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1

4,000원

Some ceiling systems were damaged by Pohang earthquake so concerns on the seismic performance of them has raised. In this study the shake table test of the ceiling system was conducted to investigate the dynamic behavior and those failure type under earthquake condition. The test specimen was a gypsum panel ceiling system with M-bar type which was used in school building. As the result of the test, minor damage such as falling of single panel around the perimeter and separation from molding was found under domestic design earthquake level. The acceleration response of the ceiling system was amplified over the input acceleration but below 2.5 times. Therefore, it seemed that it was reasonable to use a response amplification factor of 2.5 as the seismic design parameter. Its displacement response was increased as the boundary condition of perimeter was changed by increasing input acceleration. Additionally, the simple spring-mass model of the ceiling system using the lumped mass of the system supported by a hanger and flexure stiffness of the hanger was suggested, and the boundary condition between the panels and the molding part of the ceiling system was assumed as the axial springs. The seismic response analysis was performed to verify the model and to evaluate the seismic demand by the three types of the hanger length. The analysis model could predict properly the displacement response of the specimen when the stiffness of the axial spring was applied to be low. Moreover, analysis results showed that the seismic force and displacement demands affected by the length of the hanger and boundary rigidity, so it needed to be considered for the seismic design of the ceiling system.

2

Performance evaluation of suspended ceiling systems using shake table test

Ozcelik, Ozgur, Misir, Ibrahim S., Saridogan, Serhan

[Kisti 연계] 테크노프레스 Structural engineering and mechanics : An international journal Vol.58 No.1 2016 pp.121-142

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The national standard being used in Turkey for suspended ceiling systems (SCS) regulates material and dimensional properties but does not contain regulations regarding installation instructions which cause substandard applications of SCSs in practice. The lack of installation instructions would potentially affect the dynamic performance of these systems. Also, the vast majority of these systems are manufactured using substandard low-quality materials, and this will inevitably increase SCS related damages during earthquakes. The experimental work presented here focuses on the issue of dynamic performance of SCSs with different types of carrier systems (lay-on and clip-in systems), different weight conditions, and material-workmanship qualities. Moreover, the effects of auxiliary fastening elements, so called seismic perimeter clips, in improving the dynamic performance of SCSs were experimentally investigated. Results show that clip-in ceiling system performs better than lay-on system regardless of material and workmanship qualities. On the other hand, the quality aspect becomes the most important parameter in affecting the dynamic performance of lay-on type systems as opposed to tile weights and usage of perimeter clips. When high quality system is used, tile weight does not change the performance of lay-on system, however in poor quality system, tile weight becomes an important factor where heavier tiles considerably decrease the performance level. Perimeter clips marginally increase the dynamic performance of lay-on ceiling system, but it has no effect on the clip-in ceiling system under the shaking levels considered.

3

Evaluation of MCC seismic response according to the frequency contents through the shake table test

Chang, Sung-Jin, Jeong, Young-Soo, Eem, Seung-Hyun, Choi, In-Kil, Park, Dong-Uk

[Kisti 연계] 한국원자력학회 Nuclear Engineering and Technology Vol.53 No.4 2021 pp.1345-1356

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Damage to nuclear power plants causes human casualties and environmental disasters. There are electrical facilities that control safety-related devices in nuclear power plants, and seismic performance is required for them. The 2016 Gyeongju earthquake had many high-frequency components. Therefore, there is a high possibility that an earthquake involving many high frequency components will occur in South Korea. As such, it is necessary to examine the safety of nuclear power plants against an earthquake with many high-frequency components. In this study, the shaking table test of electrical facilities was conducted against the design earthquake for nuclear power plants with a large low-frequency components and an earthquake with a large high-frequency components. The response characteristics of the earthquake with a large high-frequency components were identified by deriving the amplification factors of the response through the shaking table test. In addition, safety of electrical facility against the two aforementioned types of earthquakes with different seismic characteristics was confirmed through limit-state seismic tests. The electrical facility that was performed to the shaking table test in this study was a motor control center (MCC).

