Dynamic response and reliability analysis of tall buildings subject to wind loading

This paper explores the wind stochastic field from a new viewpoint of stochastic Fourier spectrum (SFS). The basic random parameters of the wind stochastic field, the roughness length z 0 and the mean wind velocity at 10 m height U 10, as well as their probability density functions (PDF), are obtain...

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Published inJournal of wind engineering and industrial aerodynamics Vol. 96; no. 1; pp. 25 - 40
Main Authors Zhang, Lin-lin, Li, Jie, Peng, Yongbo
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier Ltd 2008
Elsevier Science
Subjects
Online AccessGet full text
ISSN0167-6105
1872-8197
DOI10.1016/j.jweia.2007.03.001

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Abstract This paper explores the wind stochastic field from a new viewpoint of stochastic Fourier spectrum (SFS). The basic random parameters of the wind stochastic field, the roughness length z 0 and the mean wind velocity at 10 m height U 10, as well as their probability density functions (PDF), are obtained. It provides opportunities to use probability density evolution method (PDEM), which had been proved to be of high accuracy and efficiency, in computing the dynamic response and reliability of tall buildings subject to the wind loading. Principals and corresponding numerical solving algorithm of the PDEM are first presented. Then, the adopted model of the wind stochastic field is described briefly. The simulation method of the fluctuating wind velocity based on the SFS is introduced. Finally, as an example of the application of the PDEM, a 20-storey frame subject to wind loading is investigated in detail. The responses, including the mean value and the standard deviation, and the reliabilities of the frame are evaluated by the PDEM. The results demonstrate that the PDEM is applicable and efficient in the dynamic response and reliability analysis of wind-excited tall building.
AbstractList This paper explores the wind stochastic field from a new viewpoint of stochastic Fourier spectrum (SFS). The basic random parameters of the wind stochastic field, the roughness length z 0 and the mean wind velocity at 10 m height U 10, as well as their probability density functions (PDF), are obtained. It provides opportunities to use probability density evolution method (PDEM), which had been proved to be of high accuracy and efficiency, in computing the dynamic response and reliability of tall buildings subject to the wind loading. Principals and corresponding numerical solving algorithm of the PDEM are first presented. Then, the adopted model of the wind stochastic field is described briefly. The simulation method of the fluctuating wind velocity based on the SFS is introduced. Finally, as an example of the application of the PDEM, a 20-storey frame subject to wind loading is investigated in detail. The responses, including the mean value and the standard deviation, and the reliabilities of the frame are evaluated by the PDEM. The results demonstrate that the PDEM is applicable and efficient in the dynamic response and reliability analysis of wind-excited tall building.
This paper explores the wind stochastic field from a new viewpoint of stochastic Fourier spectrum (SFS). The basic random parameters of the wind stochastic field, the roughness length z sub(0) and the mean wind velocity at 10m height U sub(1) sub(0), as well as their probability density functions (PDF), are obtained. It provides opportunities to use probability density evolution method (PDEM), which had been proved to be of high accuracy and efficiency, in computing the dynamic response and reliability of tall buildings subject to the wind loading. Principals and corresponding numerical solving algorithm of the PDEM are first presented. Then, the adopted model of the wind stochastic field is described briefly. The simulation method of the fluctuating wind velocity based on the SFS is introduced. Finally, as an example of the application of the PDEM, a 20-storey frame subject to wind loading is investigated in detail. The responses, including the mean value and the standard deviation, and the reliabilities of the frame are evaluated by the PDEM. The results demonstrate that the PDEM is applicable and efficient in the dynamic response and reliability analysis of wind-excited tall building.
Author Peng, Yongbo
Zhang, Lin-lin
Li, Jie
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  givenname: Yongbo
  surname: Peng
  fullname: Peng, Yongbo
  email: pengyb2002@126.com
  organization: Department of Building Engineering, School of Civil Engineering, Tongji University, Siping Road 1239, Shanghai 200092, PR China
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Issue 1
Keywords Dynamic response
Wind loading
Stochastic Fourier spectrum
Reliability
Probability density evolution
Stochastic model
Aerodynamics
Modeling
Probability density
Example
Numerical simulation
Wind load
High rise building
Language English
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Snippet This paper explores the wind stochastic field from a new viewpoint of stochastic Fourier spectrum (SFS). The basic random parameters of the wind stochastic...
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SubjectTerms Applied sciences
Buildings
Buildings. Public works
Climatology and bioclimatics for buildings
Computation methods. Tables. Charts
Dynamic response
Exact sciences and technology
High rise building
Probability density evolution
Reliability
Stochastic Fourier spectrum
Structural analysis. Stresses
Types of buildings
Wind loading
Title Dynamic response and reliability analysis of tall buildings subject to wind loading
URI https://dx.doi.org/10.1016/j.jweia.2007.03.001
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