• 제목/요약/키워드: Base-Isolated Systems

검색결과 94건 처리시간 0.029초

최상층면진시스템을 활용한 고층건물의 진동제어 (Vibration Control of High-rise Building Structures using Top-story Isolation Systems)

  • 김태호;김현수
    • 한국공간구조학회논문집
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    • 제8권5호
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    • pp.75-82
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    • 2008
  • 본 연구에서는 최상층면진시스템을 적용한 고층건물의 진동제어 가능성을 검토하여 보았다. 이를 위하여 20층 및 50층 건물을 예제구조물로 선택하였고 El Centro 남북방향 성분을 지진하중으로 사용하여 수치해석을 수행하였다. 그리고 인공풍하중을 사용하여 풍하중에 대한 예제구조물의 사용성을 검토하였다. 면진되는 상부층의 수를 변화시켜가면서 구조물의 응답을 평가함으로써 최적의 면진질량에 대해서 검토하였다. 또한 상부층면진시스템의 고유진동주기 변화에 따른 진동제어성능의 변화를 고정기초구조물과 비교하여 검토하였다. 해석결과 최상층면진시스템은 동조질량감쇠기로서 활용될 수 있으며 풍하중 및 지진하중에 대한 고층건물의 동적응답을 효과적으로 저감시킬 수 있었다.

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자력을 이용한 마찰진자 베어링의 면진성능 (Base Isolation Performance of Friction Pendulum System using Magnetic Force)

  • 황인호;신호재;이종세
    • 한국지진공학회논문집
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    • 제12권4호
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    • pp.55-61
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    • 2008
  • 면진장치 중에서 최근 많은 연구가 이루어지고 있는 마찰진자 베어링은 적절한 마찰력을 얻기 위해 PTFE(Polytetrafluoroethylene) 마찰재가 이용되고 있다. 본 연구에서는 자력의 반발력을 이용해 재료의 성질을 대체하여 면진성능을 향상 시킬 수 있는 자력을 이용한 마찰진자 베어링을 제안하였다. 제안된 시스템은 자력에 의한 반발력이 수직력을 줄여줌으로써 재료에 의한 마찰계수의 영향을 줄일 수 있음을 가정하였다. 또한 자력의 영향을 가정하기 위해서 간단한 실험을 구성해 보았으며, 자력이 작용을 할 때 마찰계수($\mu$)를 약 20%정도 줄여줄 수 있었다. 실험 결과를 적용한 수치해석을 통해 다양한 지진에 대해서 기존의 마찰진자 베어링보다 향상된 성능을 보여주었고, 특히 지진으로 인해 구조물의 파괴에 작용하는 주된 요소인 최상층의 가속도와 구조물의 상대변위를 비교함으로써 제안된 시스템이 면진장치로서의 기능을 가지고 있음을 확인하였다. 자력을 이용하여 기존의 PTFE 마찰재를 대체할 수 있는 자력을 이용한 마찰진자 베어링의 구조적 설계를 할 수 있다면 마찰진자 베어링의 문제점을 보완한 기초격리장치로서 적용될 수 있을 것으로 사료된다.

지진격리된 원전배관의 지진취약도 분석 (Seismic Fragility Analysis of Base Isolated NPP Piping Systems)

  • 전법규;최형석;함대기;김남식
    • 한국지진공학회논문집
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    • 제19권1호
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    • pp.29-36
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    • 2015
  • Base isolation is considered as a seismic protective system in the design of next generation Nuclear Power Plants (NPPs). If seismic isolation devices are installed in nuclear power plants then the safety under a seismic load of the power plant may be improved. However, with respect to some equipment, seismic risk may increase because displacement may become greater than before the installation of a seismic isolation device. Therefore, it is estimated to be necessary to select equipment in which the seismic risk increases due to an increase in the displacement by the installation of a seismic isolation device, and to perform research on the seismic performance of each piece of equipment. In this study, modified NRC-BNL benchmark models were used for seismic analysis. The numerical models include representations of isolation devices. In order to validate the numerical piping system model and to define the failure mode, a quasi-static loading test was conducted on the piping components before the analysis procedures. The fragility analysis was performed by using the results of the inelastic seismic response analysis. Inelastic seismic response analysis was carried out by using the shell finite element model of a piping system considering internal pressure. The implicit method was used for the direct integration time history analysis. In addition, the collapse load point was used for the failure mode for the fragility analysis.

