Books on the topic 'Composite materials Strength of materials Composite construction'

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1

Grisaffe, Salvatore J. Reinforcements: The key to high performance composite materials. [Washington, DC]: National Aeronautics and Space Administration, 1990.

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2

Vick, Charles B. Lamination of hardwood composite framing with an emulsion polymer-isocyanate adhesive and radio-frequency curing. Asheville, N.C: U.S. Dept. of Agriculture, Forest Service, Southeastern Forest Experiment Station, 1987.

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3

Composite materials. Stillwater, MN: Wolfgang Pub., 2009.

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4

Composite construction. New York: Spon Press, 2003.

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5

Nethercot, D. A. Composite Construction. London: Taylor & Francis Inc, 2004.

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6

Composite Construction. London: Taylor & Francis Group Plc, 2004.

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7

Fatigue of composite materials. Lancaster: Technomic Pub. Co., 1987.

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8

Talreja, Ramesh. Fatigue of composite materials. Lyngby, Denmark: Technical University of Denmark, 1985.

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9

Talreja, R. Fatigue of composite materials. Lancaster: Technomic Publishing, 1987.

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10

Keller, Thomas. Use of fibre reinforced polymers in bridge construction. Zurich, Switzerland: International Association for Bridge and Structural Engineering (IABSE), 2003. http://dx.doi.org/10.2749/sed007.

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<p>The aim of the present Structural Engineering Document, a state-of-the-art report, is to review the progress made worldwide in the use of fibre rein­forced polymers as structural components in bridges until the end of the year 2000.<p> Due to their advantageous material properties such as high specific strength, a large tolerance for frost and de-icing salts and, furthermore, short installation times with minimum traffic interference, fibre reinforced polymers have matured to become valuable alternative building materials for bridge structures. Today, fibre reinforced polymers are manufactured industrially to semi-finished products and ccimplete structural components, which can be easily and quickly installed or erected on site.<p> Examples of semi-finished products and structural components available are flexible tension elements, profiles stiff in bending and sandwich panels. As tension elements, especially for the purpose of strengthening, strips and sheets are available, as weil as reinforcing bars for concrete reinforcement and prestressing members for internal prestressing or external use. Profiles are available for beams and columns, and sandwich constructions especially for bridge decks. During the manufacture of the structural components fibre-optic sensors for continuous monitoring can be integrated in the materials. Adhesives are being used more and more for joining com­ponents.<p> Fibre reinforced polymers have been used in bridge construction since the mid-1980s, mostly for the strengthening of existing structures, and increas­ingly since the mid-1990s as pilot projects for new structures. In the case of new structures, three basic types of applications can be distinguished: concrete reinforcement, new hybrid structures in combination with traditional construction materials, and all-composite applications, in which the new materials are used exclusively.<p> This Structural Engineering Document also includes application and research recommendations with particular reference to Switzerland.<p> This book is aimed at both students and practising engineers, working in the field of fibre reinforced polymers, bridge design, construction, repair and strengthening.
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11

Mendes, Gustavo, and Bruno Lago. Strength of materials. New York: Nova Science Publishers, 2009.

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12

Choo, V. K. Multiaxial testing of composite materials. Carnforth, Lancashire, England: Parthenon Press, 1986.

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13

Choo, V. K. Multiaxial testing of composite materials. Carnforth, Lancashire: Parthenon Press, 1986.

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14

International Conference on Composite Structures (4th 1987 Paisley College of Technology). Composite structures 4. London: Elsevier Applied Science, 1987.

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15

International Conference on Composite Structures (4th 1987 Paisley College of Technology). Composite structures 4. London: Elsevier Applied Science, 1987.

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16

International Conference on Composite Structures (5th 1989 Paisley College of Technology). Composite structures 5. London: Elsevier Applied Science, 1989.

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17

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

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18

Auerkari, Pertti. Effect of impact face damage on strength of sandwich composites. Espoo, Finland: Technical Research Centre of Finland, 1993.

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19

Dastin, Samuel J. Aircraft composite materials and structures: Seminar notes. Lancaster, PA: Technomic Publishing Co., 1986.

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20

Composite reinforcements for optimum performance. Oxford: Woodhead Pub., 2011.

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21

Quinn, J. A. Composites: Design manual. Liverpool: James Quinn Associates, 1995.

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22

S, Reznikov B., and Shemi͡akin Evgeniĭ Ivanovich, eds. Prochnostʹ ėlementov konstrukt͡siĭ iz kompozitnykh materialov. Novosibirsk: Izd-vo "Nauka," Sibirskoe otd-nie, 1986.

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23

Quinn, J. A. Composites: Design manual. 2nd ed. Liverpool: James Quinn Associates, 1998.

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24

Chisti͡akov, A. M. Legkie mnogosloĭnye ograzhdai͡ushchie konstrukt͡sii. Moskva: Stroĭizdat, 1987.

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25

V, Hoa S., Wilde, W. P. de 1946-, and Blain W. R. 1952-, eds. Computer methods in composite materials VI. Southampton, UK: Computational Mechanics Publications, 1998.

