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1

Irish, Council for Science Technology and Innovation Construction and Infrastructure Panel. Construction and infrastructure: Report from the Construction and Infrastructure Panel. Dublin: Forfás, 1999.

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2

Lee, Seungyeol. Glazed Panel Construction with Human-Robot Cooperation. New York, NY: Springer New York, 2011. http://dx.doi.org/10.1007/978-1-4614-1418-6.

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3

Glazed panel construction with human-robot cooperation. New York: Springer, 2011.

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4

Build your own solar panel. Wheelock, VT: Wheelock Mountain Publications, 2000.

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5

Plate and panel structures of isotropic, composite and piezoelectric materials, including sandwich construction. Dordrecht: Springer, 2005.

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6

James, Bethel, Broene Pamela, and United States. Agency for Health Care Policy and Research, eds. Construction of weights for the 1996 Medical Expenditure Panel Survey nursing home component. Rockville, MD: U.S. Dept. of Health and Human Services, Public Health Service, Agency for Health Care Policy and Research, 1999.

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7

Vinson, Jack R. Plate and Panel Structures of Isotropic, Composite and Piezoelectric Materials, Including Sandwich Construction. Dordrecht: Springer Netherlands, 2005. http://dx.doi.org/10.1007/1-4020-3111-4.

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8

Zanten, Mieke M. van. Orgelluiken: Traditie en iconografie : de Nederlandse beschilderde orgelluiken in Europees perspectief. Zutphen: Walburg Pers, 1999.

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9

Build your own solar panel: Generate electricity from the sun. Wheelock, VT: Wheelock Mountain Publications, 2006.

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10

Kianoush, Mohammed Reza. Inelastic seismic response of precast concrete large panel coupled shear wall systems. [Regina]: Dept. of Civil Engineering, University of Alberta, 1986.

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11

Behind the front panel: The design and development of 1920's radios. Philomath, Or: Wren Publishers, 1994.

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12

Badie, Sameh S. Full-depth precast concrete bridge deck panel systems: Sameh S. Badie and Maher K. Tadros. Washington, D.C: Transportation Research Board, 2008.

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13

Alekseenko, Vasiliy, and Oksana Zhilenko. Design, construction and operation of buildings in seismic areas. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1000210.

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The main purpose of the textbook is to acquaint students and engineers with the principles of design and construction of buildings and structures in seismic areas. The tutorial sets out the basic principles of design and construction of frame, large-panel buildings, buildings with load-bearing walls made of small-piece stones and large blocks, buildings made of local materials, frameless buildings made of monolithic reinforced concrete. The design requirements for buildings in earthquake-prone areas are described, and the main requirements for the production of works and implementation of anti-seismic measures during construction are outlined. Architectural, construction, design and technological aspects of construction in seismic areas are revealed. Meets the requirements of Federal state educational standards of higher education of the latest generation. It is intended for students studying in the areas of training 08.03.01 and 08.04.01 "Construction" in the following disciplines: "Design, construction and operation of buildings in seismic areas", "Theory and design of buildings and structures in seismic areas".
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14

United States. Congress. House. Committee on Armed Services. Readiness Subcommittee. Morale, Welfare, and Recreation Panel. Nonappropriated fund construction, 1986: Report of the Morale, Welfare, and Recreation (MWR) Panel of the Readiness Subcommittee of the Committee on Armed Services, House of Representatives, Ninety-ninth Congress, first session. Washington: U.S. G.P.O., 1986.

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15

Air Traffic Management in Southern Ontario Environmental Assessment Panel (Canada). Air traffic management in southern Ontario: Executive summary of the interim report of the Environmental Assessment Panel. Hull, Québec: Federal Environmental Assessment Review Office, 1992.

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16

United States. Congress. House. Committee on Armed Services. Readiness Subcommittee. Morale, Welfare, and Recreation Panel. Nonappropriated fund construction: Hearings before the Morale, Welfare, and Recreation (MWR) Panel of the Readiness Subcommittee of the Committee on Armed Services, House of Representatives, Ninety-ninth Congress, first session, October 3, 17, and 22, 1985. Washington: U.S. G.P.O., 1986.

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17

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development. Structures and Materials Panel. Meeting. Damage tolerance concepts for critical engine components: Papers presented at the 60th Meeting of the Structures and Materials Panel in San Antonio, Texas, USA on 22-26 April 1985. Neuilly sur Seine, France: AGARD, 1985.

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18

International Conference on Structural Mechanics in Reactor Technology (9th 1987 Lausanne, Switzerland). Transactions of the 9th International Conference on Structural [sic] Mechanics in Reactor Technology : panel session JK, structural and mechanical engineering research at the United States Nuclear Regulatory Commission to be held at Lausanne, Switzerland, August 17-21, 1987. Washington, DC: Division of Engineering, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commmission, 1987.

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19

Composite panels/plates: Analysis and design. Lancaster, Pa: Technomic Pub. Co., 1986.

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20

Williamson, G. R. Evaluation of glass fiber reinforced concrete panels for use in military construction. Champaign, Ill: US Army Corps of Engineers, Construction Engineering Research Laboratory, 1985.

