Javascript must be enabled to continue!
Suppression of tower-wake-induced vibrations of suspenders through installing small-scale wind turbines on bridge towers
View through CrossRef
Flexible suspenders of long-span suspension bridges are prone to wind-induced vibrations. Different from the vibration caused by the wake of the suspender itself, longer suspenders nearby the bridge tower may suffer from the tower-wake-induced vibration (TWIV). To suppress the TWIV of suspenders, this study attempts to improve the flow field around the bridge tower from a new perspective. After understanding the separated flow characteristics for bridge towers with different corners, a pair of small-scale vertical-axis wind turbines (VAWTs) was installed on the tower column considering different positions. The changes in separated flow characteristics were discussed. Subsequently, different tip speed ratios of the VAWTs were simulated, and the aerodynamic performance of nearby suspenders was studied. The results showed that the separated flow characteristics around the bridge tower are closely related to the corner shape. For the bridge tower with circular corners, the installation of VAWTs on the leeward corners effectively weakens the vortices shed from the tower column and improves the wake flow field. Thus, the fluctuation of aerodynamic forces of the nearby suspenders significantly decreases, reducing the possibility of TWIVs. On the other hand, the maximum power coefficient of the VAWTs in the tower wake is also increased.
Title: Suppression of tower-wake-induced vibrations of suspenders through installing small-scale wind turbines on bridge towers
Description:
Flexible suspenders of long-span suspension bridges are prone to wind-induced vibrations.
Different from the vibration caused by the wake of the suspender itself, longer suspenders nearby the bridge tower may suffer from the tower-wake-induced vibration (TWIV).
To suppress the TWIV of suspenders, this study attempts to improve the flow field around the bridge tower from a new perspective.
After understanding the separated flow characteristics for bridge towers with different corners, a pair of small-scale vertical-axis wind turbines (VAWTs) was installed on the tower column considering different positions.
The changes in separated flow characteristics were discussed.
Subsequently, different tip speed ratios of the VAWTs were simulated, and the aerodynamic performance of nearby suspenders was studied.
The results showed that the separated flow characteristics around the bridge tower are closely related to the corner shape.
For the bridge tower with circular corners, the installation of VAWTs on the leeward corners effectively weakens the vortices shed from the tower column and improves the wake flow field.
Thus, the fluctuation of aerodynamic forces of the nearby suspenders significantly decreases, reducing the possibility of TWIVs.
On the other hand, the maximum power coefficient of the VAWTs in the tower wake is also increased.
Related Results
Wake-induced vibration of ultra-long suspenders adjacent to bridge tower
Wake-induced vibration of ultra-long suspenders adjacent to bridge tower
The tower wake usually induces large-amplitude vibrations in adjacent suspenders of a long-span suspension bridge. In order to interpret the underlying mechanism of the significant...
Analysis of Senegal Type Vertical Axis Wind Turbines Arrangement in Wind Farm
Analysis of Senegal Type Vertical Axis Wind Turbines Arrangement in Wind Farm
Background:
In a wind farm, the wind speed of the downstream wind turbine will be
lower than the wind speed of the upstream wind turbine due to the influence of the wake. Therefore...
Wake Alleviating Devices for Offshore Wind Turbines
Wake Alleviating Devices for Offshore Wind Turbines
The wake behind an offshore wind turbine can persist for several turbine diameters, so decreasing the space between wind turbines in an array leads to strong wake-turbine interacti...
VolturnUS 1:8-Scale FRP Floating Wind Turbine Tower: Analysis, Design, Testing and Performance
VolturnUS 1:8-Scale FRP Floating Wind Turbine Tower: Analysis, Design, Testing and Performance
In May of 2013 the VolturnUS 1:8 floating semi-submersible wind turbine was successfully deployed off the coast of Castine, Maine, making the unit the first grid connected offshore...
Aerodynamics of Clustered Wind Lens Turbines
Aerodynamics of Clustered Wind Lens Turbines
Wind lens turbines, developed by Kyushu University have increased performance due to the duct surrounding the rotor [1]. A Multi rotor system is a promising concept to upscale wind...
Wind lidars within Dutch offshore wind farms
Wind lidars within Dutch offshore wind farms
The growing number of wind farms in the Dutch part of the North Sea [1] offers the necessity, as well as the opportunity, to measure the meteorological conditions at these location...
A methodology to revise wind speed maps considering the wake effect: An assessment of wind turbines in the western region of Türkiye
A methodology to revise wind speed maps considering the wake effect: An assessment of wind turbines in the western region of Türkiye
Wind resource maps used in turbine siting and regional energy planning are typically derived from reanalysis or mesoscale modelling and do not account for wake-induced wind speed d...
Impact of rotor solidity and blade number on wake characteristics of vertical-axis wind turbines
Impact of rotor solidity and blade number on wake characteristics of vertical-axis wind turbines
Wake interference between wind turbines is a major concern in wind farms and is primarily driven by the wake of upstream turbines. For vertical-axis wind turbines (VAWTs), although...

