Experimental Investigation on the Nonlinear Coupled Flutter Motion of a Typical Flat Closed-Box Bridge Deck
Abstract
:1. Introduction
2. Wind Tunnel Tests
2.1. Experimental Setup
2.2. Linear Aeroelastic Property
2.3. Bifurcation beyond Linear Flutter Boundary
2.4. Vibration Mode during Post-Critical LCO
2.5. Amplitude-Dependent Damping and Frequency
2.6. Coupling of Aerostatic Deformation and Large-Amplitude Vibration
3. Measurement of Nonlinear Aerodynamic Force
3.1. A Novel Measurement Technique
3.2. Aerodynamic Nonlinearity
3.3. Energy Evolving Mechanism
4. Discussion of the Results
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Notation
a constant related with initial condition | Reynolds number | ||
torsional, heaving amplitude | time | ||
, | flutter derivatives | starting time point | |
half width of a cross section | torsional period, | ||
distance of force sensors | wind velocity | ||
width/depth of a cross section | non-dimensional linear flutter boundary | ||
, | added damping coefficients | reduced wind velocity, | |
drag, lift and moment coefficients | , | heaving mode parameters | |
nth-order derivative of lift coefficient | , | torsional mode parameters | |
effective windward height | , | normalized mode parameter | |
distance of spring fixed points | work by self-excited moment | ||
frequencies in still air | work by self-excited lift | ||
torsional and heaving frequency | torsional angle, angular velocity and acceleration | ||
,, | aerodynamic drag force, lift force and torsional moment per unit length | initial wind angle of attack | |
heaving displacement, velocity and acceleration | static attack angle under flowing air conditions | ||
, | pure heaving displacement, heaving static deformation | , | torsional and heaving phase angle |
, | upper, lower heaving envelopes | heave-torsion coupling ratio | |
, | heaving, torsional root-mean-squares | mechanical damping ratios in still air | |
height of wind-tunnel test section | torsional damping ratio | ||
turbulence intensity | total damping ratio of the torsional mode | ||
effective mass moment of inertia | amplitude-dependent structural damping ratio | ||
, | elastic heaving, torsional stiffness | aerodynamic damping ratio induced by self-excited force | |
reduced frequency | air density | ||
length of middle ‘coat’ segment | torsional phase angle | ||
axial length of a sectional model | circular frequency of torsional mode | ||
inertial lift per unit length, | , | torsional, heaving circular frequencies in still air | |
self-excited lift and torsional moment | total drift of the heaving zero position | ||
effective mass per unit length | heaving deformation under small amplitude | ||
, | added mass, mass moment of inertia | heaving deformation under large amplitude | |
, | mass, moment of inertia of middle ‘coat’ | effective attack angle induced vibration | |
inertial moment per unit length | drift of static attack angle relative | ||
, | resultant torsional moment and lift | phase difference between heaving and torsional displacement | |
, | measured force signals | vector of torsional mode | |
, | non-wind-induced force per unit length | the real part of a complex value |
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#. | α0 | ξα0 | ξh0 | ft0 | fh0 | Jm | m |
---|---|---|---|---|---|---|---|
(°) | (%) | (%) | (Hz) | (Hz) | (kg·m2/m) | (kg/m) | |
A1 | 3 | 0.117 | 0.325 | 4.834 | 1.773 | 0.136 | 5.774 |
A2 | 3 | 0.178 | 0.490 | 4.827 | 1.789 | 0.139 | 5.774 |
B1 | 0 | 0.101 | 0.343 | 4.836 | 1.773 | 0.136 | 5.774 |
B2 | 0 | 0.209 | 0.521 | 4.822 | 1.788 | 0.138 | 5.774 |
C1 | −3 | 0.0930 | 0.566 | 4.820 | 1.774 | 0.136 | 5.774 |
C2 | −3 | 0.197 | 0.818 | 4.825 | 1.789 | 0.139 | 5.774 |
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Gao, G.; Zhu, L.; Wang, F.; Bai, H.; Hao, J. Experimental Investigation on the Nonlinear Coupled Flutter Motion of a Typical Flat Closed-Box Bridge Deck. Sensors 2020, 20, 568. https://doi.org/10.3390/s20020568
Gao G, Zhu L, Wang F, Bai H, Hao J. Experimental Investigation on the Nonlinear Coupled Flutter Motion of a Typical Flat Closed-Box Bridge Deck. Sensors. 2020; 20(2):568. https://doi.org/10.3390/s20020568
Chicago/Turabian StyleGao, Guangzhong, Ledong Zhu, Feng Wang, Hua Bai, and Jianming Hao. 2020. "Experimental Investigation on the Nonlinear Coupled Flutter Motion of a Typical Flat Closed-Box Bridge Deck" Sensors 20, no. 2: 568. https://doi.org/10.3390/s20020568
APA StyleGao, G., Zhu, L., Wang, F., Bai, H., & Hao, J. (2020). Experimental Investigation on the Nonlinear Coupled Flutter Motion of a Typical Flat Closed-Box Bridge Deck. Sensors, 20(2), 568. https://doi.org/10.3390/s20020568