Virtual Instrumentation 플랫폼 기반 무인 자율 로터 항법시스템 개발 및 비행시험 (Development and Flight Test of Unmanned Autonomous Rotor Navigation System Based on Virtual Instrumentation Platform)

  • 이병진;박상준;이승준;김창주;이영재;성상경
    • 제어로봇시스템학회논문지
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    • 제17권8호
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    • pp.833-842
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    • 2011
  • The objectives of this research are development of guidance, navigation and control system for RUAV on virtual instrumentation and real flight test. For this research, the system is divided to DAQ (data acquisition) section, actuator section and controller section. And the hardware and software on each sections are realized on LabVIEW base. Waypoint guidance and control of auto flight are realized using PID gain tuning and waypoint vector tracking guidance algorism. For safe flight test, auto/manual switching module isolated from FCS (Flight Control System) is developed. By using the switch module, swift mode change was achieved during emergency flight case. Consequently, a meter level error of flight performance is achieved.

Hysteretic model of isolator gap damper system and its equivalent linearization for random earthquake response analysis

  • Zhang, Hongmei;Gu, Chen
    • Smart Structures and Systems
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    • 제29권3호
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    • pp.485-498
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    • 2022
  • In near-fault earthquake prone areas, the velocity pulse-like seismic waves often results in excessive horizontal displacement for structures, which may result in severe structural failure during large or near-fault earthquakes. The recently developed isolator-gap damper (IGD) systems provide a solution for the large horizontal displacement of long period base-isolated structures. However, the hysteresis characteristics of the IGD system are significantly different from the traditional hysteretic behavior. At present, the hysteretic behavior is difficult to be reflected in the structural analysis and performance evaluation especially under random earthquake excitations for lacking of effective analysis models which prevent the application of this kind of IGD system. In this paper, we propose a mathematical hysteretic model for the IGD system that presents its nonlinear hysteretic characteristics. The equivalent linearization is conducted on this nonlinear model, which requires the variances of the IGD responses. The covariance matrix for the responses of the structure and the IGD system is obtained for random earthquake excitations represented by the Kanai-Tajimi spectrum by solving the Lyapunov equation. The responses obtained by the equivalent linearization are verified in comparison with the nonlinear responses by the Monte Carlo simulation (MCS) analysis for random earthquake excitations.

Potentiality of Using Vertical and Three-Dimensional Isolation Systems in Nuclear Structures

  • Zhou, Zhiguang;Wong, Jenna;Mahin, Stephen
    • Nuclear Engineering and Technology
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    • 제48권5호
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    • pp.1237-1251
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    • 2016
  • Although the horizontal component of an earthquake response can be significantly reduced through the use of conventional seismic isolators, the vertical component of excitation is still transmitted directly into the structure. Records from instrumented structures, and some recent tests and analyses have actually seen increases in vertical responses in base isolated structures under the combined effects of horizontal and vertical ground motions. This issue becomes a great concern to facilities such as a Nuclear Power Plants (NPP), with specialized equipment and machinery that is not only expensive, but critical to safe operation. As such, there is considerable interest worldwide in vertical and three-dimensional (3D) isolation systems. This paper examines several vertical and 3D isolation systems that have been proposed and their potential application to modern nuclear facilities. In particular, a series of case study analyses of a modern NPP model are performed to examine the benefits and challenges associated with 3D isolation compared with horizontal isolation. It was found that compared with the general horizontal isolators, isolators that have vertical frequencies of no more than 3 Hz can effectively reduce the vertical in-structure responses for the studied NPP model. Among the studied cases, the case that has a vertical isolation frequency of 3 Hz is the one that can keep the horizontal period of the isolators as the first period while having the most flexible vertical isolator properties. When the vertical frequency of isolators reduces to 1 Hz, the rocking effect is obvious and rocking restraining devices are necessary.

Vertical equipment isolation using piezoelectric inertial-type isolation system

  • Lu, Lyan-Ywan;Lin, Ging-Long;Chen, Yi-Siang;Hsiao, Kun-An
    • Smart Structures and Systems
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    • 제26권2호
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    • pp.195-211
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    • 2020
  • Among anti-seismic technologies, base isolation is a very effective means of mitigating damage to structural and nonstructural components, such as equipment. However, most seismic isolation systems are designed for mitigating only horizontal seismic responses because the realization of a vertical isolation system (VIS) is difficult. The difficulty is primarily due to conflicting isolation stiffness demands in the static and dynamic states for a VIS, which requires sufficient rigidity to support the self-weight of the isolated object in the static state, but sufficient flexibility to lengthen the isolation period and uncouple the ground motion in the dynamic state. To overcome this problem, a semi-active VIS, called the piezoelectric inertia-type vertical isolation system (PIVIS), is proposed in this study. PIVIS is composed of a piezoelectric friction damper (PFD) and a leverage mechanism with a counterweight. The counterweight provides an uplifting force in the static state and an extra inertial force in the dynamic state; therefore, the effective vertical stiffness of PIVIS is higher in the static state and lower in the dynamic state. The PFD provides a controllable friction force for PIVIS to further prevent its excessive displacement. For experimental verification, a shaking table test was conducted on a prototype PIVIS controlled by a simple controller. The experimental results well agree with the theoretical results. To further investigate the isolation performance of PIVIS, the seismic responses of PIVIS were simulated numerically by considering 14 vertical ground motions with different characteristics. The responses of PIVIS were compared with those of a traditional VIS and a passive system (PIVIS without control). The numerical results demonstrate that compared with the traditional and passive systems, PIVIS can effectively suppress isolation displacement in all kinds of earthquake with various peak ground accelerations and frequency content while maintaining its isolation efficiency. The proposed system is particularly effective for near-fault earthquakes with long-period components, for which it prevents resonant-like motion.

