• 제목/요약/키워드: response modification factors

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Design parameter dependent force reduction, strength and response modification factors for the special steel moment-resisting frames

  • Kang, Cheol Kyu;Choi, Byong Jeong
    • Steel and Composite Structures
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    • 제11권4호
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    • pp.273-290
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    • 2011
  • In current ductility-based earthquake-resistant design, the estimation of design forces continues to be carried out with the application of response modification factors on elastic design spectra. It is well-known that the response modification factor (R) takes into account the force reduction, strength, redundancy, and damping of structural systems. The key components of the response modification factor (R) are force reduction ($R_{\mu}$) and strength ($R_S$) factors. However, the response modification and strength factors for structural systems presented in design codes were based on professional judgment and experiences. A numerical study has been accomplished to evaluate force reduction, strength, and response modification factors for special steel moment resisting frames. A total of 72 prototype steel frames were designed based on the recommendations given in the AISC Seismic Provisions and UBC Codes. Number of stories, soil profiles, seismic zone factors, framing systems, and failure mechanisms were considered as the design parameters that influence the response. The effects of the design parameters on force reduction ($R_{\mu}$), strength ($R_S$), and response modification (R) factors were studied. Based on the analysis results, these factors for special steel moment resisting frames are evaluated.

Response modification factor of dual moment-resistant frame with buckling restrained brace (BRB)

  • Abdollahzadeh, Gholamreza;Banihashemi, Mohammadreza
    • Steel and Composite Structures
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    • 제14권6호
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    • pp.621-636
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    • 2013
  • Response modification factor is one of the seismic design parameters to consider nonlinear performance of building structures during strong earthquake, in conformity with the point that many seismic design codes led to reduce the loads. In the present paper it's tried to evaluate the response modification factors of dual moment resistant frame with buckling restrained braced (BRB). Since, the response modification factor depends on ductility and overstrength; the nonlinear static analysis, nonlinear dynamic analysis and linear dynamic analysis have been done on building models including multi-floors and different brace configurations (chevron V, invert V, diagonal and X bracing). The response modification factor for each of the BRBF dual systems has been determined separately, and the tentative value of 10.47 has been suggested for allowable stress design method. It is also included that the ductility, overstrength and response modification factors for all of the models were decreased when the height of the building was increased.

역V형 보통가새골조의 반응수정계수 (Response Modification Factors of Inverted V-type Ordinary Concentrically Braced Frames)

  • 김진구;남광희
    • 한국지진공학회논문집
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    • 제8권3호
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    • pp.53-62
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    • 2004
  • 본 논문에서는 현행 내진설계방법에 따라 설계된 역V형 보통 가새골조 (OCBF)의 비선형 정적 해석을 수행하고, 그 결과를 바탕으로 초과강도계수, 연성계수, 반응수정계수 및 변위 증폭계수 등을 산정하였다. 해석결과에 따르면 대부분의 해석모델에서 현행 내진설계 기준에서 제시한 값보다 작은 초과강도계수 및 반응수정계수 값을 가지는 것으로 나타났다. 그러나 수직 보강 기둥 (zipper column)으로 가새를 보강한 경우 초과강도계수 및 반등수정계수는 보통 가새 구조물에 비하여 상당히 증가하는 것으로 나타났다.

교량의 지진거동에 미치는 영향인자에 관한 연구 (A Study of influence factors on the bridge seismic behavior)

  • 최종만;국승규;김준범;정동원
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2005년도 학술발표회 논문집
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    • pp.372-379
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    • 2005
  • The earthquake resistant design concept allows the nonlinear behavior of structures under the design earthquake. Therefore the response spectrum method provided in most codes introduces the response modification factors to consider the nonlinear behavior in the design process. For bridges, the response modification factors are given according to the ductility as well as the redundancy of piers. In this study, among influence factors on the nonlinear seismic behavior, the randomness of artificial accelerograms simulated with different durations, the pier ductility represented by the inelastic behavior characteristic curve and the regularity represented by pier heights are selected. The influence of such factor on the seismic behavior is investigated by comparing response modification factors calculated with the nonlinear time step analysis.

