Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

An Experimental Study of High-Damping Rubber Bearings (HDRB) and Their Implications for the Seismic Performance of Cable-Stayed Bridges

View through CrossRef
This article investigates the efficiency of high damping rubber bearings (HDRB), which are made of special rubber with excellent damping attributes and layers of steel. HDRB isolators have excellent flexibility, vibration reduction ability, and high restoring ability for controlling the seismic response of long-span cable-stayed bridge systems under near-fault ground motions. The seismic isolation of cable-stayed bridges is achieved using high-damping rubber bearings (HDRB). High-damping rubber bearings have excellent seismic effects during earthquakes. The elastic stiffness of the bearing depends on the degree of deformation. When the deformation is small, the stiffness will be large. Therefore, compressive stiffness is one of the key parameters in the design of seismic isolation bearings for cable-stayed bridges. For this reason, predicting the behavior of high-damping rubber bearings under compressive loads is highly important for their design. Therefore, the experimental verification of high-damping rubber bearings (HDRB) for compressive loading was tested according to the standard assumptions in STN EN 1337-3. Firstly, periodic vertical compression tests are performed, and the high damping rubber (HDRB) capabilities and energy dissipation are analysed, taking into account the effect of vertical compression and loading frequency. Secondly, a corrected calculation of the vertical stiffness for high-damping rubber bearings is proposed based on experimental data to provide a more accurate and realistic tool for measuring the vertical mechanical properties of rubber bearings. The test results prove that HDRB has the most advanced performance. For the fatigue property, the hysteresis curves of the HDRB plump both vertically, which provides a good energy dissipation effect. DOI: https://doi.org/10.52783/pst.431
Title: An Experimental Study of High-Damping Rubber Bearings (HDRB) and Their Implications for the Seismic Performance of Cable-Stayed Bridges
Description:
This article investigates the efficiency of high damping rubber bearings (HDRB), which are made of special rubber with excellent damping attributes and layers of steel.
HDRB isolators have excellent flexibility, vibration reduction ability, and high restoring ability for controlling the seismic response of long-span cable-stayed bridge systems under near-fault ground motions.
The seismic isolation of cable-stayed bridges is achieved using high-damping rubber bearings (HDRB).
High-damping rubber bearings have excellent seismic effects during earthquakes.
The elastic stiffness of the bearing depends on the degree of deformation.
When the deformation is small, the stiffness will be large.
Therefore, compressive stiffness is one of the key parameters in the design of seismic isolation bearings for cable-stayed bridges.
For this reason, predicting the behavior of high-damping rubber bearings under compressive loads is highly important for their design.
Therefore, the experimental verification of high-damping rubber bearings (HDRB) for compressive loading was tested according to the standard assumptions in STN EN 1337-3.
Firstly, periodic vertical compression tests are performed, and the high damping rubber (HDRB) capabilities and energy dissipation are analysed, taking into account the effect of vertical compression and loading frequency.
Secondly, a corrected calculation of the vertical stiffness for high-damping rubber bearings is proposed based on experimental data to provide a more accurate and realistic tool for measuring the vertical mechanical properties of rubber bearings.
The test results prove that HDRB has the most advanced performance.
For the fatigue property, the hysteresis curves of the HDRB plump both vertically, which provides a good energy dissipation effect.
DOI: https://doi.
org/10.
52783/pst.
431.

Related Results

SEISMIC VULNERABILITY ANALYSIS OF CABLE-STAYED BRIDGE DURING ROTATION CONSTRUCTION
SEISMIC VULNERABILITY ANALYSIS OF CABLE-STAYED BRIDGE DURING ROTATION CONSTRUCTION
          Due to the swivel construction, the structural redundancy of cable-stayed bridge is reduced, and its seismic vulnerability is significantly higher than that of non-swirli...
Recent Patents on Cageless Rolling Bearings
Recent Patents on Cageless Rolling Bearings
Background: Rolling bearings are widely used as core components in mechanical equipment. Most bearings are equipped with a cage. However, when bearings work under conditions of lar...
Aerodynamic interference between stay cables and suspenders of a long-span hybrid cable-stayed suspension bridge
Aerodynamic interference between stay cables and suspenders of a long-span hybrid cable-stayed suspension bridge
Salient aerodynamic interference commonly exists between stay cables and suspenders in newly adopted hybrid cable-stayed suspension bridges and contributes to the wind-induced vibr...
Construction control of cable-stayed bridges
Construction control of cable-stayed bridges
This work presents a study of the simulation of cable-stayed bridges built on temporary supports focused on their response during construction and in service. To simulate the behav...
Enhancing vibration control in stay cables: a modified damping formulation with NS-HDR damper
Enhancing vibration control in stay cables: a modified damping formulation with NS-HDR damper
Cables in cable-stayed bridges have low intrinsic damping, and dampers are often used as a countermeasure for cable vibration control. This paper presents an innovative asymptotic ...
Long-Term Monitoring of Cable Tension Force in Cable-stayed Bridges using the Vibration Method. The Case Study of Binh Bridge, Vietnam
Long-Term Monitoring of Cable Tension Force in Cable-stayed Bridges using the Vibration Method. The Case Study of Binh Bridge, Vietnam
The tension force of a cable is an important parameter used to ensure the stable and safe working of cable-stayed bridges. This parameter needs to be strictly controlled throughout...

Back to Top