References
- Angel, R., Abrams, D., Shapiro, D., Uzarski, J. and Webster M. (1994), "Behavior of reinforced concrete frames with masonry infills", Civil Engineering Studies, Structural Research Series N. 589, UILU-ENG-942005, Dept. of Civil Engineering, University of Illinois at Urbana Champaign.
- ATC - Applied Technology Council (2012a), FEMA P-58 Next-generation Seismic Performance Assessment for Buildings, Volume 1 - Methodology, Federal Emergency Management Agency, Washington, DC.
- ATC - Applied Technology Council (2012b), FEMA P-58 Next-generation Seismic Performance Assessment for Buildings, Volume 2 - Implementation Guide, Federal Emergency Management Agency, Washington, DC.
- BUR (Official Journal of Regione Basilicata) (2013), Price List of Public Works in Basilicata Region, Potenza. (in Italian)
- Bozorgnia, Y. and Bertero, V.V. (2004), Earthquake Engineering: From Engineering Seismology to Performance-Based Earthquake Engineering, CRC Press.
- Calvi, G.M., Bolognini, D. and Penna, A. (2004), "Seismic performance of masonry-infilled R.C. frames: benefits of slight reinforcements", Sismica 2004, Congreso National de Sismologia e Engenharia Sismica, Guimaraes, Portugal.
- Carydis, P.G., Mouzakis, H.P., Taflambas, J.M. and Vougioukas, E.A. (1992), "Response of infilled frames with brick walls to earthquake motions", Proceedings of the 10th World Conference on Earthquake Engineering, Madrid.
- Carvalho, E.C. and Coelho, E. (2001), "Seismic assessment, strengthening and repair of structures", ECOEST2-ICONS report n. 2, European Commission - Training and Mobility of Researchers Program.
- Colangelo, F (2003), "Experimental evaluation of Member-by-Member models and damage indices for infilled frames", J. Earthq. Eng., 7(1), 25-50. https://doi.org/10.1080/13632460309350440
- Dolsek, M. and Fajfar, P. (2008), "The effect of masonry infills on the seismic response of a four-storey reinforced concrete frame-a deterministic assessment", Eng. Struct., 30(7), 1991-2001. https://doi.org/10.1016/j.engstruct.2008.01.001
- Hak, S., Morandi, P., Magenes, G. and Sullivan, T.J. (2012), "Damage control for clay masonry infills in the design of RC frame structures", J. Earthq. Eng., 16(1), 1-35. https://doi.org/10.1080/13632469.2011.594485
- Kakaletsis, D.J. and Karayannis, C.G. (2008), "Influence of masonry strength and openings on infilled R/C frames under cyclic loading", J. Earthq. Eng., 12(2), 197-221. https://doi.org/10.1080/13632460701299138
- Kappos, A.J., Stylianidis, K.C. and Michailidis, C.N. (1998), "Analytical models for brick masonry infilled r/c frames under lateral loading", J. Earthq. Eng., 2(1), 59-87. https://doi.org/10.1080/13632469809350314
- Lilliefors, H. (1967), "On the Kolmogorov-Smirnov test for normality with mean and variance unknown", J. Am. Statist. Assoc., 62(318), 399-402. https://doi.org/10.1080/01621459.1967.10482916
- Manos, G.C., Triamataki, M. and Yasin, B. (1995), "Experimental and numerical simulation of the influence of masonry infills on the seismic response of reinforced concrete framed structures", Proceedings of the 10th European Conference on Earthquake Engineering, Eds. A.A. Balkema, Rotterdam, 3, 1513-1518.
- Mehrabi, A.B., Shing, P.B., Schuller, M.P. and Noland, J.L. (1996), "Experimental evaluation of masonry infilled RC frames", J. Struct. Eng., ASCE, 122(3), 228-237. https://doi.org/10.1061/(ASCE)0733-9445(1996)122:3(228)
- Mosalam, K.M., White, R.N. and Gergely, P. (1997), "Static response of infilled frames using quasi-static experimentation", J. Struct. Eng., ASCE, 123(11), 228-237.
- Negro, P. and Verzeletti, G. (1996), "Effect of infills on the global behavior of R/C frames: Energy considerations from pseudodynamic tests", Earthq. Eng. Struct. Dyn., 25(8), 753-773. https://doi.org/10.1002/(SICI)1096-9845(199608)25:8<753::AID-EQE578>3.0.CO;2-Q
- Paulo Pereira, M.F., Neto Pereira, M.F., Dias Ferreira, J.E. and Lourenco, P.B. (2011), "Behavior of masonry infill panels in RC frames subjected to in plane and out of plane loads", Proceedings of the 7th Amcm International Conference, Krakow, Poland.
- Pires, F. and Carvalho, E.C. (1992), "The behaviour of infilled reinforced concrete frames under horizontal cyclic loading", Proceedings of the 10th World Conference on Earthquake Engineering, Madrid.
- Pujol, S., Benavent-Climent, A., Rodriguez, M.E. and Smith-Pardo, J.P. (2008), "Masonry infill walls: An effective alternative for seismic strengthening of low-rise Reinforced Concrete building structures", The 14th World Conference on Earthquake Engineering, Beijing, China.
- Ross, S.M. (2003), "Peirce's criterion for the elimination of suspect experimental data", J. Eng. Technol., 20(2), 38-41.
- Sigmund, V. and Penava, D. (2012), "Experimental study of masonry infilled R/C frames with opening", Proceedings of the 15WCEE, Lisbon, Portugal.
- Schneider, S.P., Zagers, B.R. and Abrams, D.P. (1998), "Lateral strength of steel frames with masonry infills having large opening", J. Struct. Eng., ASCE, 124(8), 896-904. https://doi.org/10.1061/(ASCE)0733-9445(1998)124:8(896)
- Sucuoglu, H. (2013), "Implications of masonry infill and partition Damage in performance perception in residential buildings after a moderate earthquake", Earthq. Spectra, 29(2), 661-667. https://doi.org/10.1193/1.4000147
- Tasnimi, A.A. and Mohebkhah, A. (2011), "Investigation on the behavior of brick-infilled steel frames with openings, experimental and analytical approaches", Eng. Struct., 33(3), 968-980. https://doi.org/10.1016/j.engstruct.2010.12.018
- Zarnic, R. (1995), "Modelling of response of masonry infilled frames", Proceedings of the 10th European Conference on Earthquake Engineering, Eds. A.A. Balkema, Rotterdam, 3, 14811486.
- Zarnic, R. and Gostic, S. (1997), "Masonry infilled frames as an effective structural sub assemblage", Proceedings of the International Workshop on Seismic Design Methodologies for the next generation of codes, Bled, Slovenia.
- Zarnic, R. and Tomazevic, M. (1984), "The behaviour of masonry infilled reinforced concrete frames subjected to cyclic lateral loading", Proceedings of the 8th World Conference on Earthquake Engineering, San Francisco, Prentice-Hall, New Jersey.
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