• Nenhum resultado encontrado

General rules and rules for buildings (Draft No.3 of pr EN 1994 1-

1). European Committee for Standardization Bruxelles, 2001.

FIGUEIRAS, J. A.; PÓVOAS, R. H. C. F.; CACHIM, P. B.; GENÉSIO, M. L. V. P. (1990). Aplicação de modelos não-lineares à análise e dimensionamento de

estruturas laminares de betão. In: Congresso Ibero Latino Americano Sobre

Métodos Computacionais Para Engenharia, Rio de Janeiro, 1990.

FINTEL, M. (1973). Escritório de projetos, Edifício de concreto Projetado. Engenharia Civil, Vol. 43, No. 8, agosto, 1973.

FONSECA, F. J. C. (1994). Projeto de painel tipo sanduiche de concreto pré-

moldado. Tese. EESC - USP, São Carlos, 1994.

FRANCO, L.S.; AGOPYAN, V. (1993). Implementação da Racionalização

Construtiva na fase de projeto. Boletim Técnico da Escola Politécnica da USP

BT/PCC/94. Universidade de São Paulo, 1993.

FROSTIG, Y.; BARUCH, M. (1990). Bending of sandwich beams with

transversely flexible core. American Institute of Aeronautics and Astronautics

(AIAA) Journal, Vol. 28, No. 3, pp. 523-531, 1990.

GOUDARZI, N. (2016). Effect of Z-shaped steel plate connectors on out-of-

plane flexural behaviour of precast insulated concrete panels. PCI Journal,

Vol. 36, No 6, pp. 78 – 98, 2016.

HASSAN, T.K.; MANTAWY, A.; SOLIMAN, J. SHERIF; RIZKALLA, S. (2011);

Bond characteristics and shear behavior of concrete beams reinforced with steel reinforcement. North Carolina State University, Advanced in Structural Engineering Journal, Vol. 15, issue 2, pp. 303 – 318, June , 2011.

HOOGENBOOM, P.C.J.; VOSKAMP, W. (2014). Performance-based design of

reinforced concrete panels on the www. Engineering Conference, In.: ISOPE

2014, Toulon, France, May 23-28, 2014.

HOGNESTAD, E. (1951). A study on combined bending and axial load in

reinforced concrete members. Bulletin series No. 399, Vol. 49, No. 22,

HOLMBERG, A.; PLEM, E. (1986). Behaviour of load bearing sandwich-type

structures. Handout No. 49, State Institute for Construction research, Lund,

Dissertation, University of Stockholm, Sweden, 1986.

HSU, T.T. (1998). Stresses and crack angles in concrete membrane

elements. Journal of Structural Engineering (ASCE), Vol. 94, N.12, pp.1476-

1484, 1998.

KIM, J. H; YOU C. Y. (2015). Composite behavior of a novel insulated

concrete sandwich wall panel reinforced with GFRP shear grids: effects of insulation types. Department of Architectural Engineering, Yonsei University, 50

Yonseiro, Seodaemun-gu, Seoul 120-749, Korea, Article, 2015.

KNONER, N. (2014). Sistema pré-fabricado para aplicação em construções

provisórias de canteiro de obras. Dissertação de mestrado, UFSCar, São

Carlos, 2014.

MC. CALL, C.W. (1985). Thermal properties of sandwich panels. Concrete International, Vol. 7, n. 1, pp.35-41, 1985.

LEWICKI, B.; CHOLEWICKI, A. (1972). The structural design of high concrete buildings. In: Regional Conference on Planning and Design of High Buildings, Proccedings, Varsóvia, 1972.

MOUSER, L.A.D, (2003). Partially composite concrete sandwich panels. M.S. Thesis, University of Alberta, 2003.

MOSTAFA Y.; CHEN, A. (2017). Effective width of insulated sandwich panels

with interior flexible FRP shear connectors considering partial degree of composite action. Arab Academy for Science and Technology, Cairo, Egypt,

Vol 143, issue 9. September, 2017.

YOUSSEF M., Cairo Egito (2017), disponível em: <https://www.researchgate.net/publication/323241972>_A_solution_considering _partial_degree_of_composite_action_for_insulated_sandwich_panels_with_ge neral_configuration_flexible_shear_connectors, Acesso em: 12/07/2018.

NATHAN, T. (2015). Connections and fatigue behavior of precast concrete e

insulated sandwich panels. Master degree of Applied Science, Queen is

University Kingston, Ontario, Canada, 2015.

