 2010.

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28

Dinamicità. Roma: Gangemi, 2011.

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29

Häberle, Albrecht. Fertigungsorganisation im Betonfertigteilwerk des konstruktiven Ingenieurbaus: Entwicklung eines computergestützten Modells zur Kalkulation, Planung, Steuerung und Überwachung der Fertigung. Ehningen bei Böblingen: Expert, 1991.

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30

Cheok, Geraldine S. Behavior of 1/6-scale model bridge columns subjected to cyclic inelastic loading. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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31

Cheok, Geraldine S. Behavior of 1/6-scale model bridge columns subjected to cyclic inelastic loading. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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32

Exploring concrete architecture: Tone, texture, form. Basel: Birkhäuser, 2001.

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33

Béton, Comité Euro-International du. Fire design of concrete structures in accordance with CEB/FIP Model code 90 (Final draft). Lausanne: Comité Euro-International du Béton, 1991.

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34

Hackelsberger, Christoph. Beton: Stein der Weisen? : Nachdenken über einen Baustoff. Braunschweig: Vieweg, 1988.

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35

Fehlhaber, Jörg M. Beton und kunst: Entwicklungslinien, Objekte, Umgang mit Beton. Dusseldorf: Beton Verlag, 1997.

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36

Paucard, Alain. Les criminels du béton. Paris: Les Belles Lettres, 1991.

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37

Cheok, Geraldine S. Behavior of 1/6-scale model bridge columns subjected to cyclic inelastic loading. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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38

Cheok, Geraldine S. Behavior of 1/6-scale model bridge columns subjected to cyclic inelastic loading. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1986.

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39

Languedoc-Roussillon, Ecole d'architecture. Béton, matériau d'avenir: Actes du colloque international, 28 et 29 mai 1999, à l'occasion du 150ème anniversaire de l'invention du béton. Montpellier]: Espérou, 2002.

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40

Bonacker, Kathrin. Beton: Ein Baustoff wird Schlagwort : Geschichte eines Imagewandels von 1945 bis heute. Marburg: Jonas, 1996.

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41

Kiran, Joshi, and Chandigarh Perspectives (Organization), eds. Corbusier's concrete: Challenges of conserving modern heritage. Chadigarh: Chandigarh Perspectives, 2005.

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42

Allen, Ralph. Concrete spirit: The architecture of Ralph Allen. Rockport, Mass: Rockport Publishers, 1995.

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43

Avraham Yasḳi: Adrikhalut ḳonḳreṭit. Tel Aviv: Bavel, 2007.

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44

Whiting, D. Evaluation of Troxler model 4430 water/cement gauge: Final report. Washington, D.C: Civil Engineering Research Foundation, 1996.

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45

Concrete: The vision of a new architecture. 2nd ed. Montréal: McGill-Queen's University Press, 2003.

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46

Concrete at High Temperatures (Concrete Design & Construction). Prentice Hall, 1996.

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47

Bangash, M. Y. H. Concrete and Concrete Structures: Numerical Modelling and Applications. Elsevier Science & Technology, 1990.

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48

Chen, Wai-Fah, and Salah El-Metwally. Structural Concrete: Strut-And-Tie Models for Unified Design. Taylor & Francis Group, 2017.

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49

Chen, Wai-Fah, and Salah El-Metwally. Structural Concrete: Strut-And-Tie Models for Unified Design. Taylor & Francis Group, 2017.

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50

Chen, Wai-Fah, and Salah El-Metwally. Structural Concrete: Strut-And-Tie Models for Unified Design. Taylor & Francis Group, 2017.

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