Project/Area Number |
12305036
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Research Category |
Grant-in-Aid for Scientific Research (A)
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Allocation Type | Single-year Grants |
Section | 一般 |
Research Field |
Building structures/materials
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Research Institution | Meiji University |
Principal Investigator |
NOGUCHI Hiroyuki Meiji University, School of Science and Technology, Professor, 理工学部, 教授 (40062012)
|
Co-Investigator(Kenkyū-buntansha) |
KOH Tadaki Meiji University, School of Science and Technology, Professor, 理工学部, 教授 (10061904)
TAKAGI Hitoyuki Meiji University, School of Science and Technology, Asis.Professor, 理工学部, 講師 (70130820)
HIRAISI Hisahiro Meiji University, School of Science and Technology, Professor, 理工学部, 教授 (40113211)
KOYAMA Akio Meiji University, School of Science and Technology, Asis.Professor, 理工学部, 講師 (90285099)
KIKUCHI Masafumi Meiji University, School of Science and Technology, Professor, 理工学部, 教授 (90130806)
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Project Period (FY) |
2000 – 2003
|
Keywords | Seismic Performance / Vibration-Controlled Building / Impuls Load / Wooden Structure Members / RC Structure Members / Non-Structure Member / Seismic Retrofit / Hinge Isolated Structural Member |
Research Abstract |
The outline of the research results are as the following. 1.Earthquake-resistant and retrofit design was studied with the aim of reduction of earthquake response and damage control under the severe earthquake as represented by the inland earthquake. And further, the prediction method of earthquake response and the guiding principle are proposed based on the analytical study for earthquake-resistant and retrofit design on the mid-story isolated system. 2.Study on earthquake resistance, of wooden construction: (1) The racking tests on full sized wooden panel building and room sized perforated bearing walls were carried out, it was made clear that estimation of horizontal behavior of full sized buildings from the results of room sized bearing wall test and FEM analysis was available. (2) It was made clear that wooden bearing wall's horizontal stiffness and strength were variable by deformation velocity in the racking test of wooden bearing walls, and the behavior of earthquake response of w
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ooden building was influenced by loading velocity of bearing walls. 3.The studies on experiments and analysis about the shear strength of the reinforced concrete members under a static or dynamic loading were done. The plastic theory was applied to the estimation of the shear strength and examined. The contents of the examination are as the next, the influences of the impuls load or axial load for the columns, and 2 directions load for the solid wall. 4.ALC panel was taken up as nonstructural elements. The in-plane critical differential movement of this kind of curtain wall to an earthquake was experimented, and the proposal of an appropriate construction method ~vas tried. As a result, the influence of structural method and the other element (reinforcement for opening, etc) on the critical differential movements were clarified. Exfoliation of the tile stuck on this kind of elements was examined from the bond test, etc. 5.Seismic retrofit tests were conducted for existing R/C structures strengthened with outside R/C member contained steel plate. Panel strengthened method was developed for the wing-wall using one and two layer specimens. Test results showed improved ultimate strength and ductility against holizontal cyclic shear load. In case of brace system, unbonded brace worked effectively for the ductile existing R/C frame, however didn't work functionally for the brittle frame. 6.Development of the new ductile reinforced concrete structural members : The seven reinforced concrete beam specimens had steel sleeves covering longitudinal reinforcing bars of almost the same length as the depth of members at the hinge region were developed. The structural tests verified their excellent deformation capacity with minor damage. Less
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