• 제목/요약/키워드: SRSS method

검색결과 20건 처리시간 0.027초

응답스펙트럼해석법을 이용한 배전반의 내진건전성 해석 (Seismic Integrity Analysis of an Electric Distributing Board Using the Response Spectra Analysis Method)

  • 최영휴;김수태;설상석;문성춘
    • 한국기계가공학회지
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    • 제19권4호
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    • pp.45-51
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    • 2020
  • In this study, a response spectrum analysis of an electric distributing board (EDB) was conducted to investigate seismic integrity in the design stage. For the seismic analysis, the required response spectra of a safe shutdown earthquake with 2% damping (RRS/SSE-2%) specified in GR-63-CORE Zone 4 was used as the ground spectral acceleration input. A finite element method modal analysis of the EDB was also performed to examine the occurrence of resonance within the frequency range of the earthquake response spectrum. Furthermore, static stress caused by deadweight was analyzed. The resultant total maximum stress of the EDB structure was calculated by adding the maximum stresses from both seismic and static loads using the square root of the sum of the squares (SRSS) method. Finally, the structural safety of the EDB was investigated by comparing the resultant total maximum stress with the allowable stress.

케이블 지지교량의 내진해석 (Seismic Analysis of Cable-Supported Bridges)

  • 서영국;정운용;조준상
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 1999년도 가을 학술발표회 논문집
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    • pp.233-240
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    • 1999
  • A general procedure is presented here to develope seismic design and analysis method for cable-supported bridges like suspension bridges subjected to ground motion. For representing a numerical model of suspension bridges. a new approach which satisfy design conditions for the initial equilibrium state of suspension bridges. without any nonlinear iterations. is proposed. The dynamic behavior of that model is verified by free vibration analysis. This study uses the response spectrum analysis to determine the Peak response of a suspension bridge to earthquake-induced ground motion. The SRSS(Square Root of Sum of Square). modal combination rule, is adopted for each direction, longitudinal and transverse. To illustrate the potential applicability for the seismic design of suspension bridges, a numerical example is presented in which the dynamic response of the Nam-hae suspension bridge subjected to earthquake

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소형 사보니우스형 수직축 풍력발전기의 내진검증 (Seismic Qualification Analysis of a Small Savonius Style Vertical Axis Wind Turbine)

  • 최영휴;강민규;박성훈
    • 한국기계가공학회지
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    • 제17권1호
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    • pp.122-129
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    • 2018
  • This study conducted a seismic qualification analysis of small savonius style vertical axis wind turbine(VAWT) using finite element method(FEM). The modal analysis was performed on the wind turbine structure to check the occurrence of resonance caused by the rotation of gearbox and windmill blades. Next, it conducted a seismic response spectrum analysis due to horizontal and vertical seismic load of required response spectrum of safe shutdown earthquake with 5 % damping(RRS/SSE 5%) of KS C IEC 61400 and conducted a static analysis due to deadweight and wind load. The total maximum stress of the VAWT structure was calculated by adding the maximum stresses due to each load case using the square root of the sum of the squares(SRSS) method. Finally, the structural safety of the VAWT structure was verified by comparing the total maximum stress and the allowable stress.

An effective load increment method for multi modal adaptive pushover analysis of buildings

  • Turker, K.;Irtem, E.
    • Structural Engineering and Mechanics
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    • 제25권1호
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    • pp.53-73
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    • 2007
  • In this study, an effective load increment method for multi modal adaptive non-linear static (pushover) analysis (NSA) for building type structures is presented. In the method, lumped plastisicity approach is adopted and geometrical non-linearties (second-order effects) are included. Non-linear yield conditions of column elements and geometrical non-linearity effects between successive plastic sections are linearized. Thus, load increment needed for formation of plastic sections can be determined directly (without applying iteration or step-by-step techniques) by using linearized yield conditions. After formation of each plastic section, the higher mode effects are considered by utilizing the essentials of traditional response spectrum analysis at linearized regions between plastic sections. Changing dynamic properties due to plastification in the system are used on the calculation of modal lateral loads. Thus, the effects of stiffness changes and local mechanism at the system on lateral load distribution are included. By using the proposed method, solution can be obtained effectively for multi-mode whereby the properties change due to plastifications in the system. In the study, a new procedure for determination of modal lateral loads is also proposed. In order to evaluate the proposed method, a 20 story RC frame building is analyzed and compared with Non-linear Dynamic Analysis (NDA) results and FEMA 356 Non-linear Static Analysis (NSA) procedures using fixed loads distributions (first mode, SRSS and uniform distribution) in terms of different parameters. Second-order effects on response quantities and periods are also investigated. When the NDA results are taken as reference, it is seen that proposed method yield generally better results than all FEMA 356 procedures for all investigated response quantities.

