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      Multi-point response spectrum analysis of a historical bridge to blast ground motion

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      https://www.riss.kr/link?id=A104824090

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      다국어 초록 (Multilingual Abstract)

      In this study, the effects of ground shocks due to explosive loads on the dynamic response of historical masonry bridges are investigated by using the multi-point shock response spectrum method. With this purpose, different charge weights and distances from the charge center are considered for the analyses of a masonry bridge and depending on these parameters frequency-varying shock spectra are determined and applied to each support of the two-span masonry bridge. The net blast induced ground motion consists of air-induced and direct-induced ground motions. Acceleration time histories of blast induced ground motions are obtained depending on a deterministic shape function and a stationary process. Shock response spectrums determined from the ground shock time histories are simulated using BlastGM software. The results obtained from uniform and multi-point response spectrum analyses cases show that significant differences take place between the uniform and multi-point blast-induced ground motions.
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      In this study, the effects of ground shocks due to explosive loads on the dynamic response of historical masonry bridges are investigated by using the multi-point shock response spectrum method. With this purpose, different charge weights and distance...

      In this study, the effects of ground shocks due to explosive loads on the dynamic response of historical masonry bridges are investigated by using the multi-point shock response spectrum method. With this purpose, different charge weights and distances from the charge center are considered for the analyses of a masonry bridge and depending on these parameters frequency-varying shock spectra are determined and applied to each support of the two-span masonry bridge. The net blast induced ground motion consists of air-induced and direct-induced ground motions. Acceleration time histories of blast induced ground motions are obtained depending on a deterministic shape function and a stationary process. Shock response spectrums determined from the ground shock time histories are simulated using BlastGM software. The results obtained from uniform and multi-point response spectrum analyses cases show that significant differences take place between the uniform and multi-point blast-induced ground motions.

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      참고문헌 (Reference)

      1 Mclaughlin, K., "Two-dimensional array measurements of near sources ground accelerations" 73 : 349-376, 1983

      2 Ural, A., "Turkish historical arch bridges and their deteriorations and fai" 15 : 43-53, 2008

      3 Kanasewich, E. R., "Time Sequence Analysis in Geophysics" The University of Alberta Press 1981

      4 Bayraktar, A., "The model updating of historical masonry bridges using operational modal analysis method" Chamber of Civil Engineering 2007

      5 Hacıefendioğlu, K., "The effect of seasonally frozen soil on stochastic response of elevated water tank under random excitation" 27 (27): 807-818, 2013

      6 "The Language of Technical Computing"

      7 Sayın, E., "Tarihi Uzunok Köprüsünün Yapı Zemin Etkileşimi Dikkate Alınarak Doğrusal Olmayan Dinamik Analizi, 1" 2011

      8 ANSYS 14, "Swanson Analysis System, US"

      9 Unified Facilities Criteria, "Structures to Resist the Effects of Accidental Explosions"

      10 Gonen, H., "Structural failures in refrofit historical murat masonry arch bridge" 35 : 334-342, 2013

      1 Mclaughlin, K., "Two-dimensional array measurements of near sources ground accelerations" 73 : 349-376, 1983

      2 Ural, A., "Turkish historical arch bridges and their deteriorations and fai" 15 : 43-53, 2008

      3 Kanasewich, E. R., "Time Sequence Analysis in Geophysics" The University of Alberta Press 1981

      4 Bayraktar, A., "The model updating of historical masonry bridges using operational modal analysis method" Chamber of Civil Engineering 2007

      5 Hacıefendioğlu, K., "The effect of seasonally frozen soil on stochastic response of elevated water tank under random excitation" 27 (27): 807-818, 2013

      6 "The Language of Technical Computing"

      7 Sayın, E., "Tarihi Uzunok Köprüsünün Yapı Zemin Etkileşimi Dikkate Alınarak Doğrusal Olmayan Dinamik Analizi, 1" 2011

      8 ANSYS 14, "Swanson Analysis System, US"

      9 Unified Facilities Criteria, "Structures to Resist the Effects of Accidental Explosions"

      10 Gonen, H., "Structural failures in refrofit historical murat masonry arch bridge" 35 : 334-342, 2013

      11 Hacıefendioğlu, K., "Stochastically simulated blast-induced ground motion effects on nonlinear response of an industrial masonry chimney" 28 : 415-427, 2014