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26

Strength & life of composites. Stanford, CA: Composites Design Group, Dept. of Aeronautics and Astronautics, Stanford University, 2008.

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27

Decolon, Christian. Analysis of composite structures. London: HPS, 2002.

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28

Decolon, Christian. Analysis of composite structures. London: Kogan Page Science, 2004.

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29

Backman, B. F. (Bjorn F.). and ScienceDirect (Online service), eds. Composite structures: Safety management. 2nd ed. Oxford, UK: Elsevier, 2008.

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30

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development. Advanced polymeric & metallic composite materials for space and aerospace vehicle structures & strength optimization of composite structures and their certification. Neuilly-sur-Seine, France: AGARD, 1995.

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31

Motro, René, ed. Flexible Composite Materials in Architecture, Construction and Interiors. Berlin, Boston: DE GRUYTER, 2013. http://dx.doi.org/10.1515/9783034613507.

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32

Lagarde, Jean-Damien. Initiation à la lutherie composite. Paris: Connaissances et savoirs, 2007.

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33

International Conference on Advances in Composite Materials and Structures (7th 2000 Bologna, Italy). Advances in composite materials and structures VII. Edited by Wilde, W. P. de 1946-, Blain W. R. 1952-, and Brebbia C. A. Southampton: WIT, 2000.

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34

International Conference on Composite Materials and Structures (1988 Indian Institute of Technology, Madras, India). Composite materials and structures: Proceedings of the International Conference on Composite Materials and Structures, January 6-9, 1988, Indian Institute of Technology, Madras, India. Edited by Pandalai K. A. V, Malhotra S. K, and Indian Institute of Technology (Madras, India). New Delhi: Tata McGraw-Hill Pub. Co., 1988.

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35

International, ASM, and Engineering Society of Detroit, eds. Advanced composites: Design, materials, and processing technologies : proceedings of the Eight Annual ASM/ESD Advanced Composites Conference, 2-5 November 1992, Chicago, Illinois, USA. Materials Park, Ohio: ASM International, 1992.

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36

International, ASM, and Engineering Society of Detroit, eds. Structural composites: Design and processing technologies : proceedings of the Sixth Annual ASM/ESD Advanced Composites Conference, Detroit, Michigan, USA, 8-11 October 1990. Materials Park, Ohio: ASM International, 1990.

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37

Advanced Composites Conference (7th 1991 Detroit, Mich.). Advanced composite materials: New developments and applications : proceedings of the Seventh Annual ASM/ESD Advanced Composites Conference, 30 September-3 October, 1991, Detroit, Michigan, USA. Materials Park, Ohio: ASM International, 1991.

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38

IABSE Symposium (1990 Brussels, Belgium). Mixed structures, including new materials: Report = Construction mixte acier, béton et nouveaux matériaux : rapport. Zurich, Switzerland: International Association for Bridge and Structural Engineering, 1990.

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39

A, Brebbia C., Wilde, W. P. de 1946-, Wessex Institute of Technology, and International Conference on High Performance Structures and Materials (2nd : 2004 : Ancona), eds. High performance structures and materials II. Southampton: WIT Press, 2004.

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40

National Institute of Standards and Technology (U.S.), ed. Tensile strength of an interlocking composite connection. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2000.

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41

Tensile strength of an interlocking composite connection. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2000.

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42

M, Singh, Lewis D, and Joint TMS/ASM Composite Materials Committee., eds. In situ composites: Science and technology : proceedings of a symposium sponsored by the Joint SMD and MSD Composite Materials Committee held during Materials Week '93, October 17-21, 1993 in Pittsburgh, Pennsylvania. Warrendale, Pa: Minerals, Metals & Materials Society, 1994.

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43

Kunwar, Bajpai, and National Institute of Standards and Technology (U.S.), eds. Strength of an interlocking FRP connection. Gaithersburg, MD: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2001.

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44

Caijun, Shi, and Mo Y. L, eds. High-performance construction materials: Science and applications. Singapore: World Scientific, 2008.

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45

Sh, Barbakadze V., ed. Durability of building structures and constructions from composite materials. Rotterdam: A.A. Balkema, 1995.

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46

Brebbia, C. A. High Performance Structures And Materials III. WIT Press (UK), 2006.

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47

Kozlov, V. V., I. I. Nikolov, V. G. Mikul'skii, and V. Sh Barbakadze. Durability of Building Structures and Constructions from Composite Materials: Russian Translations Series 109. Taylor & Francis Group, 2020.

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48

V, Kozlov V., I. I. Nikolov, V. G. Mikul'skii, and V. Sh Barbakadze. Durability of Building Structures and Constructions from Composite Materials: Russian Translations Series 109. Taylor & Francis Group, 2020.

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49

Kozlov, V. V., I. I. Nikolov, V. G. Mikul'skii, and V. Sh Barbakadze. Durability of Building Structures and Constructions from Composite Materials: Russian Translations Series 109. Taylor & Francis Group, 2020.

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50

V, Kozlov V., I. I. Nikolov, V. G. Mikul'skii, and V. Sh Barbakadze. Durability of Building Structures and Constructions from Composite Materials: Russian Translations Series 109. Taylor & Francis Group, 2020.

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