고층 스카이브리지의 변위 허용치 산정에 대한 연구 (Study on Evaluating Displacement Tolerance of Sky-bridge in Tall Buildings)

  • 김윤곤
    • 대한건축학회논문집:구조계
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    • 제36권4호
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    • pp.135-142
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    • 2020
  • The new method for evaluating the displacement tolerance of sky-bridges with pin-roller type supports was proposed considering both return period of phase difference between connected buildings and geometrical characteristics of skybridge. Because displacement tolerance is relative value, which is most affected by the phase difference of the connected buildings, the dynamic response of these building with time history analysis should be evaluated. However, the initial phase could not be specified, so the result of displacement tolerance would be varied with respect to initial value. Thus, the tolerance can be reasonably evaluated SRSS calculation with design displacements based on statistical approach and of each building. In addition, the geometrical characteristics of sky-bridge should be considered because the transverse displacement of sky-bridge span causes the shear deformation of the bridge and longitudinal displacement tolerance cannot release the shear deformation. Therefore, the some pin-end support in sky-bridge should have longitudinal displacement tolerance to accommodate the shear deformation. By resolving this shear deformation, it is possible not only to accommodate transverse displacement, but also to avoid the complicated joint details such as both pot bearing and guided supports with shear key.

Seismic demand assessment of semi-rigid steel frames at different performance points

  • Sharma, Vijay;Shrimali, Mahendra K.;Bharti, Shiv D.;Datta, Tushar K.
    • Steel and Composite Structures
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    • 제41권5호
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    • pp.713-730
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    • 2021
  • The seismic performance of rigid steel frames is widely investigated, but that of semi-rigid (SR) steel frames are not studied extensively, especially for near-field earthquakes. In this paper, the performances of five and ten-story steel SR frames having different degrees of semi-rigidity are evaluated at four performance points in the four different deformation states, namely, the elastic, elasto-plastic, plastic, and near collapse states. The performances of the SR frames are measured by the response parameters including the maximum values of the top floor displacement, base shear, inter-story drift ratio, number of plastic hinges, and SRSS of plastic hinge rotations. These response parameters are obtained by the capacity spectrum method (CSM) using pushover analysis. The validity of the response parameters determined by the CSM is evaluated by the results of the nonlinear time history analysis (NLTHA) for both near and far-field earthquakes at different PGA levels, which are consistent with the performance points. Results of the study show that the plastic hinges of SR frame significantly increase in the range of plastic to near-collapse states for both near and far-field earthquakes. The effect of the degree of semi-rigidity is pronounced only at higher degrees of semi-rigidity. The predictions of the CSM are fairly well in comparison to the NLTHA.

Structural response analysis in time and frequency domain considering both ductility and strain rate effects under uniform and multiple-support earthquake excitations

  • Liu, Guohuan;Lian, Jijian;Liang, Chao;Zhao, Mi
    • Earthquakes and Structures
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    • 제10권5호
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    • pp.989-1012
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    • 2016
  • The structural dynamic behavior and yield strength considering both ductility and strain rate effects are analyzed in this article. For the single-degree-of-freedom (SDOF) system, the relationship between the relative velocity and the strain rate response is deduced and the strain rate spectrum is presented. The ductility factor can be incorporated into the strain rate spectrum conveniently based on the constant-ductility velocity response spectrum. With the application of strain rate spectrum, it is convenient to consider the ductility and strain rate effects in engineering practice. The modal combination method, i.e., square root of the sum of the squares (SRSS) method, is employed to calculate the maximum strain rate of the elastoplastic multiple-degree-of-freedom (MDOF) system under uniform excitation. Considering the spatially varying ground motions, a new response spectrum method is developed by incorporating the ductility factor and strain rate into the conventional response spectrum method. In order to further analyze the effects of strain rate and ductility on structural dynamic behavior and yield strength, the cantilever beam (one-dimensional) and the triangular element (two-dimensional) are taken as numerical examples to calculate their seismic responses in time domain. Numerical results show that the permanent displacements with and without considering the strain rate effect are significantly different from each other. It is not only necessary in theory but also significant in engineering practice to take the ductility and strain rate effects into consideration.

복수의 동적하중을 받는 바닥판 구조물의 응답스펙트럼 해석 (Response Spectrum Analysis of Floor Structure Subjected to Group Dynamic Loads)

  • 김태호;한덕전
    • 한국공간구조학회논문집
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    • 제8권1호
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    • pp.57-67
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    • 2008
  • 건축구조물의 응답스펙트럼 해석법은 주로 내진설계를 위하여 많이 사용되고 있고 시간이력 해석법은 기계, 설비, 사람에 의한 하중 등이 건축물에 가해지는 경우에 많이 사용되고 있다. 응답스펙트럼 해석법과 시간이력해석법을 비교해 보면 시간이력 해석법은 복잡하고 분석이 어려우며 해석에 시간을 많이 필요로 하고 구조물이 복잡해질 경우에는 해석이 어려운 경우도 있다. 본 연구에서는 응답스펙트럼해석법을 이용하여 기계나 사람에 의한 하중을 받는 건축물 바닥판의 연직응답을 구하고자 한다. 이를 위하여 모드조합에서는 CQC기법을 적용하였으며, 사람의 활동을 중심으로 하중간의 상관관계를 분석하여 해석에 적용하였다. 제안방법은 시간이력해석결과와도 비교하였으며 하중간의 상관계수는 복수의 하중을 받는 바닥판구조물의 응답스펙트럼 해석에 반드시 고려해야 하는 결과를 얻었다.