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21

Walker, Sandra P. Evaluation of composite honeycomb sandwich panels under compressive loads at elevated temperatures. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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22

Numerical and experimental investigation of hollow sphere structures in sandwich panels. Stafa-Zuerich: Trans Tech Publications, 2008.

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23

Ferrater, Carlos. Más grueso que el papel = Thicker than paper. [Barcelona]: Actar, 2000.

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24

Andrews, Steve. Foam-core panels & building systems: Principles and practice plus product directory. Arlington, VA: Cutter Information Corporation, 1988.

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25

Cheng, Richard. Design load tables for laterally loaded masonry panels: To BS 5628 parts 1 and 2 : (including bed joint reinforced panels). London: Thomas Telford, 1996.

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26

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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27

McDonald, Dwight. Creep behavior of structural insulated panels (SIPs): Results from a pilot study. Madison, Wisconsin: United States Department of Agriculture, Forest Service, Forest Products Laboratory, 2014.

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28

Pettit, R. G. Validated feasibility study of integrally stiffened metallic fuselage panels for reducing manufacturing costs. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 2000.

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29

Office, General Accounting. Defense management: Proposed lodging policy may lead to improvements, but more actions are required : report to the chairman and ranking minority member, Special Oversight Panel on Morale, Welfare, and Recreation, Committee on Armed Services, House of Representatives. Washington, D.C. (P.O. Box 37050, Washington 20013): U.S. General Accounting Office, 2002.

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30

Munroe, J. Integral airframe structures (IAS): Validated feasibility study of integrally stiffened metallic fuselage panels for reducing manufacturing costs. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 2000.

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31

Metschan, S. Validated feasibility study of integrally stiffened metallic fuselage panels for reducing manufacturing costs: Cost assessment of manufacturing/design concepts. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 2000.

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32

David, Holland. Dashboards. London: Phaidon, 1994.

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33

Ko, William L. Open-mode debonding analysis of curved sandwich panels subjected to heating and cryogenic cooling on opposite faces. Edwards, Calif: National Aeronautics and Space Administration, Dryden Flight Research Center, 1999.

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34

Kobia, Samuel. El papel de las religiones en la construcción de la paz y la reconciliación: The role of religion in constructing peace and reconciliation. Managua: Universidad Politécnica de Nicaragua (UPOLI), Instituto "Martin Luther King", 2009.

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35

Blackburn, Graham. Frame and Panel Construction. Taunton, 2004.

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36

Engineers, Society of Automotive, and SAE International Congress & Exposition (1995 : Detroit, Mich.), eds. Instrument panel design issues. Warrendale, PA: Society of Automotive Engineers, 1995.

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37

L, Tucker Richard, and Japanese Technology Evaluation Center (Loyola College in Maryland), eds. JTEC panel report on construction technologies in Japan. Baltimore, Md: Loyola College in Maryland, 1991.

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38

Koschade, Rolf. Sandwich Panel Construction: Construction With Factory Engineered Sandwich Panels, Consisting of Metallic Facings and a Foamed Polyurethane Core. Wiley-VCH Verlag GmbH, 2002.

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39

Engineers, Society of Automotive, and SAE International Congress & Exposition (1996 : Detroit, Mich.), eds. Developments in instrument panel design. Warrendale, PA: Society of Automotive Engineers, 1996.

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40

Morley, Michael. Building with Structural Insulated Panels (SIPs): Strength and Energy Efficiency Through Structural Panel Construction. Taunton, 2000.

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41

Engineers, Society of Automotive, and SAE International Congress & Exposition (1997 : Detroit, Mich.), eds. Design trends in instrument panel systems. Warrendale, PA: Society of Automotive Engineers, 1997.

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42

Vinson, Jack R. Plate and Panel Structures of Isotropic, Composite and Piezoelectric Materials, Including Sandwich Construction. Springer, 2009.

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43

Vinson, Jack R. Plate and Panel Structures of Isotropic, Composite and Piezoelectric Materials, Including Sandwich Construction. Springer, 2011.

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44

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development., ed. Flight Vehicle Integration Panel Working Group 21 on glass cockpit operational effectiveness. Neuilly-sur-Seine: Advisory Group for Aerospace Research and Development, 1996.

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45

Automotive body panel and bumper system materials and design. Warrendale, PA: Society of Automotive Engineers, 1992.

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46

JTEC panel report on nuclear power in Japan. Baltimore, Md: Loyola College in Maryland, 1990.

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47

Congress, Indian Roads, ed. Design and construction practices of submersible bridges & causeways in India: Panel discussion & important papers. New Delhi: Indian Roads Congress, 1990.

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48

E, Bonilla Francisco, Texas. State Dept. of Highways and Public Transportation., United States. Federal Highway Administration., and Texas Transportation Institute, eds. Composite action of precast panel bridge decks in negative moment regions. College Station, Tex: Texas Transportation Institute, Texas A&M University, 1987.

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49

M, Lampert Carl, and Society of Photo-optical Instrumentation Engineers., eds. Switchable materials and flat panel displays: 21-22 July 1999, Denver, Colorado. Bellingham, Wash., USA: SPIE, 1999.

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50

Technology and the future of the U.S. construction industry: Proceedings of the Panel on Technical Change and the U.S. Building Construction Industry. AIA Press, 1986.

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