Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions

A dynamic stability criterion for elastic-plastic structures under near-fault ground motions is derived in closed-form. A negative post-yield stiffness is treated in order to consider the P-delta effect. The double impulse is used as a substitute of the fling-step near-fault ground motion. Since...

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Main Authors: Kotaro eKojima, Izuru eTakewaki
Format: Article
Language:English
Published: Frontiers Media S.A. 2016-03-01
Series:Frontiers in Built Environment
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fbuil.2016.00006/full
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spelling doaj-24667f39523545c896f8801e3a864cab2020-11-24T23:59:39ZengFrontiers Media S.A.Frontiers in Built Environment2297-33622016-03-01210.3389/fbuil.2016.00006188343Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motionsKotaro eKojima0Izuru eTakewaki1Kyoto UniversityKyoto UniversityA dynamic stability criterion for elastic-plastic structures under near-fault ground motions is derived in closed-form. A negative post-yield stiffness is treated in order to consider the P-delta effect. The double impulse is used as a substitute of the fling-step near-fault ground motion. Since only the free-vibration appears under such double impulse, the energy approach plays a critical role in the derivation of the closed-form solution of a complicated elastic-plastic response of structures with the P-delta effect. It is remarkable that no iteration is needed in the derivation of the closed-form dynamic stability criterion on the critical elastic-plastic response. It is shown via the closed-form expression that several patterns of unstable behaviors exist depending on the ratio of the input level of the double impulse to the structural strength and on the ratio of the negative post-yield stiffness to the initial elastic stiffness. The validity of the proposed dynamic stability criterion is investigated by the numerical response analysis for structures under double impulses with stable or unstable parameters. Furthermore the reliability of the proposed theory is tested through the comparison with the response analysis to the corresponding one-cycle sinusoidal input as a representative of the fling-step near-fault ground motion. The applicability of the proposed theory to actual recorded pulse-type ground motions is also discussed.http://journal.frontiersin.org/Journal/10.3389/fbuil.2016.00006/fullEarthquake Responsedynamic stabilityNear-fault ground motionCritical responseP-delta effectDynamic collapse
collection DOAJ
language English
format Article
sources DOAJ
author Kotaro eKojima
Izuru eTakewaki
spellingShingle Kotaro eKojima
Izuru eTakewaki
Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
Frontiers in Built Environment
Earthquake Response
dynamic stability
Near-fault ground motion
Critical response
P-delta effect
Dynamic collapse
author_facet Kotaro eKojima
Izuru eTakewaki
author_sort Kotaro eKojima
title Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
title_short Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
title_full Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
title_fullStr Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
title_full_unstemmed Closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
title_sort closed-form dynamic stability criterion for elastic-plastic structures under near-fault ground motions
publisher Frontiers Media S.A.
series Frontiers in Built Environment
issn 2297-3362
publishDate 2016-03-01
description A dynamic stability criterion for elastic-plastic structures under near-fault ground motions is derived in closed-form. A negative post-yield stiffness is treated in order to consider the P-delta effect. The double impulse is used as a substitute of the fling-step near-fault ground motion. Since only the free-vibration appears under such double impulse, the energy approach plays a critical role in the derivation of the closed-form solution of a complicated elastic-plastic response of structures with the P-delta effect. It is remarkable that no iteration is needed in the derivation of the closed-form dynamic stability criterion on the critical elastic-plastic response. It is shown via the closed-form expression that several patterns of unstable behaviors exist depending on the ratio of the input level of the double impulse to the structural strength and on the ratio of the negative post-yield stiffness to the initial elastic stiffness. The validity of the proposed dynamic stability criterion is investigated by the numerical response analysis for structures under double impulses with stable or unstable parameters. Furthermore the reliability of the proposed theory is tested through the comparison with the response analysis to the corresponding one-cycle sinusoidal input as a representative of the fling-step near-fault ground motion. The applicability of the proposed theory to actual recorded pulse-type ground motions is also discussed.
topic Earthquake Response
dynamic stability
Near-fault ground motion
Critical response
P-delta effect
Dynamic collapse
url http://journal.frontiersin.org/Journal/10.3389/fbuil.2016.00006/full
work_keys_str_mv AT kotaroekojima closedformdynamicstabilitycriterionforelasticplasticstructuresundernearfaultgroundmotions
AT izuruetakewaki closedformdynamicstabilitycriterionforelasticplasticstructuresundernearfaultgroundmotions
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