• 제목/요약/키워드: a ductile mechanism

검색결과 100건 처리시간 0.024초

단부 횡보강된 구조벽의 모멘트-곡률 관계 (Moment-Curvature Relationship of Structural Wells with Confined Boundary Element)

  • 강수민;박홍근
    • 콘크리트학회논문집
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    • 제15권2호
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    • pp.323-334
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    • 2003
  • 비선형정적해석과 같은 성능기초설계를 위해서는 부재의 비선형거동을 정확하게 예측하여야 한다. 본 연구에서는 단부횡보강된 구조벽의 휨모멘트-곡률관계를 구하는 방법을 개발하기 위하여 해석연구를 실시하였다. 비선형해석을 수행하여 수직방향 철근의 배치형태와 단부횡보강 길이의 변화에 따른 구조벽체의 거동특성과 파괴 메카니즘의 변화를 연구하였다. 분석결과, 적절하게 횡보강된 벽체의 최대강도는 비횡보강 콘크리트가 극한 압축변형율에 도달하는 경우에 발생한다. 단부집중배근을 갖는 벽체에서는 취성파괴가 일어나며, 웨브의 수직철근은 연성파괴를 유도하는 역할을 한다. 이러한 연구결과에 근거하여 다양한 배근형태를 갖는 벽체에 대한 모멘트-곡률관계를 정의하였다. 이 제안된 관계에 따르면 단부횡보강된 구조벽체의 변형능력은 재하된 압축력에 비하여 횡보강 콘크리트의 압축재하능력이 증가할수록 증가한다.

횡방향철근이 감소된 중공사각단면 교각의 내진거동 특성 (Seismic Characteristics of Hollow Rectangular Sectional Piers with Reduced Lateral Reinforcements)

  • 선창호;김익현
    • 한국지진공학회논문집
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    • 제13권3호
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    • pp.51-65
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    • 2009
  • 콘크리트 교량의 합리적인 내진설계는 지진이 발생할 때 연성파괴메커니즘이 유도될 수 있도록 적절하게 교각 연성도를 확보하는 것이다. 현행 기준에서는 이를 위해 휨모멘트의 설계지진력을 산정할 때 응답수정계수를 도입하고 있으며, 연성도 확보를 위한 횡방향철근량을 규정하고 있다. 그러나, 이러한 내진규정은 일반적으로 단면이 크게 설계되는 우리나라에서는 횡방향철근이 과다하게 산정되는 비합리적이었다. 이를 개선하기 위해 소요연성도에 기반한 새로운 내진설계법이 제안되었으나 거동특성과 횡방향철근의 유효구속력이 다른 중공단면에 적용하기 위해서는 향후 많은 검증과 보완이 필요하다. 이에 본 연구에서는 축방향철근의 겹침이음과 횡방향철근량을 변수로 한 중공단면기둥을 제작하여 준정적 재하실험을 수행하였으며 다양하게 내진거동특성을 분석하고 내진성능을 확인하였다. 본 연구 결과는 향후 중공단면교각의 연성도(성능)기반 내진설계를 위한 기초자료로 제공될 수 있다.