OLSEN, A. S.; TAYLOR, S.; MARC, M. (2017). Developing a general

methodology for evaluating composite action in insulated wall panels. CEE

Faculty Publications, Paper No. 3531, University of Utah, 2017.

OLSEN J., RUBAYE-AL S., SORENSEN T.;MAQUIRE M. (2018). Disponível

em: < http://digitalcommons.usu.edu/cee_facpub/3531>, acesso em 20/10/2018.

Precast Concrete Institute (1971). Precast and Pre-Stressed Concrete. Precast Concrete Institute, Chicago, 1971.

PCI Committee on Precast Sandwich Wall Panels. (2007). Flexural behavior of

composite precast concrete sandwich panels with continuous truss connectors. PCI Journal, Vol. 60, No.6, pp.51-71, 2007.

PCI Committee on Precast Sandwich Wall Panels. (2011). State of the art of

precast/prestressed sandwich wall panels. PCI Journal, Vol. 56, No. 2, pp.

131–176, 2011.

PCI Committee on Precast Sandwich Wall Panels. (2011). State-of-the-art of

precast/prestressed sandwich wall panels. 2nd Ed. PCI Journal, pp.143-147,

Ottawa, Canadá, 2011.

PCI CONCRETE INSTITUTE, Chicago, (2015), disponível em:

<http://www.pci.org/Design_Resources/Architectural>_Resources/Aesthetic_Ve rsatility/ Acessado em 24/03/2015

PEIKO GROUP GLOBAL. Global, (2015) disponível em:

<https://www.peikko.com/ Peikko Group product catalogue> – 2013, acesso em 28/12/2015.

PESSIKI, S.; MLYNARCZYK, A. (2003). Experimental evaluation of the

composite behavior of precast concrete sandwich wall panels. PCI Journal,

PFEIFER, B.D.W; HANSON, J. A. (1965). Precast concrete wall panels:

flexural stiffness of sandwich panels. ACI Special Publication, No. 11, pp. 67

86, 1965.

PICCHI, F. A.; AGOPYAN, V. (1993). Sistemas da qualidade na construção

de edifícios. Boletim Técnico da Escola Politécnica da USP – BT/PCC, 104,

Universidade de São Paulo, 1993.

REGAN, P. (1999). Textbook on behaviour, design and performance. Bulletin, Vol. 2, No. 2, CEB-FIB, Philadelphia, Pennsylvania, 1999.

ROSMAN, R. (1997). Approximate analysis of shear walls we reserve the right side loads. ACI Journal, Vol. 61, No. 6, 1997.

SALMON, D. C.; EINEA, A.; TADROS, M. K.; CULP, T. D. (1997). Full Scale

Testing of Precast Concrete Sandwich Panels. ACI Structural Journal, Vol. 94,

No.4, pp. 354-362, 1997.

SALMON, D.C.; EINEA, A. (1995). Partially composite sandwich panel

deflections. Journal of Structural Engineering, Vol. 121, No. 4, pp. 778–783,

1995.

SEEBER, K. E. ; ANDREWS, J. R.; BATY, R. J. ; CAMPBELL, S. P. ; DOBBS, E.: JOHN, F. G. ; FFRANCIES, S. ; FREEDMAN, S. ; GLEICH, A. H.; GOETTCHE, E. G. ; HANSON, W.; PAT, D. ; PAT H. ; IVERSON, J. P. ; JAQUES, J. F. ; KOURAJAN, P.; State-of-the-art of precast/prestressed

sandwich wall panels. Chicago, No. 42. 92-134. (1997).

TENÓRIO, H. O., 2005. Painel sanduíche com núcleo em Vermiculita

Expandida: Análise da eficiência do conector tipo treliça na rigidez do painel. Dissertação de Mestrado. Escola de Engenharia Civil, Universidade

Federal de Goiás, 225 p., 2005.

TOMLINSON, G. D. (2015). Behaviour of partially composite precast

concrete sandwich panels under flexural and axial loads. Doctoral thesis,

TOMLINSON, D.G.; FAM, A. (2018). The axial load-bending moment

interaction diagram of partially composite precast concrete sandwich panels. ACI Structural Journal, Vol. 115, N. 6, pp. 1515-1528, 2018.

TOMO, F. C. (2012). Critérios para projeto de edifícios com paredes

portantes de concreto pré-moldado. Dissertação de mestrado – EESC/USP

São Carlos, 2012.

VERDE, D. P. (1975). The interaction of solid shear walls and their suppression structural structures. Science Building, Vol. 7, Pergamon Press, 1975.

WU, Z; BUSCH J.R. (1998). Flexural analysis of prestressed concrete

Documentos relacionados