4

외부마감재가 부착된 볼트접합 방식 패널링 시스템의 내진성능평가를 위한 진동대 실험

오상훈, 박종원, 박해용

[Kisti 연계] 한국지진공학회 한국지진공학회논문집 Vol.22 No.1 2018 pp.23-32

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In this study, we conducted a shake table test to verify the seismic performance of the paneling system with steel truss composed of bolt connections. The control group was set to the traditional paneling system with steel truss connected by spot welding method. Test results showed that the bolted connection type paneling system has excellent deformation capacity without cracking or brittle fracture of the steel truss connection parts compared to the welding type paneling system. Furthermore, in the bolted connection type, slight damage occurred at the time of occurrence of the same story drift angle as compared with the existing method, it is considered that it has excellent seismic performance. In compliance with the performance-based design recommended for the current code (ASCE 41-13) on non-structural components, it is judged that in the case of the bolted connection type paneling system, it can be applied to all risk category structures without restriction. However, in the case of traditional paneling system with spot welding method, it is considered that it can be applied limitedly.

5

유체 슬로싱 해석을 위한 액체저장탱크 진동대 실험 DB

백은림, 최형석, 박동욱, 김남식, 김재민

[Kisti 연계] 한국소음진동공학회 한국소음진동공학회논문집 Vol.27 No.5 2017 pp.545-554

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원문보기

In this study shaking table tests were conducted to build the dynamic experiment database for the liquid container. The 6 rectangular and circular section specimens were designed and fabricated to investigate the nonlinear sloshing behavior of liquid and the specimens were tested by random waves, sine waves and historical earthquake waves. Water level, wall pressure, acceleration, strain and load responses by shake table tests were recorded in the database. In addition, the excitation method, used sensors and drawings of the specimens were also recorded. Using the database, the convective mode frequency of liquid, sloshing behavior and seismic responses were analyzed.

6

정사각형 수조 진동대실험에 대한 상관해석

손일민, 김재민, 최형석, 백은림

[Kisti 연계] 한국구조물진단유지관리공학회 한국구조물진단유지관리공학회 논문집 Vol.21 No.1 2017 pp.23-29

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원문보기

이 연구에서는 유체저장탱크의 내진 설계 고도화에 활용하기 위하여 정사각형 수조의 슬러싱 진동대실험에 대한 상관해석을 수행하였다. 이를 위하여 CFD 프로그램인 ANSYS CFX를 이용하였다. CFD 해석 프로그램 검증을 위해 슬러싱 공진이 발생하는 운동에 대한 해석모델의 요소크기 및 난류모델에 대한 슬러싱응답의 민감도해석을 수행하였다. 그 결과, 수직방향 요소크기 뿐만 아니라 수평방향 요소크기에 따라 수위 예측에 민감한 영향을 미치는 것을 알 수 있었다. 또한, SST 난류모델을 사용한 CFD해석 결과가 실험 결과와 매우 잘 일치하는 것을 알 수 있었다. 이로부터 결정된 CFX 해석모델을 사용하여, 가진 주파수와 가진 진폭이 다른 3가지 실험 결과에 대하여 상관해석을 수행하였다. 그 결과, CFD해석모델을 사용하여 지진해석을 수행할 경우, 슬러싱응답이 실험 결과와 매우 잘 일치하는 것을 알 수 있었다.

In this study, a post-correlation analysis for shaking table test of square water storage tank is presented for the use of advances in earthquake-resistant design of liquid storage tank. For this purpose, the ANSYS CFX program is selected for the CFD analysis. Sensitivity analysis for resonant sloshing motion in terms of grid size and turbulence model suggested that (1) horizontal grid size as well as vertical grid size is a key variable in the sloshing analysis, and (2) the SST turbulence model is best for the sloshing analysis. Finally, correlation analyses for a non-resonant harmonic input and scaled earthquake excitation of the El Centro (1940) NS component are carried out using the grid and turbulence model established through the post-correlation analysis for the resonant motion. As a result, sloshing time histories by the CFD analysis agreed very well with the test results.

 
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