Strut-tie model for two-span continuous RC deep beams

  • Chae, H.S.;Yun, Y.M.
    • Computers and Concrete
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    • 제16권3호
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    • pp.357-380
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    • 2015
  • In this study, a simple indeterminate strut-tie model which reflects complicated characteristics of the ultimate structural behavior of continuous reinforced concrete deep beams was proposed. In addition, the load distribution ratio, defined as the fraction of applied load transferred by a vertical tie of truss load transfer mechanism, was proposed to help structural designers perform the analysis and design of continuous reinforced concrete deep beams by using the strut-tie model approaches of current design codes. In the determination of the load distribution ratio, a concept of balanced shear reinforcement ratio requiring a simultaneous failure of inclined concrete strut and vertical steel tie was introduced to ensure the ductile shear failure of reinforced concrete deep beams, and the primary design variables including the shear span-to-effective depth ratio, flexural reinforcement ratio, and compressive strength of concrete were reflected upon. To verify the appropriateness of the present study, the ultimate strength of 58 continuous reinforced concrete deep beams tested to shear failure was evaluated by the ACI 318M-11's strut-tie model approach associated with the presented indeterminate strut-tie model and load distribution ratio. The ultimate strength of the continuous deep beams was also estimated by the experimental shear equations, conventional design codes that were based on experimental and theoretical shear strength models, and current strut-tie model design codes. The validity of the proposed strut-tie model and load distribution ratio was examined through the comparison of the strength analysis results classified according to the primary design variables. The present study associated with the indeterminate strut-tie model and load distribution ratio evaluated the ultimate strength of the continuous deep beams fairly well compared with those by other approaches. In addition, the present approach reflected the effects of the primary design variables on the ultimate strength of the continuous deep beams consistently and reasonably. The present study may provide an opportunity to help structural designers conduct the rational and practical strut-tie model design of continuous deep beams.

Shake-table tests on moment-resisting frames by introducing engineered cementitious composite in plastic hinge length

  • Khan, Fasih A.;Khan, Sajjad W.;Shahzada, Khan;Ahmad, Naveed;Rizwan, Muhammad;Fahim, Muhammad;Rashid, Muhammad
    • Earthquakes and Structures
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    • 제23권1호
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    • pp.23-34
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    • 2022
  • This paper presents experimental studies on reinforced concrete moment resisting frames that have engineered cementitious composite (ECC) in plastic hinge length (PHL) of beam/column members and beam-column joints. A two-story frame structure reduced by a 1:3 scale was further tested through a shake-table (seismic simulator) using multiple levels of simulated earthquake motions. One model conformed to all the ACI-318 requirements for IMRF, whereas the second model used lower-strength concrete in the beam/column members outside PHL. The acceleration time history of the 1994 Northridge earthquake was selected and scaled to multiple levels for shake-table testing. This study reports the observed damage mechanism, lateral strength-displacement capacity curve, and the computed response parameters for each model. The tests verified that nonlinearity remained confined to beam/column ends, i.e., member joint interface. Calculated response modification factors were 11.6 and 9.6 for the code-conforming and concrete strength deficient models. Results show that the RC-ECC frame's performance in design-based and maximum considered earthquakes; without exceeding maximum permissible drift under design-base earthquake motions and not triggering any unstable mode of damage/failure under maximum considered earthquakes. This research also indicates that the introduction of ECC in PHL of the beam/column members' detailing may be relaxed for the IMRF structures.

차체구조부재용 알루미늄 CFRP 혼성사각부재의 축 압궤 특성 (Axial Collapse Characteristics of Aluminum CFRP Compound Square Members for Vehicle Structural Members)

  • 이길성;차천석;편석범;양인영;심재기
    • 대한기계학회논문집A
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    • 제29권10호
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    • pp.1329-1335
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    • 2005
  • An aluminum or CFRP (Carbon Fiber ReinfDrced Plastics)is representative one of light-weight materials but its axial collapse mechanism is different from each other. The aluminum member absorbs energy by stable plastic deformation, while the CFRP member absorbs energy by unstable brittle failure with higher specific strength and stiffness than those in the aluminum member. In an attempt to achieve a synergy effect by combining the two members, aluminum CFRP compound square members were manufactured, which are composed of aluminum members wrapped with CFRP outside aluminum square members with different fiber orientation angle and thickness of CFRP, and axial collapse tests were performed fur the members. The axial collapse characteristics of the compound members were analyzed and compared with those of the respective aluminum members and CFRP members. Test results showed that the collapse of the aluminum CFRP compound member complemented unstable brittle failure of the CFRP member due to ductile characteristics of the inner aluminum member. The collapse modes were categorized into four modes under the iuluence of the fiber orientation angle and thickness of CFRP. The absorbed energy Per unit mass, which is in the light-weight aspect was higher in the aluminum CFRP compound member than that in the aluminum member and the CFRP member alone.

