Journal of Structural Engineering · 2019 · 32 citations · 27 references
EngineeringStructural ApplicationStructural PerformanceAnalytical Pushover MethodStructural SystemStructural EngineeringBridge DesignPrecast PiersCyclic Loading TestEarthquake EngineeringReinforced ConcreteStructural Health MonitoringPrecast PierHigh-strength BarsConcrete StructuresCivil EngineeringTotal Energy DissipationStructural AnalysisStructural MechanicsConstruction Engineering
Compared to cast-in-place bridge piers, precast piers can accelerate bridge construction, but their use in seismic systems is challenging. High-strength bars (≥500 MPa) incorporated with precast piers can further expedite joint connection through reducing the quantity of conventional bars. Four large-scale pier column specimens with either high-strength (HRB600) or conventional (HRB400) bars were experimentally studied under cyclic loading. Test results showed that the precast pier with high-strength rebar shows greater lateral strength, self-centering capacity, and total energy dissipation (ED) than the one with conventional rebar. An analytical method was proposed to accurately predict the monotonic pushover behavior. The derivation of the moment-opening angle (M-θ) relationship was presented, considering the slippage between the ED bar and cementitious grout. Furthermore, a fiber-element model was established within the framework of OpenSees. Through modifying the constitutive law of unbonded ED bars near the joint interface, the bond-slip behavior can be realistically simulated. Hysteretic behaviors of precast segmental piers can be accurately captured in terms of maximum lateral force, residual drift, and energy dissipation, among others. The research can promote the application of high-strength reinforcements in the precast segmental pier.
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Alessandro Palermo, Stefano Pampanin, D. Marriott · Journal of Structural Engineering · 2007 · 301 citations
Engineering, Posttensioned Dissipating Connections, Passive Energy Dissipation +18
Yu‐Chen Ou, M.Y. Tsai, Kuo‐Chun Chang et al. · Earthquake Engineering & Structural Dynamics · 2010 · 225 citations