• 제목/요약/키워드: ultimate capacity

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영구 앵커의 구조적 안정성에 관한 실험적 연구 (Experimental Study for the Structural Stability of Permanent Anchor)

  • 유남재;박병수;박찬덕;홍영길;이종용
    • 한국구조물진단유지관리공학회 논문집
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    • 제10권5호
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    • pp.87-98
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    • 2006
  • 본 연구는 풍화암에 근입된 영구 앵커의 극한인발력에 관한 연구를 수행하기 위하여 현장에서 실규모 인발시험을 실시한 실험 결과이다. 현장 실물 실험에서는 정착길이가 다른 4개의 앵커에 대한 하중-변위 곡선으로부터 극한인발력을 산정하였다. 또한, 앵커의 수용 여부를 결정하기 위해 단계별 최대하중에서 15분 동안의 크리프 시험을 실시하여 극한하중까지의 크리프치를 평가하였다. 그리고 풍화암에 근입된 영구 앵커의 파괴메카니즘을 규명하기 위해 지표면에 다이얼게이지를 설치하여 하중 변화에 따른 지반의 파괴 거동 범위를 측정하였다.

그라운드 앵커의 인발거동 및 파괴메카니즘에 대한 수치해석 (Numerical Analysis for the Pullout Behavior and Failure Mechanism of Ground Anchor)

  • 박병수;심도식
    • 한국방재학회 논문집
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    • 제10권2호
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    • pp.69-76
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    • 2010
  • 본 연구는 풍화암 지반에 근입되어 인발하중을 받는 앵커의 극한인발력 및 파괴메카니즘 등의 거동 예측에 관한 수치해석적 연구이다. 풍화암 지반에 앵커를 시공하고 앵커의 정착길이, 천공직경, 텐던직경을 변화시킨 현장 앵커시험 자료를 수집하고 이에 대한 유한차분의 수치모델링을 통하여 앵커의 거동에 영향을 주는 변수에 대하여 알아보았다. 또한 앵커의 거동에 영향을 주는 변수들 사이의 상관성을 분석하여 상관식을 제안하였으며 이 관계를 이용하여 앵커의 거동을 예측하고자 하였다. 수치해석결과 앵커의 정착길이 및 천공직경, 텐던직경이 증가할수록 극한하중이 선형 비례하는 결과를 나타내었다. 한편, 풍화암의 탄성계수를 변화시킨 수치해석 결과 하중-변위 및 극한하중의 변화는 10% 범위 이내의 값을 나타내어 탄성계수가 극한하중에 미치는 영향이 크지 않음을 나타내었다.

수평반복하중 실험을 이용한 근입된 얕은 기초의 회전거동 메커니즘 평가 (Evaluation of Rocking Mechanism for Embedded Shallow Foundation via Horizontal Slow Cyclic Tests)

  • 고길완;하정곤;박헌준;김동수
    • 한국지반공학회논문집
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    • 제32권8호
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    • pp.47-59
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    • 2016
  • 얕은 기초의 회전거동은 지진 시 상부 구조물의 지진하중을 줄이는 효과적인 방법으로 대두되고 있다. 그러나 회전거동의 메커니즘에 대한 이해부족과 항복거동으로 인한 지반변형 때문에 시공에 적용되지 못하고 있다. 본 연구에서는 원심모형실험을 이용한 수평반복하중 실험을 통해 세장비가 다른 시스템의 근입된 얕은 기초의 회전거동 특성을 평가하였다. 실험결과를 통해 기초의 회전거동으로 인한 하부지반면의 원형현상을 관찰하였으며, 이로 인해 기초의 최대 전도모멘트가 기초의 극한 모멘트 지지력과 같아지는 것을 알 수 있었다. 기초 저면에서 관측된 토압변화를 통해 항복거동으로 인한 수평거동과 회전거동의 연결(coupling)과 분리(decoupling)현상을 볼 수 있었다. 또한 기초의 회전각이 증가할수록 지반의 비선형성과 에너지 감쇠가 커짐을 알 수 있었고, 근입된 기초의 극한 모멘트 지지력이 지표면에 놓인 기초의 극한 모멘트 지지력보다 더 커지는 것을 확인하였다. 본 연구를 통해 기초의 회전거동을 이용한 내진 설계 시 보다 정확하고 적절한 기초의 극한 모멘트 지지력을 제시할 수 있을 것이라 판단된다.