Damage assessment of buildings after 24 January 2020 Elazığ-Sivrice earthquake

  • Nemutlu, Omer Faruk;Balun, Bilal;Sari, Ali
    • Earthquakes and Structures
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    • 제20권3호
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    • pp.325-335
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    • 2021
  • The majority of Turkey's geography is at risk of earthquakes. Within the borders of Turkey, including the two major active faults contain the North-Eastern and Eastern Anatolia, earthquake, threatening the safety of life and property. On January 24, 2020, an earthquake of magnitude 6.8 occurred at 8:55 p.m. local time. According to the data obtained from the stations in the region, peak ground acceleration in the east-west direction was measured as 0.292 g from the 2308 coded station in Sivrice. It is thought that the earthquake with a magnitude of Mw 6.8 was developed on the Sivrice-Puturge segment of the Eastern Anatolian Fault, which is a left lateral strike slip fault, and the tear developed in an area of 50-55 km. Aftershocks ranging from 0.8 to 5.1 Mw occurred following the main shock on the Eastern Anatolian Fault. The earthquake caused severe structural damages in Elazığ and neighboring provinces. As a result of the field investigations carried out in this study, significant damage levels were observed in the buildings since it did not meet the criteria in the earthquake codes. Within the study's scope, the structural damage cases in reinforced concrete and masonry structures were investigated. Many structural deficiencies and mistakes such as non-ductile details, poor concrete quality, short columns, strong beams-weak columns mechanism, large and heavy overhangs, masonry building damages and inadequate reinforcement arrangements were observed. Requirements of seismic codes are discussed and compared with observed earthquake damage.

Seismic behavior of non-seismically designed eccentric reinforced concrete beam-column joints

  • Liu, Ying;Wong, Simon H.F.;Zhang, Hexin;Kuang, J.S.;Lee, Pokman;Kwong, Winghei
    • Earthquakes and Structures
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    • 제21권6호
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    • pp.613-625
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    • 2021
  • Non-seismically designed eccentric reinforced concrete beam-column joints were extensively used in existing reinforced concrete frame buildings, which were found to be vulnerable to seismic action in many incidences. To provide a fundamental understanding of the seismic performance and failure mechanism of the joints, three 2/3-scale exterior beam-column joints with non-seismically designed details were cast and tested under reversed cyclic loads simulating earthquake excitation. In this investigation, particular emphasis was given on the effects of the eccentricity between the centerlines of the beam and the column. It is shown that the eccentricity had significant effects on the damage characteristics, shear strength, and displacement ductility of the specimens. In addition, shear deformation and the strain of joint hoops were found to concentrate on the eccentric face of the joint. The results demonstrated that the specimen with an eccentricity of 1/4 column width failed in a brittle manner with premature joint shear failure, while the other specimens with less or no eccentricity failed in a ductile manner with joint shear failure after beam flexural yielding. Test results are compared with those predicted by three seismic design codes and two non-seismic design codes. In general, the codes do not accurately predict the shear strength of the eccentric joints with non-seismic details.

단순지지 RC 깊은 보 부정정 스트럿-타이 모델의 하중분배율- (I) 하중분배율의 제안 (Load Distribution Ratios of Indeterminate Strut-Tie Models for Simply Supported RC Deep Beams - (I) Proposal of Load Distribution Ratios)

