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1

Bahnfleth, William P. Three-dimensional modelling of heat transfer from slab floors. US Army Corps of Engineers, Construction Engineering Research Laboratory, 1989.

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2

United States. Dept. of Housing and Urban Development. Office of Policy Development and Research. and NAHB Research Center, eds. Insulating concrete forms: Comparative thermal performance. The Office, 1999.

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3

A, Imbsen Roy, and Engineering Computer Corporation, eds. Thermal effects in concrete bridge superstructures. Transportation Research Board, National Research Council, 1985.

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4

Woodson, R. Dodge. Radiant floor heating. 2nd ed. McGraw-Hill, 2010.

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5

American Association of State Highway and Transportation Officials., ed. AASHTO guide specifications: Thermal effects in concrete bridge superstructures. American Association of State Highway and Transportation Officials, 1989.

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6

V, Zhukov V. Termostoĭkostʹ zhelezobetonnykh konstrukt͡s︡iĭ. "Budivėlʹnyk", 1991.

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7

Nat͡sievskiĭ, I͡Uriĭ Danilovich. Povyshenie teplozashchitnykh svoĭstv paneleĭ iz legkogo betona. "Budivelʹnyk", 1986.

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8

Trapeznikov, L. P. Temperaturnai͡a︡ treshchinostoĭkostʹ massivnykh betonnykh sooruzheniĭ. Ėnergoatomizdat, 1986.

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9

James, Timothy B. Heat transmission coefficients for walls, roofs, ceilings, and floors. American Society of Heating, Refrigerating, and Air-Conditioning Engineers, 1993.

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10

Malhotra, Ashok. Brick veneer concrete masonry unit backing. Canada Mortgage and Housing Corporation, 1997.

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11

Woodson, R. Dodge. Radiant floor heating. 2nd ed. McGraw-Hill, 2010.

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12

R, Copus E., U.S. Nuclear Regulatory Commission. Office of Nuclear Regulatory Research. Division of Systems Research., and Sandia National Laboratories, eds. Core-concrete interactions using molten urania with zirconium on a limestone concrete basemat: The SURC-1 experiment. Division of Systems Research, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1989.

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13

Alumi͡aė, A. Ė. Stroitelʹnai͡a teplofizika, dolgovechnostʹ konstrukt͡siĭ. "Valgus", 1986.

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14

I͡Akovlev, Anatoliĭ Ivanovich. Raschet ognestoĭkosti stroitelʹnykh konstrukt͡siĭ. Stroĭizdat, 1988.

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15

Evans, D. J. Thermal movements in a multi-storey car park. Cement and Concrete Association, 1986.

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16

Evans, D. J. Thermal movements in a multi-storey car park. Cement and Concrete Association, 1986.

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17

Hintzen, W. Zum Verhalten des jungen Betons unter zentrischem Zwang beim Abfliessen der Hydratationswärme. Bau+Technik, 1998.

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18

1929-, Springenschmid R., and RILEM Technical Committee 119, Avoidance of Thermal Cracking in Concrete at EArly Ages., eds. Prevention of thermal cracking in concrete at early ages: State-of-the-art report prepared by RILEM Technical Committee 119, Avoidance of Thermal Cracking in Concrete at Early Ages. E & FN Spon, 1998.

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19

Zudong, Shi, ed. Experiment and calculation of reinforced concrete at elevated temperatures. Butterworth-Heinemann, 2011.

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20

Powers, D. A. Submission for the CSNI/GREST benchmark exercise on chemical thermodynamic modeling in core-concrete interaction releases of radionuclides. Division of Systems Research, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1988.

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21

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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22

Ignatova, Ol'ga, and Vladimir Zavadskiy. Technology of insulation and wall materials and products. INFRA-M Academic Publishing LLC., 2025. https://doi.org/10.12737/2141115.

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The textbook provides an analysis and characteristics of various thermal, waterproofing and wall materials, an assessment of their suitability for use in construction. Classifications by structure, purpose, basic construction and operational properties, and areas of application are given. The basic schemes of manufacturing thermal insulation materials based on mineral and organic raw materials, as well as the basic principles of creating bitumen and polymer waterproofing materials are presented. Modern technologies for the production of wall products from cellular concretes, lightweight concre
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23

Bofang, Zhu. Thermal Stresses and Temperature Control of Mass Concrete. Elsevier Science & Technology Books, 2013.

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24

Imbsen, R. A., and R. A. Vandershaf. Thermal Effects in Concrete Bridge Superstructures (Report (National Cooperative Highway Research Program)). Transportation Research Board National Resear, 1986.

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25

Thermal cracking in concrete at early ages. New York, 1995.

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26

Concrete heat development: Monitoring, prediction, and management : April 22-26, 2007, Atlanta, Georgia, USA. American Concrete Institute, 2007.

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27

Springenschmid, R. Prevention of Thermal Cracking in Concrete at Early Ages. Taylor & Francis Group, 2004.

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28

Springenschmid, R. Prevention of Thermal Cracking in Concrete at Early Ages. Taylor & Francis Group, 2019.

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29

Springenschmid, R. Thermal Cracking in Concrete at Early Ages. Taylor & Francis Group, 1994.

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30

Springenschmid, R. Thermal Cracking in Concrete at Early Ages. Taylor & Francis Group, 2019.

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31

Mbwambo, William J. Structural response of prestressed concrete members subjected to elevated temperatures. 1995.

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32

Woodson, R. Dodge. Radiant Floor Heating. McGraw-Hill Professional, 1999.

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33

Woodson, R. Dodge. Radiant Floor Heating. McGraw-Hill Professional, 1999.

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34

Core-concrete interactions using molten urania with zirconium on a limestone concrete basemat: The SURC-1 experiment. Supt. of Docs., U.S. G.P.O. [distributor], 1992.

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35

Springenschmid, R. Thermal Cracking in Concrete at Early Ages: Proceedings of the International RILEM Symposium. Taylor & Francis Group, 1994.

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36

Springenschmid, R. Prevention of Thermal Cracking in Concrete at Early Ages. Taylor & Francis Group, 2004.

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37

Core-concrete interactions using molten UO₂ with zirconium on a basaltic basemat: The SURC-2 experiment. Division of Systems Research, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1989.

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38

Thermal Cracking in Concrete at Early Ages: Proceedings of the International RILEM Symposium. Taylor & Francis Group, 1994.

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39

Springenschmid, R. Prevention of Thermal Cracking in Concrete at Early Ages: State-Of-the-Art Report Prepared by Rilem Technical Committee 119 Avoidance of Thermal Cracking in Concrete at Early Ages. Taylor & Francis Group, 1998.

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40

Efectos térmicos en presas y embalses. Colegio de Ingenieros de Caminos, Canales y Puertos, 1996.

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41

Aguado, Antonio, Jose Dolz, and Jeronimo Puertas. Efectos Termicos En Presas y Embalses (Monografias / Colegio de Ingenieros de Caminos, Canales y Puertos). Colegio de Ingenieros de Caminos Canales y Pu, 1999.

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42

Guo, Zhenhai, and Xudong Shi. Experiment and Calculation of Reinforced Concrete at Elevated Temperatures. Elsevier Science & Technology Books, 2011.

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43

Guo, Zhenhai, and Xudong Shi. Experiment and Calculation of Reinforced Concrete at Elevated Temperatures. Butterworth-Heinemann Limited, 2017.

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44

Designers' guide to EN 1991-1-2, 1992-1-2, 1993-1-2 and 1994-1-2: Handbook for the fire design of steel, composite and concrete structures to the eurocodes. Thomas Telford, 2007.

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