Effect of hybrid fibers on flexural performance of reinforced SCC symmetric inclination beams

  • Zhang, Cong;Li, Zhihua;Ding, Yining
    • Computers and Concrete
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    • 제22권2호
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    • pp.209-220
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    • 2018
  • In order to evaluate the effect of hybrid fibers on the flexural performance of tunnel segment at room temperature, twelve reinforced self-consolidating concrete (SCC) symmetric inclination beams containing steel fiber, macro polypropylene fiber, micro polypropylene fiber, and their hybridizations were studied under combined loading of flexure and axial compression. The results indicate that the addition of mono steel fiber and hybrid fibers can enhance the ultimate bearing capacity and cracking behavior of tested beams. These improvements can be further enhanced along with increasing the content of steel fiber and macro PP fiber, but reduced with the increase of the reinforcement ratio of beams. The hybrid effect of steel fiber and macro PP fiber was the most obvious. However, the addition of micro PP fibers led to a degradation to the flexural performance of reinforced beams at room temperature. Meanwhile, the hybrid use of steel fiber and micro polypropylene fiber didn't present an obvious improvement to SCC beams. Compared to micro polypropylene fiber, the macro polypropylene fiber plays a more prominent role on affecting the structural behavior of SCC beams. A calculation method for ultimate bearing capacity of flexural SCC symmetric inclination beams at room temperature by taking appropriate effect of hybrid fibers into consideration was proposed. The prediction results using the proposed model are compared with the experimental data in this study and other literature. The results indicate that the proposed model can estimate the ultimate bearing capacity of SCC symmetric inclination beams containing hybrid fibers subjected to combined action of flexure and axial compression at room temperature.

Stiffener configurations of beam to concrete-filled tube column connections

  • Dessouki, Abdelrahim K.;Yousef, Ahmed H.;Fawzy, Mona M.
    • Steel and Composite Structures
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    • 제17권1호
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    • pp.83-103
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    • 2014
  • The objective of this research is to study the ultimate moment capacity of the connections between steel I-beams and concrete-filled steel tube columns using different stiffener configurations. The main parameters considered are column cross section shape, square or circular, and filling the column with concrete. This analytical study includes finite element models using ANSYS program taking geometric and material nonlinearities into consideration. These models are verified against the experimental results obtained from previous researches and current design guides. The results show that using proper stiffener configuration affects the stress distribution through the connection and increases the ultimate moment capacity of the connections. Also, circular column is advantageous than the square column for all stiffener configurations and dimensions.

고강도 콘크리트 기둥의 2계 거동에 관한 실험적 연구 (Experiments on Second -Order Behavior of High Strength Concrete Columns)

  • 김진근;양주경
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1992년도 가을 학술발표회 논문집
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    • pp.167-172
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    • 1992
  • To analyze the effects compressive strength of concrete and longitudinal steel ratio on second-order moment of columns, 30tied rein reinforced concrete columns with hinged ends were tested. The 80mm square cross section was used and the amount of eccentricity was 24mm. The compressive strengths of column specimens with slenderness ratios of 10, 60, and 100were 250, 648 and 880kg/$\textrm{cm}^2$, and the longitudinal steel ratios were 1.98%(4-D6) and 3.95%(8-D6). The ratio of ultimate load capacity to that of short column with the same eccentricity (Pu/Pn) was much decreased at high slenderness ratio with increasing the compressive strength of concrete. And the lateral displacement of slender column at the ultimate load was decreased as the strength was increased. These are due to that at high slenderness ratio the load capacity and behavior of column are affected by flexural rigidity. And, it was also found that with increasing steel ratio, the value of Pu/Pn and the lateral displacement at the ultimate load were larger for the same slenderness ratio.

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Experimental study on axial response of different pile materials in organic soil

  • Canakci, Hanifi;Hamed, Majid
    • Geomechanics and Engineering
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    • 제12권6호
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    • pp.899-917
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    • 2017
  • Sixty four tests were performed in a steel tank to investigate the axial responses of piles driven into organic soil prepared at two different densities using a drop hammer. Four different pile materials were used: wood, steel, smooth concrete, and rough concrete, with different length to diameter ratios. The results of the load tests showed that the shaft load capacity of rough concrete piles continuously increased with pile settlement. In contrast, the others pile types reached the ultimate shaft resistance at a settlement equal to about 10% of the pile diameter. The ratios of base to shaft capacities of the piles were found to vary with the length to diameter ratio, surface roughness, and the density of the organic soil. The ultimate unit shaft resistance of the rough concrete pile was always greater than that of other piles irrespective of soil condition and pile length. However, the ultimate base resistance of all piles was approximately close to each other.

