Along-wind Lateral Acceleration and Inertia Wind Loads of Long-span Bridges
Liu Zhi
Abstract
Liu Zhi
Abstract
Total wind load on the deck of a bridge can be divided into three parts:mean wind load,background fluctuation wind load and inertia wind load.Wind induced acceleration of bridges can be used to calculate the inertial wind load.A new simple formula for calculating the wind induced lateral acceleration of bridges is introduced in the present paper,which is based on the general scheme of Scanlan's formulation, taking the aerodynamic admittance into consideration.A simple formula based on D'Alembert's Principle for computing wind induced inertia wind load of bridges is also developed herein.Parametric analyses are carried out to show the characteristic of wind induced acceleration and inertia wind load.The numerical examples at the end of the present paper illustrate the simplicity of application and the precision of the results involved by this method,highlighting its predisposition to rapid manual engineering calculations and standards applications.
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Total wind load on the deck of a bridge can be divided into three parts:mean wind load,background fluctuation wind load and inertia wind load.Wind induced acceleration of bridges can be used to calculate the inertial wind load.A new simple formula for calculating the wind induced lateral acceleration of bridges is introduced in the present paper,which is based on the general scheme of Scanlan's formulation, taking the aerodynamic admittance into consideration.A simple formula based on D'Alembert's Principle for computing wind induced inertia wind load of bridges is also developed herein.Parametric analyses are carried out to show the characteristic of wind induced acceleration and inertia wind load.The numerical examples at the end of the present paper illustrate the simplicity of application and the precision of the results involved by this method,highlighting its predisposition to rapid manual engineering calculations and standards applications.
Key concepts: Acceleration, Wind engineering, Inertia, Aerodynamics, Structural engineering, Aeroelasticity, Wind gradient, Wind profile power law