      12 Reinke, R.E., "Stochastic geologic effects on near-field ground motions in alluvium" 78 : 1037-1058, 1988

      13 Bolotin, V. V., "Statistical theory of the seismic design of structures" 1960

      14 Ma, H. J., "Soil-structure interaction effect from blast-induced horizontal and vertical ground vibration" 26 : 1661-1675, 2004

      15 Jennings, P. C., "Simulated earth quake motions for design purposes" 1 : 145-160, 1969

      16 Kanai, K., "Semi-empirical formula for the seismic characteristics of the ground" 35 : 307-325, 1957

      17 Bhatti, A. Q., "Seismic vulnerability of historical arch type bridge structures in Italy" Advanced Masters in Structural Analysis of Monuments and Historical Constructions 2009

      18 Pelà, L., "Seismic assessment of masonry arch bridges" 31 : 1777-1788, 2009

      19 Harichandran, R. S., "Response of long-span bridges to spatially varying ground motion" 122 : 476-484, 1996

      20 Harichandran, R.S., "Response of indeterminate two-span beam to spatially varying seismic excitation" 19 (19): 173-187, 1990

      21 Gupta, A. K., "Response Spectrum Method in Seismic Analysis and Design of Structures" CRC Press 1992

      22 Regulatory Guide, "Regulatory Guide 1.92, U.S. Nuclear Regulatory Commission, Revision 1. February"

      23 "Protection of Turkish Cultural Heritage Abroad and Prevention of Illegal Trafficking of Turkish Cultural Heritage" Url-1

      24 Ruiz, P., "PSEQN: Artificial generation of earthquake accelerograms" Earthquake Engineering Research Center 1969

      25 Todo, H., "One and two support models for blast response" 110 (110): 675-683, 1984

      26 Hiroaki, T., "One and two support models for blast response" 110 (110): 675-683, 1984

      27 Hao, H., "Numerical study of characteristics of underground blast induced surface ground motion and their effect on above-ground structures Part II: effects on structural responses" 25 : 39-53, 2005

      28 Wu, C., "Numerical study of characteristics of underground blast induced surface ground motion and their effect on above-ground structures Part I: ground motion characteristics" 25 : 27-38, 2005

      29 Wu, C., "Numerical simulation of structural response and damage to simultaneous ground shock and airblast loads" 34 : 556-572, 2007

      30 Diamanti, N., "Numerical modelling and experimental verification of GPR to investigate ring separation in brick masonry arch bridges" 41 (41): 354-363, 2008

      31 Hacıefendioğlu, K., "Numerical investigation of stochastic response of an elevated water tank to random underground blast loading" 26 (26): 599-607, 2012

      32 Wu, C., "Modeling of simultaneous ground shock and airblast pressure on nearby structures from surface explosions" 31 : 699-717, 2004

      33 Samsun Guide, "Ministry of Culture and Tourism, Yeşilırmak River Basin Development Union"

      34 Toker, S., "Mathematical modelling and finite element analysis of masonry arch bridges" 17 (17): 129-139, 2004

      35 Sevim, B., "Finite element model calibration effects on the earthquake response of masonry arch bridges" 47 : 621-634, 2011

      36 Ural, A., "Finite element analysis of historical arch bridge" 2005

      37 Hao, H., "Effect of spatial variation of ground motions on large multiply-supported structures" Engineering Research Center 1989

      38 Wu, C., "Dynamic response and damage analysis of masonry structures and masonry infilled RC frames to blast ground motion" 27 : 323-333, 2005

      39 Köksal, O., "Dynamic analysis of elevated steel water tank subjected to blast induced ground motion" Ondokuz Mayis University 2013

      40 Singh, P.K., "Damage to surface structures due to blast vibration" 47 : 949-961, 2010

      41 Dowding, C. H., "Construction Vibrations" Prentice-Hall 1996

      42 Lu, Y., "Characterization of structural effects from above-ground explosion using coupled numerical simulation" 84 : 1729-1742, 2006

      43 Hao, H., "Characteristics of surface ground motions induced by blast in jointed rock mass" 21 : 85-98, 2001

      44 Tuma, J., "Calculation of a Shock Response Spectra" 1 : 66-73, 2011

      45 Tajimi, H., "A statistical method for determining the maximum response of a building structure during an earthquake" 1960

      46 Amin, M., "A non-stationary stochastic model of earthquake motion" 94 : 559-583, 1968

      47 Frunzio, G., "3D FEM analysis of a roman arch bridge" 591-598, 2001

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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.12 0.62 0.94
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.79 0.68 0.453 0.33
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