Increasing the flexural capacity of RC beams using partially HPFRCC layers

  • Hemmati, Ali;Kheyroddin, Ali;Sharbatdar, Mohammad K.
    • Computers and Concrete
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    • 제16권4호
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    • pp.545-568
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    • 2015
  • High Performance Fiber Reinforced Cementitious Composites which are called HPFRCC, include cement matrices with strain hardening response under tension loading. In these composites, the cement mortar with fine aggregates, is reinforced by continuous or random distributed fibers and could be used for various applications including structural fuses and retrofitting of reinforced concrete members etc. In this paper, mechanical properties of HPFRCC materials are reviewed briefly. Moreover, a reinforced concrete beam (experimentally tested by Maalej et al.) is chosen and in different specimens, lower or upper or both parts of that beam are replaced with HPFRCC layers. After modeling of specimens in ABAQUS and calibration of those, mechanical properties of these specimens are investigated with different thicknesses, tensile strengths, tensile strains and compressive bars. Analytical results which are obtained by nonlinear finite analyses show that using HPFRCC layers with different parameters, increase loading capacity and ultimate displacement of these beams compare to RC specimens.

현장 축소모형 말뚝 시험을 이용한 선단지지력 예측 (Evaluation of Point Bearing Capacity using Field Model Pile Test)

  • 이창호;이우진;정훈준;한신인
    • 한국지반환경공학회 논문집
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    • 제6권3호
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    • pp.47-54
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    • 2005
  • 현재까지 많은 경우 아직도 실무에서의 말뚝 설계는 주로 경험적 지지력공식만을 이용하고 있다. 시공 후 말뚝의 지지력 확인은 품질관리 차원에서 실시하는 동적시험 및 정적시험 등을 통하여 가능하나 이는 시공 중 또는 시공 후에만 가능하다. 지반 조사단계에서 간단한 시험을 통하여 각 지층별로 말뚝의 선단지지력을 예측할 수 있다면 경험식이나 정적공식에 의한 예측보다 신뢰성 있는 말뚝의 설계가 가능할 것이다. 본 연구에서는 지반조사 단계에서 실시 가능한 간단한 막대형 축소모형말뚝에 대한 동적시험으로부터 실제 말뚝 지지층의 선단지지력 예측 시험법을 제시하고 정재하시험과의 비교를 통하여 예측된 선단지지력을 검증하였다. 시험 결과 축소모형말뚝시험과 정재하시험을 통해 예측된 단위극한선단지지력은 유사한 값을 보였으며, N값에 의해 예측된 단위극한선단지지력은 현장시험에 의해 측정된 단위선단극한지지력의 약 50%정도로 N값에 의한 지지력의 예측은 매우 보수적인 설계로 비합리적이며 비경제적인 말뚝설계가 됨을 알 수 있었다.

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Cyclic tests and numerical study of composite steel plate deep beam

  • Hu, Yi;Jiang, Liqiang;Zheng, Hong
    • Earthquakes and Structures
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    • 제12권1호
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    • pp.23-34
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    • 2017
  • Composite steel plate deep beam (CDB) is proposed as a lateral resisting member, which is constructed by steel plate and reinforced concrete (RC) panel, and it is connected with building frame through high-strength bolts. To investigate the seismic performance of the CDB, tests of two 1/3 scaled specimens with different length-to-height ratio were carried out under cyclic loads. The failure modes, load-carrying capacity, hysteretic behavior, ductility and energy dissipation were obtained and analyzed. In addition, the nonlinear finite element (FE) models of the specimens were established and verified by the test results. Besides, parametric analyses were performed to study the effect of length-to-height ratio, height-to-thickness ratio, material type and arrangement of RC panel. The experimental and numerical results showed that: the CDBs lost their load-carrying capacity because of the large out-of plane deformation and yield of the tension field formed on the steel plate. By increasing the length-to-height ratio of steel plate, the load-carrying capacity, elastic stiffness, ductility and energy dissipation capacity of the specimens were significantly enhanced. The ultimate loading capacity increased with increasing the length-to-height ratio of steel plate and yield strength of steel plate; and such capacity increased with decreasing of height-to-thickness ratio of steel plate and gap. Finally, a unified formula is proposed to calculate their ultimate loading capacity, and fitting formula on such indexes are provided for designation of the CDB.