Effects of Wind Barriers on Wind Fields and Vehicle Stability on Bridges
Abstract
:1. Introduction
2. Test Model
2.1. Model Installation Platform
2.2. Wind Barrier Model
2.3. Vehicle Model
3. Test Setup
3.1. Test Conditions
3.2. Measurement Positions
4. Analysis of Test Results
4.1. Influence of Wind Barrier Parameters on the Average Wind Profile
- (1)
- The arrangement of the holes
- (2)
- The shape of the holes
4.2. Analysis of the Influence of the Wind Barrier Parameters on the Wind Choke Efficiency
4.3. Influence of the Wind Barrier Parameters on Driving Stability over Bridges
- (1)
- The efficiency of wind barriers with different arrangements
- (2)
- Shielding efficiency of wind barriers with different hole shapes
4.4. Comparison of Force Tests and Flow Field Tests Results
5. Conclusions
- (1)
- The wind speed, aerodynamic side force, and roll moment of a vehicle behind a wind barrier on a bridge increase as the incoming wind speed increases. The aerodynamic lift can increase by up to 100%. Under different wind speed and incoming flow conditions, the change in the equivalent wind speed reduction coefficient is consistent with that of the lift reduction coefficient. The speed measurement test can reflect the adverse effects of pressure difference changes at different heights of the bridge wind fields on the aerodynamic lift of vehicles with wind barriers.
- (2)
- The arrangement of wind barrier holes has a relatively small influence on the equivalent wind profile and vehicle six-component force measures. The equidistant grid arrangement is more effective at wind blocking than other arrangements.
- (3)
- From high to low, the wind-shielding efficiencies of wind barriers are: slabs with round holes, slabs with elliptical holes, and slabs with rectangular holes. Near the ground level, the barrier strip scheme performs significantly better than the other schemes. The opening form adopted by the current Chinese standard [25] has blind spots for blocking, and wind barriers can be further optimized.
- (4)
- It is more efficient to use the equivalent wind speed reduction coefficient as the evaluation index of the overall efficiency of a wind barrier.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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Name | Place of Production | Model | Range | Accuracy | |
---|---|---|---|---|---|
TFI Cobra Probe pulsation anemometer | Australia | Series 100 | v/2–100 m∙s−1 | ±0.5 m∙s−1 | |
ATI six-component balance | America | SI-130-10 | Fx,Fy/(±N) | 130 | ±0.025 N |
Fz/(±N) | 400 | ±0.05 N | |||
Tx,Ty/(±N∙m) | 10 | ±0.00125 N∙m | |||
Tz/(±N∙m) | 10 | ±0.00125 N∙m |
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Lin, X.; Lin, B.; Xia, D.; Lin, L.; Yuan, Z. Effects of Wind Barriers on Wind Fields and Vehicle Stability on Bridges. Atmosphere 2022, 13, 318. https://doi.org/10.3390/atmos13020318
Lin X, Lin B, Xia D, Lin L, Yuan Z. Effects of Wind Barriers on Wind Fields and Vehicle Stability on Bridges. Atmosphere. 2022; 13(2):318. https://doi.org/10.3390/atmos13020318
Chicago/Turabian StyleLin, Xiaobo, Bin Lin, Dandan Xia, Li Lin, and Zhiqun Yuan. 2022. "Effects of Wind Barriers on Wind Fields and Vehicle Stability on Bridges" Atmosphere 13, no. 2: 318. https://doi.org/10.3390/atmos13020318
APA StyleLin, X., Lin, B., Xia, D., Lin, L., & Yuan, Z. (2022). Effects of Wind Barriers on Wind Fields and Vehicle Stability on Bridges. Atmosphere, 13(2), 318. https://doi.org/10.3390/atmos13020318