• 제목/요약/키워드: moment strength

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HSB 강재 적용 강합성 복합단면 거더 정모멘트부의 휨저항강도 (Flexural Strength of Composite HSB Hybrid Girders in Positive Moment)

  • 조은영;신동구
    • 한국강구조학회 논문집
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    • 제23권3호
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    • pp.385-395
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    • 2011
  • 교량용 HSB 고성능 강재를 적용한 정모멘트부 강합성 복합단면 거더의 휨저항강도를 모멘트-곡률 해석법으로 산정하고 LRFD 휨저항강도 설계식에 의한 휨저항강도와 비교하여 기존 설계식의 적용성을 검토하였다. 강거더의 하부플랜지는 HSB800 강재를 상부플랜지와 복부판은 HSB600 강재를 적용하였다. 다양한 연성특성을 갖는 6,205개 단면을 임의추출법으로 선정하고 재료 비선형 모멘트-곡률 해석 프로그램을 이용하여 이들 단면에 대한 휨저항강도를 구하였다. 합성단면을 구성하는 콘크리트 재료는 CEB-FIP 모델로, HSB600 및 HSB800 강재는 탄소성-변형경화 재료로 모델링하였으며 콘크리트 바닥판의 압축강도는 30MPa, 45MPa 및 60MPa를 고려하였다. HSB 강재를 적용한 강합성 복합단면 거더의 연성계수와 콘크리트 바닥판의 압축강도에 따른 휨저항강도 특성을 분석하였다. HSB 고성능강을 적용한 이종 복합단면 강합성 거더의 모멘트-곡률해석 결과, 현 AASHTO LRFD 정모멘트부 휨저항강도 산정식을 적용할 수 있는 것으로 평가되었다.

비부착 강연선과 고강도 콘크리트를 적용한 철근콘크리트 외부 접합부의 내진 거동 (Seismic Behavior of RC Beam-Column Exterior Joints with Unbonded Tendons and High Strength Concrete)

  • 권병운;강현구
    • 한국지진공학회논문집
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    • 제19권6호
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    • pp.283-292
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    • 2015
  • In the moment frame subjected to earthquake loads, beam-column joint is structurally important for ductile behavior of a system. ACI Committee 352 proposed guidelines for designing beam-column joint details. The guidelines, however, need to be updated because of the lack of data regarding several factors that may improve the performance of joints. The purpose of this study is to investigate the seismic performance of reinforced concrete exterior joints with high-strength materials and unbonded tendons. Three specimens with different joint shear demand-to-strength ratios were constructed and tested, where headed bars were used to anchor the beam bars into the joint. All specimens showed satisfactory seismic behavior including moment strength of 1.3 times the nominal moment, ductile performance (ductility factor = at least 2.4), and sufficiently large dissipated energy.

Timber-FRP composite beam subjected to negative bending

  • Subhani, Mahbube;Globa, Anastasia;Moloney, Jules
    • Structural Engineering and Mechanics
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    • 제73권3호
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    • pp.353-365
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    • 2020
  • In the previous studies, the authors proposed the use of laminated veneer lumber - carbon fiber reinforced polymer (LVL-CFRP) composite beams for structural application. Bond strength of the LVL-to-CFRP interface and flexural strengthening schemes to increase the bending capacity subjected to positive and negative moment were discussed in the previous works. In this article, theoretical models are proposed to predict the moment capacity when the LVL-CFRP beams are subjected to negative moment. Two common failure modes - CFRP fracture and debonding of CFRP are considered. The non-linear model proposed for positive moment is modified for negative moment to determine the section moment capacity. For the debonding based failure, previously developed bond strength model for CFRP-to-LVL interface is implemented. The theoretical models are validated against the experimental results and then use to determine the moment-rotation behaviour and rotational rigidity to compare the efficacy of various strengthening techniques. It is found that combined use of bi- and uni-directional CFRP U-wrap at the joint performs well in terms of both moment capacity and rotational rigidity.