  • 김병헌;윤영묵
    • 대한토목학회논문집
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    • 제28권2A호
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    • pp.259-267
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    • 2008
  • 철근콘크리트 깊은 보는 콘크리트와 전단철근에 의한 전단저항 메커니즘의 성능에 의해 극한강도가 지배된다. 깊은 보의 거동은 전단지간대 유효깊이의 비, 휨철근비, 하중점과 지지점의 조건, 그리고 사용재료의 성질 등의 여러 변수간의 복합적인 역학관계로 인해 매우 복잡하다. 본 논문에서는 이러한 깊은 보의 강도 및 거동 특성을 모두 반영하여 단순지지 철근콘크리트 깊은 보의 설계를 수행할 수 있는 부정정 스트럿-타이 모델을 제안하였다. 또한 현 스트럿-타이 모델 설계기준을 부정정 스트럿-타이 모델을 이용한 단순지지 철근콘크리트 깊은 보의 설계에 합리적으로 적용하기 위해 수직 트러스 메커니즘에 의해 전달되는 하중의 크기 즉 부정정 스트럿-타이 모델의 하중분배율을 제안하였다. 하중분배율의 결정 시 단순지지 철근콘크리트 깊은 보의 전단에 대한 연성파괴거동을 확보하기 위하여 깊은 보의 전단저항 메커니즘을 구성하는 콘크리트 스트럿과 수직철근 타이가 동시에 파괴된다는 전단평형철근비 개념을 도입하였으며, 다양한 수치해석결과를 바탕으로 단순지지 깊은 보의 강도 및 거동에 영향을 미치는 전단지간대 유효깊이의 비, 휨철근비, 그리고 콘크리트의 압축강도 등의 설계변수를 고려하였다. 본 논문의 후속편에서는 기존의 여러 설계방법들과 본 연구에서 제안한 방법을 이용하여 파괴실험이 수행된 다양한 종류의 단순지지 깊은 보의 강도를 평가하고, 본 연구에서 제안한 방법의 적합성을 검증하였다.

LNG 저장탱크용 9% Ni강 용접부의 저온피로균열진전 특성 (Fatigue Crack Growth Characteristics of 9% Ni Steel Welded Joint for LNG Storage Tank at Low Temperature)

  • 김재훈;심규택;김영균;안병욱
    • Journal of Welding and Joining
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    • 제28권5호
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    • pp.45-50
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    • 2010
  • The fatigue crack growth characteristics of base metal and weld joint of 9% Ni steel for LNG storage tank was carried out using CT specimen at room temperature and $-162^{\circ}C$. Fatigue crack growth rate of base and weld metals at RT and $-162^{\circ}C$ was coincided with a single line independent of the change of stress ratio and temperature. In the region of lower stress intensity factor range, fatigue crack growth rate at $-162^{\circ}C$ was slower than that at RT, and the slop of fatigue crack growth rate at $-162^{\circ}C$ increased sharply with propagating of fatigue crack, fatigue crack growth rate at RT and $-162^{\circ}C$ was intersected near the region of $2{\times}10-4\;mm$/cycle, and after the intersection region, fatigue crack growth rate at $-162^{\circ}C$ was faster than that at RT. The micro-fracture mechanism using SEM shows the ductile striation in the stable crack growth region. Also the defects of weld specimen after fatigue testing were detected using the A scan of ultrasonic apparatus.

Study on the performance of concrete-filled steel tube beam-column joints of new types

  • Liu, Dianzhong;Li, Hongxian;Ren, Huan
    • Computers and Concrete
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    • 제26권6호
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    • pp.547-563
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    • 2020
  • In this paper, the influence of axial compression ratio on the mechanical properties of new type joints of side span of rectangular concrete-filled steel tubular column-H-type steel beam is studied. Two new types of side-span joints of rectangular concrete-filled steel tubular column-H-type steel beam are designed and quasi-static tests of five new type joints with 1:2 scale reduction ratios are performed. The axial compression ratio of joint JD1 is 0.3, 0.4 and 0.5, and the axial compression ratio of joint JD2 is 0.3 and 0.5. In the joint test, different axial forces were applied to the top of the column according to different axial compression ratios, and low-cyclic reciprocating load was applied on the beam. The stress and strain distribution, beam and column deformation, limit state, failure process, failure mechanism, stiffness degradation, ductile deformation and energy dissipation capacity of the joint were measured and analyzed. The results show that: with the increase of axial compression ratio, the ultimate bearing capacity of the joint decreases slightly, the plastic deformation decreases, and the stiffness and ductility decrease. According to the energy dissipation curve of the specimen, the equivalent damping coefficient also increases with the increase of axial compression ratio in a certain range, indicating that the increase of axial compression ratio can improve the seismic performance of the joint to a certain extent. The finite element method is used to simulate the joint test, and the test results are in good agreement with the simulation results.