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Behavior of Post-Tensioning Strand Systems Subjected to Inelastic Cyclic Loading

机译:受非弹性循环载荷作用的张拉后钢绞线系统的行为

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Post-tensioning (PT) strands have been employed in a number of self-centering seismic force-resisting systems as part of the restoring force mechanism that eliminates residual building drifts following seismic loading. Unbonded PT strand systems are particularly well-suited for providing elastic restoring force because they possess large elastic strain capacity. Although typically designed to stay elastic during design basis earthquake events, strands may experience inelastic cyclic loading during extreme earthquakes. Furthermore, the yielding and fracture behavior of PT strand systems is central to the collapse behavior of self-centering systems. A testing program was conducted to characterize the cyclic inelastic behavior of monostrand anchorage systems as they might be applied in self-centering seismic force-resisting systems. The experimental program included more than 50 tests with variations in testing protocol (both monotonic and cyclic tests to failure), strand manufacturer, anchorage manufacturer, single-use versus multiple-use anchorage systems, and initial post-tensioning strand stress. Characteristics of the response that were investigated include seating losses, deformation capacity prior to initial wire fracture, additional deformation capacity after initial wire fracture, and aspects of the load-deformation behavior. For the tested monostrand anchorage systems using typical industry barrel and wedge anchorage systems, the mean first wire fracture strain was found to be 2.3% and 2.7% for multiple-use and single-use chucks, respectively, and two standard deviations below the mean (representing a relatively low probability of wire fracture) was 1.2% and 1.3%, respectively. Furthermore, these monostrand anchorage systems were shown capable of an average of 85% additional elongation after first wire fracture. It was concluded that the tested monostrand anchorage systems, because of their high strength, large elastic deformation capacity, ductility prior to wire fracture, and additional postwire fracture deformation capability, are well-suited for self-centering seismic force-resisting systems.
机译:后张拉(PT)股线已在许多自定心地震力抵抗系统中用作恢复力机制的一部分,该机制消除了地震荷载后的残余建筑物漂移。未粘合的PT股线系统具有较大的弹性应变能力,因此特别适合提供弹性回复力。尽管通常设计为在设计基准地震事件期间保持弹性,但股线在极端地震期间可能会经历非弹性的循环载荷。此外,PT股系统的屈服和断裂行为对于自定心系统的坍塌行为至关重要。进行了测试程序,以表征单链锚固系统的循环非弹性行为,因为它们可能会应用于自对中抗震力系统。该实验计划包括50多种测试,测试协议各不相同(对失效进行单调和循环测试),钢绞线制造商,锚固制造商,单次使用与多次使用的锚固系统以及初始张紧后的钢绞线应力。所研究的响应特征包括座损,初始钢丝断裂前的变形能力,初始钢丝断裂后的附加变形能力以及载荷-变形行为的各个方面。对于使用典型的工业桶和楔形锚固系统进行测试的单股锚固系统,发现多次使用和一次性使用的卡盘的平均第一根钢丝断裂应变分别为2.3%和2.7%,并且低于平均值的两个标准偏差(代表电线断裂概率相对较低)分别为1.2%和1.3%。此外,这些单链锚固系统显示出能够在第一次钢丝断裂后平均平均增加85%的伸长率。结论是,由于测试的单股锚固系统具有高强度,大的弹性变形能力,钢丝断裂前的延展性以及额外的钢丝断裂后变形能力,因此非常适合于自定心地震力系统。

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