Effective Length of Reinforced Concrete Columns in Braced Frames

  • Tikka, Timo K.;Mirza, S. Ali
    • International Journal of Concrete Structures and Materials
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    • 제8권2호
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    • pp.99-116
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    • 2014
  • The American Concrete Institute (ACI) 318-11 permits the use of the moment magnifier method for computing the design ultimate strength of slender reinforced concrete columns that are part of braced frames. This computed strength is influenced by the column effective length factor K, the equivalent uniform bending moment diagram factor $C_m$ and the effective flexural stiffness EI among other factors. For this study, 2,960 simple braced frames subjected to short-term loads were simulated to investigate the effect of using different methods of calculating the effective length factor K when computing the strength of columns in these frames. The theoretically computed column ultimate strengths were compared to the ultimate strengths of the same columns computed from the ACI moment magnifier method using different combinations of equations for K and EI. This study shows that for computing the column ultimate strength, the current practice of using the Jackson-Moreland Alignment Chart is the most accurate method for determining the effective length factor. The study also shows that for computing the column ultimate strength, the accuracy of the moment magnifier method can be further improved by replacing the current ACI equation for EI with a nonlinear equation for EI that includes variables affecting the column stiffness and proposed in an earlier investigation.

내부 매입형 철골조로 보강된 철근콘크리트 건물의 내진 성능평가 (Seismic Performance Evaluation of Reinforced Concrete Buildings Strengthened by Embedded Steel Frame)

  • 김선웅;이경구
    • 한국지진공학회논문집
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    • 제24권1호
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    • pp.29-37
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    • 2020
  • This study is to investigate the effect of a retrofitted reinforced concrete frame with non-seismic details strengthened by embedded steel moment frames with an indirect joint, which mitigates the problems of the direct joint method. First, full-scale experiments were conducted to confirm the structural behavior of a 2-story reinforced concrete frame with non-seismic details and strengthened by a steel moment frame with an indirect joint. The reinforced concrete frame with non-seismic details showed a maximum strength of 185 kN at an overall drift ratio of 1.75%. The flexural-shear failure of columns was governed, and shear cracks were concentrated at the beam-column joints. The reinforced concrete frame strengthened by the embedded steel moment frames achieved a maximum strength of 701 kN at an overall drift ratio of 1.5% so that the maximum strength was about 3.8 times that of the specimen with non-seismic details. The failure pattern of the retrofitted specimen was the loss of bond strength between the concrete and the rebars of the columns caused by a prying action of the bottom indirect joint because of lateral force. Furthermore, methods are proposed for calculation of the specified strength of the reinforced concrete frame with non-seismic details and strengthened by the steel moment frame with the indirect joint.

Capacity and the moment-curvature relationship of high-strength concrete filled steel tube columns under eccentric loads

  • Lee, Seung-Jo
    • Steel and Composite Structures
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    • 제7권2호
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    • pp.135-160
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    • 2007
  • Recently, CFT column has been well-studied and reported on, because a CFT column has certain superior structural properties as well as good productivity, execution efficiency, and improved rigidity over existing columns. However, CFT column still has problems clearing the capacity evaluation between its steel tube member and high-strength concrete materials. Also, research on concrete has examined numerical values for high-strength concrete filled steel square tube columns (HCFT) to explain transformation performance (M-${\phi}$) when a short-column receives equal flexure-moment from axial stress. Moment-curvature formulas are proposed for HCFT columns based on analytic assumption described in this paper. This study investigated structural properties (capacity, curvature), through a series of experiments for HCFT with key parameters, such as strength of concrete mixed design (58.8 MPa), width-thickness ratio (D/t), buckling length to sectional width ratio (Lk/D) and concrete types (Zeolite, Fly-ash, Silica-fume) under eccentric loads. A comparative analysis executed for the AISC-LRFD, AIJ and Takanori Sato, etc. Design formulas to estimate the axial load (N)-moment (M)-curvature (${\phi}$) are proposed for HCFT columns based on tests results described in this paper.

보-기둥 접합부를 가진 철근 콘크리트 모멘트 골조의 비탄성 회전 능력에 대한 평가 (Performance Evaluation of Inelastic Rotation Capacity of Special Moment Frame Connections)

  • 이기학
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2004년도 춘계 학술발표회 제16권1호
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    • pp.688-691
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    • 2004
  • This study summarizes results of a research project aimed at investigating the inelastic rotation capacity of beam-column joints of reinforced concrete moment frames. A total of 28 specimens were classified as special moment frame connections based on the design and detailing requirements in the ACI 318-99 provisions. Then, the acceptance criteria, originally defined for steel moment frame connections in the AISC-97 Seismic Provisions, were used to evaluate the joint connections of concrete moment frames. Twenty seven out of 28 test specimens that satisfy the design requirements for special moment frame structures provided sufficient strength and are ductile up to a plastic rotation of $3\%$ without any major degradation in strength.

