Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect

Considering precisely the second-order deformation of external tendon, the analytical solution of natural frequencies of 2-span externally prestressed continuous beam was obtained by the energy method. The effect of external prestress compression softening is between the zero effect of unbonded pres...

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Main Author: De-Ping Fang
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2020/4397262
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spelling doaj-9d2e4d46a2174228827afaa49770dd632021-01-11T02:22:15ZengHindawi LimitedMathematical Problems in Engineering1563-51472020-01-01202010.1155/2020/4397262Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order EffectDe-Ping Fang0College of Civil EngineeringConsidering precisely the second-order deformation of external tendon, the analytical solution of natural frequencies of 2-span externally prestressed continuous beam was obtained by the energy method. The effect of external prestress compression softening is between the zero effect of unbonded prestress compression and the effect of axial outside compression and is determined by the influence coefficient ranging within 0∼1. The influence coefficient is mainly related to the number of deviators and slightly related to tendon layout. Without deviator, the influence coefficient is 1, and the effect of external prestress compression softening is the same as the effect of axial outside compression. As the number of deviators increases, the influence coefficient gradually decreases from 1 to near 0, and the effect of external prestress compression softening is close to zero effect of unbonded prestress compression. With one or more deviators, the effect of external prestress compression softening is negligible. As the eccentricity and area of tendon increase, only the first symmetric frequency increases obviously, and other frequencies almost remain unchanged. The influence of tendon layout linear transformation on the frequency is negligible.http://dx.doi.org/10.1155/2020/4397262
collection DOAJ
language English
format Article
sources DOAJ
author De-Ping Fang
spellingShingle De-Ping Fang
Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect
Mathematical Problems in Engineering
author_facet De-Ping Fang
author_sort De-Ping Fang
title Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect
title_short Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect
title_full Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect
title_fullStr Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect
title_full_unstemmed Dynamic Behavior of Externally Prestressed Continuous Beam considering Second-Order Effect
title_sort dynamic behavior of externally prestressed continuous beam considering second-order effect
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1563-5147
publishDate 2020-01-01
description Considering precisely the second-order deformation of external tendon, the analytical solution of natural frequencies of 2-span externally prestressed continuous beam was obtained by the energy method. The effect of external prestress compression softening is between the zero effect of unbonded prestress compression and the effect of axial outside compression and is determined by the influence coefficient ranging within 0∼1. The influence coefficient is mainly related to the number of deviators and slightly related to tendon layout. Without deviator, the influence coefficient is 1, and the effect of external prestress compression softening is the same as the effect of axial outside compression. As the number of deviators increases, the influence coefficient gradually decreases from 1 to near 0, and the effect of external prestress compression softening is close to zero effect of unbonded prestress compression. With one or more deviators, the effect of external prestress compression softening is negligible. As the eccentricity and area of tendon increase, only the first symmetric frequency increases obviously, and other frequencies almost remain unchanged. The influence of tendon layout linear transformation on the frequency is negligible.
url http://dx.doi.org/10.1155/2020/4397262
work_keys_str_mv AT depingfang dynamicbehaviorofexternallyprestressedcontinuousbeamconsideringsecondordereffect
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