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首页> 外文期刊>Earthquake Engineering & Structural Dynamics >Accurate real-time hybrid earthquake simulations on large-scale MDOF steel structure with nonlinear viscous dampers
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Accurate real-time hybrid earthquake simulations on large-scale MDOF steel structure with nonlinear viscous dampers

机译:带有非线性粘性阻尼器的大型MDOF钢结构的精确实时混合地震模拟

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摘要

This paper presents real-time hybrid earthquake simulation (RTHS) on a large-scale steel structure with nonlinear viscous dampers. The test structure includes a three-story, single-bay moment-resisting frame (MRF), a three-story, single-bay frame with a nonlinear viscous damper and associated bracing in each story (called damped braced frame (DBF)), and gravity load system with associated seismic mass and gravity loads. To achieve the accurate RTHS results presented in this paper, several factors were considered comprehensively: (1) different arrangements of substructures for the RTHS; (2) dynamic characteristics of the test setup; (3) accurate integration of the equations of motion; (4) continuous movement of the servo-controlled hydraulic actuators; (5) appropriate feedback signals to control the RTHS; and (6) adaptive compensation for potential control errors. Unlike most previous RTHS studies, where the actuator stroke was used as the feedback to control the RTHS, the present study uses the measured displacements of the experimental substructure as the feedback for the RTHS, to enable accurate displacements to be imposed on the experimental substructure. This improvement in approach was needed because of compliance and other dynamic characteristics of the test setup, which will be present in most large-scale RTHS. RTHS with ground motions at the design basis earthquake and maximum considered earthquake levels were successfully performed, resulting in significant nonlinear response of the test structure, which makes accurate RTHS more challenging. Two phases of RTHS were conducted: in the first phase, the DBF is the experimental substructure, and in the second phase, the DBF together with the MRF is the experimental substructure. The results from the two phases of RTHS are presented and compared with numerical simulation results. An evaluation of the results shows that the RTHS approach used in this study provides a realistic and accurate simulation of the seismic response of a large-scale structure with rate-dependent energy dissipating devices. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:本文提出了具有非线性粘性阻尼器的大型钢结构的实时混合地震模拟(RTHS)。测试结构包括一个三层的单机架抗弯框架(MRF),一个三层的带有非线性粘性阻尼器的单机架框架以及每个楼层中的相关支撑(称为阻尼支撑框架(DBF)),和重力载荷系统以及相关的地震质量和重力载荷。为了获得准确的RTHS结果,综合考虑了以下几个因素:(1)RTHS子结构的不同排列; (2)测试装置的动态特性; (3)运动方程的精确积分; (4)伺服控制的液压执行器连续运动; (5)适当的反馈信号来控制RTHS; (6)针对潜在控制误差的自适应补偿。与大多数以前的RTHS研究不同,在该研究中,执行器行程被用作控制RTHS的反馈,本研究使用实验性子结构的测得位移作为RTHS的反馈,从而能够将精确的位移施加到实验性子结构上。由于合规性和测试设置的其他动态特性,因此需要方法上的改进,这将在大多数大规模RTHS中出现。在设计基准地震和考虑的最大地震水平下成功进行了具有地面运动的RTHS,导致测试结构具有明显的非线性响应,这使得准确的RTHS更具挑战性。 RTHS分两个阶段进行:在第一阶段,DBF是实验的子结构,在第二阶段,DBF和MRF一起是实验的子结构。介绍了RTHS的两个阶段的结果,并将其与数值模拟结果进行了比较。对结果的评估表明,本研究中使用的RTHS方法为具有速率依赖型消能装置的大型结构的地震响应提供了真实而准确的模拟。版权所有(c)2015 John Wiley&Sons,Ltd.

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