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Flexural behaviour of square UHPC-filled hollow steel section beams

  • Guler, Soner;Copur, Alperen;Aydogan, Metin
    • Structural Engineering and Mechanics
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    • 제43권2호
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    • pp.225-237
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    • 2012
  • This paper presents an experimental investigation of the flexural behavior of square hollow steel section (HSS) beams subjected to pure bending. Totally six unfilled and nine ultra high performance concrete (UHPC)-filled HSS beams were tested under four-point bending until failure. The effects of the steel tube thickness, the yield strength of the steel tube and the strength of concrete on moment capacity, curvature, and ductility of UHPC-filled HSS beams were examined. The performance indices named relative ductility index (RDI) and strength increasing factor (SIF) were investigated with regard to different height-to-thickness ratio of the specimens. The flexural strengths obtained from the tests were compared with the values predicted by Eurocode 4, AISC-LRFD and CIDECT design codes. The results showed that the increase in the moment capacity and the corresponding curvature is much greater for thinner HSS beams than thicker ones. Eurocode 4 and AISC-LRFD predict the ultimate moment capacity of the all UHPC-filled HSS beams conservatively.

고력볼트 접합이음 철골보의 탄소성거동 (Elasto-Plastic Behavior of Steel Beams with High Strength Bolted Splices)

  • 최성모;김진호;노원경
    • 한국강구조학회 논문집
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    • 제15권5호통권66호
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    • pp.531-539
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    • 2003
  • 노스리지 지진 발생시 구조체 손상이 발생했던 현장용접 모멘트골조와 달리 기둥-보 브라켓형식의 모멘트골조에는 지진의 영향을 조정하고 감소시키는 도구(tool)가 바로 보에 이음부(splice)이다. 지진발생 중에 보의 이음부는 연성의 퓨즈(fuse)로서 작용할 수 있고, 골조에 발생할 수 있는 흼모멘트를 포함한 힘의 크기를 제한할 수 있다. 국내에서는 모멘트 골조의 대부분이 기둥-보 브라켓 형식으로 이루어진다. 본 논문에서는 이음하지 않은 H형강보를 제작하여 단순가력 실험을 수행하였고, 고력볼트를 이용하여 전강도설계된 실물실험체와 플랜지볼트 열수를 각각 75%, 50% 및 0%로 줄여서 이음부를 제작한 H형강 보를 단순가력 실험을 수행하였다. 이들 실험을 통해 기둥-보 브라켓형식의 모멘트 골조에서 보의 이음부(Beam Splice)가 악보(Week Beam)의 임계위치(Critical Point)로서 작용할 수 있는 가능성을 타진하고자 하는 연구에 기초자료를 제공하는 것이 본 연구의 목적이다.

Seismic performance of high strength reinforced concrete columns

  • Bechtoula, Hakim;Kono, Susumu;Watanabe, Fumio
    • Structural Engineering and Mechanics
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    • 제31권6호
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    • pp.697-716
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    • 2009
  • This paper summarizes an experimental and analytical study on the seismic behavior of high strength reinforced concrete columns under cyclic loading. In total six cantilever columns with different sizes and concrete compressive strengths were tested. Three columns, small size, had a $325{\times}325$ mm cross section and the three other columns, medium size, were $520{\times}520$ mm. Concrete compressive strength was 80, 130 and 180 MPa. All specimens were designed in accordance with the Japanese design guidelines. The tests demonstrated that, for specimens made of 180 MPa concrete compressive strength, spalling of cover concrete was very brittle followed by a significant decrease in strength. Curvature was much important for the small size than for the medium size columns. Concrete compressive strength had no effect on the curvature distribution for a drift varying between -2% and +2%. However, it had an effect on the drift corresponding to the peak moment and on the equivalent viscous damping variation. Simple equations are proposed for 1) evaluating the concrete Young's modulus for high strength concrete and for 2) evaluating the moment-drift envelope curves for the medium size columns knowing that of the small size columns. Experimental moment-drift and axial strain-drift histories were well predicted using a fiber model developed by the authors.