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contributor authorKeisuke Minagawa
contributor authorSatoshi Fujita
date accessioned2017-05-09T00:21:16Z
date available2017-05-09T00:21:16Z
date copyrightNovember, 2006
date issued2006
identifier issn0094-9930
identifier otherJPVTAS-28473#502_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/134461
description abstractBackground: Since the Hanshin-Awaji Earthquake Disaster, the number of isolated structures has been greatly increased. The natural period of the isolation system is designed around 3s, because the predominate period of observed seismic waves is usually 0.1 to 1s. However, relatively long period seismic waves have been observed in various earthquakes, and the resonances of long-period structures, such as high-rise buildings, during earthquakes have been reported at the same time. Therefore the natural period needs to be extended. When extending the natural period of the isolated structure using rubber bearings, its stiffness needs to be reduced. It is more difficult to extend the natural period of the isolation system than the conventional system because of a buckling problem. Therefore we propose a super-long-period active seismic isolation system as a new method for extending the natural period of the isolated structure. This system consists of rubber bearings and hydraulic actuators. Method of approach: In this study, we designed a control system by using the model matching method. This is one of the classical control system design methods. Additionally we applied a genetic algorithm (GA) to select parameters of a transfer function. Results: The system designed by applying the GA could reduce response acceleration sufficiently compared with the input acceleration. Further waveforms of the response acceleration retain almost straight forwardly, so this indicates good performance of isolation. Therefore, application of super-long-period active isolation is an effective technique to improve the performance of isolation. However, the control forces are big, and the system needs 95.5×106N for the El Centro NS wave as control force. This force is equivalent to 21 actuators that are used in a large shake table, so there are few possibilities to realize active isolation. Conclusion: The required control force of hydraulic actuators is big, although the super-long-period active isolation system possesses good performance of isolation compared with the conventional isolation system. Therefore it is difficult to apply this isolation system to the real structure. However, the problem regarding requirements of the actuator should be solved because of the realization of an active seismic isolation system. Therefore, we will examine for the parameters of the system and semi-active isolation system.
publisherThe American Society of Mechanical Engineers (ASME)
titleFundamental Study on the Super-Long-Period Active Isolation System
typeJournal Paper
journal volume128
journal issue4
journal titleJournal of Pressure Vessel Technology
identifier doi10.1115/1.2349555
journal fristpage502
journal lastpage507
identifier eissn1528-8978
keywordsControl systems
keywordsRubber
keywordsSeismic waves
keywordsTransfer functions
keywordsWaves
keywordsActuators
keywordsBearings
keywordsDamping
keywordsForce
keywordsEarthquakes
keywordsGenetic algorithms
keywordsStiffness
keywordsStructures
keywordsDisplacement
keywordsDesign
keywordsBuckling
keywordsHydraulic actuators AND Design methodology
treeJournal of Pressure Vessel Technology:;2006:;volume( 128 ):;issue: 004
contenttypeFulltext


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