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단주효과 및 고유주기를 고려한 비내진 학교시설의 반응 수정계수 (Response Modification Factors of Non-seismic School Buildings Considering Short Column Effects and Natural Period)

  • 김범석;박지훈
    • 한국지진공학회논문집
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    • 제23권4호
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    • pp.201-209
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    • 2019
  • Response modification factors of school facilities for non-seismic RC moment frames with partial masonry infills in 'Manual for Seismic Performance Evaluation and Retrofit of School Facilities' published in 2018 were investigated in the preceding study. However, since previous studies are based on 2D frame analysis and limited analysis conditions, additional verification needs to be performed to further apply various conditions including orthogonal effect of seismic load. Therefore, this study is to select appropriate response modification factors of school facilities for non-seismic RC moment frames with partial masonry infills by 3D frame analysis. The results are as follows. An appropriate response modification factor for non-seismic RC moment frames with partial masonry infills is proposed as 2.5 for all cases if the period is longer than 0.6 seconds. Also if the period is less than 0.4 seconds and the ratio of shear-controlled columns is less than 30%, 2.5 is chosen too. However, if the period is less than 0.4 seconds and the ratio of shear-controlled columns is higher than 30%, the response modification factor shall be reduced to 2.0. If the period is between 0.4 and 0.6 seconds, then linearly interpolates the response correction factor.

Seismic Behavior Factors of RC Staggered Wall Buildings

  • Kim, Jinkoo;Jun, Yong;Kang, Hyunkoo
    • International Journal of Concrete Structures and Materials
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    • 제10권3호
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    • pp.355-371
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    • 2016
  • In this study seismic performance of reinforced concrete staggered wall system structures were investigated and their behavior factors such as overstrength factors, ductility factors, and the response modification factors were evaluated from the overstrength and ductility factors. To this end, 5, 9, 15, and 25-story staggered wall system (SWS) structures were designed and were analyzed by nonlinear static and dynamic analyses to obtain their nonlinear force-displacement relationships. The response modification factors were computed based on the overstrength and the ductility capacities obtained from capacity envelopes. The analysis results showed that the 5- and 9-story SWS structures failed due to yielding of columns and walls located in the lower stories, whereas in the 15- and 25-story structures plastic hinges were more widely distributed throughout the stories. The computed response modification factors increased as the number of stories decreased, and the mean value turned out to be larger than the value specified in the design code.

역V형 특수가새골조의 반응수정계수 (Response Modification Factors of Inverted V-type Special Concentrically Braced Frames)

  • 김진구;남광희
    • 한국지진공학회논문집
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    • 제8권1호
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    • pp.29-37
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    • 2004
  • 초과강도계수와 연성계수는 현행 내진기준에서 사용되는 반응수정계수를 결정하기 위한 두 가지 중요한 계수이다. 본 논문에서는 다양한 층수 및 경간을 갖는 역V형 특수 중심가새골조의 비선형 정적 해석을 수행하여 초과강도계수와 연성계수를 구하고 이를 이용하여 반응 수정계수를 산정하였다. 해석결과에 따르면 저층 구조물의 경우 IBC-2000에서 제시한 값보다 큰 반응수정계수 값을 가지며, 중층 이상의 경우 기준에서 제시한 값보다 작은 값으로 나타났다. 또한 초과강도계수와 연성계수는 구조물의 높이가 감소할수록, 스팬의 길이가 증가할수록 증가하는 것으로 나타났다.