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가새좌굴을 고려한 역 V형 가새골조의 기둥부재 내진설계법 (Seismic Design of Columns in Inverted V-braced Steel Frames Considering Brace Buckling)

  • 조준희;김정재;이철호
    • 한국강구조학회 논문집
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    • 제22권1호
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    • pp.1-12
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    • 2010
  • 현행 강구조내진설계철학의 근거인 역량설계법(capacity design method)에 의할 때 중심가새골조의 에너지 소산요소인 가새가 인장항복하고 압축좌굴 할 때 보와 기둥은 탄성상태를 유지해야 한다. 중심가새골조의 대표적 형식인 역V형 가새골조의 경우 가새가 좌굴하면 인장가새와 압축가새 사이에 수직불균형력이 발생하여 보와 기둥에 추가적인 하중이 가해지므로 이를 반영하여 보 및 기둥 부재를 탄성설계해야 한다. 지진하중 발생시에 모든 가새가 동시에 좌굴하지 않는다는 것은 잘 알려져 있지만, 특정층의 좌굴발생 유무를 정확히 예견하는 방법은 아직 존재하지 않는다. 따라서 현행 설계기준에서는 모든 층에서의 동시 좌굴을 가정하여 보수적으로 설계하거나 시스템초과강도계수로 증폭된 특별지진하중에 대해 기둥부재를 탄성설계하는 경험적이고 우회적인 방법을 제시하고 있다. 이를 개선하기 위한 첫 번째 단계는 우선 지진 내습시에 좌굴발생이 예견되는 층을 정확히 예측하는 것이다. 본 논문에서는 1차모드 푸쉬오버해석, 고차모드 푸쉬오버해석, 선형고유치해석에 의해 좌굴층을 예측한 후 이를 토대로 가새좌굴이 기둥에 가하는 축력을 산정하는 세 가지의 새로운 방법, 즉 FMPM(First Mode Pushover Method), MMPM (Multi-Mode Pushover Method), MSBM(Mode Shape Based Method)을 제안하였다. 이 세 가지 방안의 핵심은 좌굴 포텐셜이 높은 것으로 감지된 층의 수직불균형력은 선형합산하고 그렇지 않은 층의 수직불균형력은 SRSS(square root of sum of squares)법에 의해 조합하여 기둥에 가해지는 축력을 산정하는 것이다. 3층에서 15층에 이르는 5개의 골조모델에 대해 20개 지진가속도기록을 입력으로 한 방대한 비선형동적해석을 수행하여 제시한 방안의 타탕성을 검증하였다. 세 방법에 의한 기둥설계 결과는 모두 현행 설계기준의 방법보다 기둥의 물량을 대폭 줄이면서도 기둥부재가 탄성상태를 유지하여 역량설계법의 철학을 만족시켰다. 특히 MSBM은 간단한 선형 고유치해석결과만을 이용하지만 본 연구에서 가장 정확한 축력산정법인 MMPM과 큰 차이를 보이지 않을 정도로 정확하다. 실무 여건에서도 사용 가능한 방법으로 MSBM을 추천한다.

The relationship between time-varying eccentricity of load with the corner lateral displacement response of steel structure during an earthquake

  • Takin, Kambiz;Hashemi, Behrokh H.;Nekooei, Masoud
    • Steel and Composite Structures
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    • 제20권4호
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    • pp.801-812
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    • 2016
  • In an actual design, none of the structures with shear behaviors will be designed for torsional moments. Any failure or damages to roofs, infills, shear walls, and braces caused by an earthquake, will inevitably result in relocation of center of mass and rigidity of the structure. With these changes, the dynamic characteristics of structure could be changed during an earthquake at any moment. The main objective of this paper is to obtain the relationship between time-varying eccentricity of load and corner lateral displacement. In this study, various methods have been used to determine the structural response for time-varying lateral corner displacement. As will be seen below, some of the structural calculation methods result in a significant deviation from the actual results, although these methods include the interaction effects of modes. Controlling the lateral displacement of structure can be performed in different ways such as, passive dampers, friction dampers, semi-active systems including the MR damper and active Systems. Selecting and locating these control systems is very important to bring the maximum safety with minimum cost into the structure. According to this study will be show the relation between the corner lateral displacements of structure and time-varying eccentricity by different kind of methods during an earthquake. This study will show that the response of the structure at the corners due to an earthquake can be very destructive and because of changing the eccentricity of load, calculating the maximum possible response of system can be carried out by this method. Finally, some kind of systems must be used for controlling these displacements. The results shows that, the CQC, DSC and exact methods is comply each other but the results of Vanmark method is not comfortable for these kind of buildings.