스마트 최상층 면진시스템의 진동제어 성능평가 (Performance Evaluation of Vibration Control of a Smart Top-Story Isolation System)

  • 강주원;김태호;김현수
    • 한국공간구조학회논문집
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    • 제10권3호
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    • pp.49-56
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    • 2010
  • 본 연구에서는 스마트 최상층 면진시스템을 적용한 고층건물의 풍응답 제어성능을 검토해보았다. 이를 위하여 77층 초고층 건물을 예제구조물로 선택하였고 풍동실험을 통해서 얻은 풍하중을 사용하여 수치해석을 수행하였다. 예제구조물의 최상층은 FPS 및 MR 감쇠기로 구성된 스마트 면진시스템을 이용하여 주구조물과 분리된다. 주구조물의 동적응답을 저감시키는 것이 스마트 최상층 면진시스템의 가장 중요한 목표이지만 면진된 최상층의 과도한 응답은 구조물을 불안정하게 만들 수 있다. 따라서, 본 연구에서는 면진된 최상층과 주구조물을 효과적으로 제어하기 위하여 스카이훅제어기를 제어알고리즘으로 사용하였다. 제안된 스마트 최상층 면진시스템의 제어성능을 검토하기 위하여 일반적인 수동 최상층 면진시스템의 제어성능과 비교하였다. 수치해석결과 제안된 스마트 최상층 면진시스템을 이용하면 일반적인 수동 최상층 면진시스템에 비해서 면진층의 변위를 효과적으로 줄이면서도 구조물의 응답을 저감시킬 수 있음을 확인할 수 있었다.

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마찰해석모델에 따른 PVDF/MgO 마찰재 적용 면진 장치가 설치된 교량의 성능 비교 분석 (Performance Comparison Analysis of a Bridge Installed with Anti-seismic Devices using PVDF/MgO Friction Material According to Friction Analysis Models)

  • 박혜리;김성조;한동석
    • 한국전산구조공학회논문집
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    • 제36권2호
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    • pp.105-112
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    • 2023
  • 본 연구에서는 마찰모델에 따라 다른 마찰진자시스템(FPS)이 적용된 교량의 성능을 비교·분석하기 위해 구조해석을 수행하였다. 마찰해석모델 별 성능을 분석하기 위해 PVDF/MgO 마찰재의 마찰계수를 활용하여 쿨롱 마찰모델과 속도 의존 마찰모델을 구축했다. 쿨롱 마찰모델은 마찰속도와 관계없이 단일 마찰계수를 사용하며, 속도 의존 마찰모델은 마찰속도에 따른 마찰계수의 변화를 반영하는 마찰모델이다. 지진해석으로 비선형 시간 이력 해석과 지진 취약도 해석을 수행하여 구조물의 응답을 확인하였다. 마찰모델에 따른 바닥판과 교각의 지진 응답을 활용해 면진된 교량의 성능을 분석하였으며, 면진된 교량의 성능을 효과적으로 평가할 수 있는 마찰모델을 분석했다.

Damage identification of substructure for local health monitoring

  • Huang, Hongwei;Yang, Jann N.
    • Smart Structures and Systems
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    • 제4권6호
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    • pp.795-807
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    • 2008
  • A challenging problem in structural damage detection based on vibration data is the requirement of a large number of sensors and the numerical difficulty in obtaining reasonably accurate results when the system is large. To address this issue, the substructure identification approach may be used. Due to practical limitations, the response data are not available at all degrees of freedom of the structure and the external excitations may not be measured (or available). In this paper, an adaptive damage tracking technique, referred to as the sequential nonlinear least-square estimation with unknown inputs and unknown outputs (SNLSE-UI-UO) and the sub-structure approach are used to identify damages at critical locations (hot spots) of the complex structure. In our approach, only a limited number of response data are needed and the external excitations may not be measured, thus significantly reducing the number of sensors required and the corresponding computational efforts. The accuracy of the proposed approach is illustrated using a long-span truss with finite-element formulation and an 8-story nonlinear base-isolated building. Simulation results demonstrate that the proposed approach is capable of tracking the local structural damages without the global information of the entire structure, and it is suitable for local structural health monitoring.