응답수정계수와 일반교량의 붕괴방지설계 (Response Modification Factors and No Collapse Design of Typical Bridges)

  • 국승규
    • 한국전산구조공학회논문집
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    • 제30권2호
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    • pp.185-189
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    • 2017
  • 일반교량 내진설계의 목적은 지진발생 직후에 긴급차량의 통과를 허용하도록 하는 '붕괴방지설계'의 수행이다. 도로교설계기준은 연성구조를 구성하여 '붕괴방지설계'를 수행하는 규정을 제시하고 있으며 이 과정에서 연결부분과 하부구조에 적용하는 응답수정계수가 핵심적인 역할을 한다. 하부구조 응답수정계수의 경우 도로교설계기준은 연성과 여용력을 고려한 계수인 반면 AASHTO LRFD 교량설계기준은 교량의 중요도를 핵심, 중요 및 일반으로 구분한 인위적인 인자를 추가로 반영한 계수를 제시하고 있다. 이 연구에서는 강재받침과 철근콘크리트 교각기둥으로 구성된 일반교량을 선정하고 도로교설계기준의 설계조건과 함께 하부구조 응답수정계수를 차등 적용하는 경우의 설계결과를 비교, 검토하였으며 이로부터 하부구조 응답수정계수의 차등 적용 시 설계기준에 요구되는 보완사항을 제시하였다.

Seismic response modification factors for stiffness degrading soil-structure systems

  • Ganjavi, Behnoud;Bararnia, Majid;Hajirasouliha, Iman
    • Structural Engineering and Mechanics
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    • 제68권2호
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    • pp.159-170
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    • 2018
  • This paper aims to develop response modification factors for stiffness degrading structures by incorporating soil-structure interaction effects. A comprehensive parametric study is conducted to investigate the effects of key SSI parameters, natural period of vibration, ductility demand and hysteretic behavior on the response modification factor of soil-structure systems. The nonlinear dynamic response of 6300 soil-structure systems are studied under two ensembles of accelograms including 20 recorded and 7 synthetic ground motions. It is concluded that neglecting the stiffness degradation of structures can results in up to 22% underestimation of inelastic strength demands in soil-structure systems, leading to an unexpected high level of ductility demand in the structures located on soft soil. Nonlinear regression analyses are then performed to derive a simplified expression for estimating ductility-dependent response modification factors for stiffness degrading soil-structure systems. The adequacy of the proposed expression is investigated through sensitivity analyses on nonlinear soil-structure systems under seven synthetic spectrum compatible earthquake ground motions. A good agreement is observed between the results of the predicted and the target ductility demands, demonstrating the adequacy of the expression proposed in this study to estimate the inelastic demands of SSI systems with stiffness degrading structures. It is observed that the maximum differences between the target and average target ductility demands was 15%, which is considered acceptable for practical design purposes.

Seismic Design of Structures in Low Seismicity Regions

  • 이동근;조소훈;고현
    • 한국지진공학회논문집
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    • 제11권4호
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    • pp.53-63
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    • 2007
  • Seismic design codes are developed mainly based on the observation of the behavior of structures in the high seismicity regions where structures may experience significant amount of inelastic deformations and major earthquakes may result in structural damages in a vast area. Therefore, seismic loads are reduced in current design codes for building structures using response modification factors which depend on the ductility capacity and overstrength of a structural system. However, structures in low seismicity regions, subjected to a minor earthquake, will behave almost elastically because of the larger overstrength of structures in low seismicity regions such as Korea. Structures in low seismicity regions may have longer periods since they are designed to smaller seismic loads and main target of design will be minor or moderate earthquakes occurring nearby. Ground accelerations recorded at stations near the epicenter may have somewhat different response spectra from those of distant station records. Therefore, it is necessary to verify if the seismic design methods based on high seismicity would he applicable to low seismicity regions. In this study, the adequacy of design spectra, period estimation and response modification factors are discussed for the seismic design in low seismicity regions. The response modification factors are verified based on the ductility and overstrength of building structures estimated from the farce-displacement relationship. For the same response modification factor, the ductility demand in low seismicity regions may be smaller than that of high seismicity regions because the overstrength of structures may be larger in low seismicity regions. The ductility demands in example structures designed to UBC97 for high, moderate and low seismicity regions were compared. Demands of plastic rotation in connections were much lower in low seismicity regions compared to those of high seismicity regions when the structures are designed with the same response modification factor. Therefore, in low seismicity regions, it would be not required to use connection details with large ductility capacity even for structures designed with a large response modification factor.