• 제목/요약/키워드: fiber-reinforced bearing

검색결과 125건 처리시간 0.021초

고로슬래그 미분말을 이용한 알칼리자극제 기반의 보강그라우트재 개발 (Development of Alkali Stimulant-Based Reinforced Grouting Material from Blast Furnace Slag Powder)

  • 서혁;정수근;김대현
    • 지질공학
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    • 제31권1호
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    • pp.67-81
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    • 2021
  • 그라우팅 공법은 연약지반의 보강과 방수 및 지하수위저하 또는 상승과 진동으로 인한 침하 및 부등침하로 손상된 구조물의 지지력을 높이고 차수를 높이는 목적으로 사용된다. 본 연구는 보강섬유를 이용하여 그라우트재료의 강도와 경화시간을 증대시키기 위하여 고로슬래그 기반의 무시멘트 그라우트재를 개발하고자 하였다. 이와 관련하여 본 연구에서는 고로슬래그 3종 미분말의 알칼리 자극제인 수산화칼슘을 미분말 형태로 배합하여 사용하였고 수산화칼슘의 함유량은 고로슬래그 미분말 대비 10, 20, 30%까지 치환하여 사용하였다. 또한 보강섬유 유무에 따른 강도를 비교하기 위하여 각 섬유를 0.5%씩 추가하여 실험을 수행하였다. 보강섬유인 아라미드 및 탄소섬유 함유량이 증가함에 따라 일축압축강도가 증가하였는데 이는 그라우트재 내에 섬유에 의한 가교작용이 일축압축강도를 증가시킨 것으로 확인할 수 있다. 또한 알칼리자극제의 함유량이 증가할수록 일축압축강도가 증가하였으나 순수한 시멘트 100%일 때 보다는 낮은 강도를 확인할 수 있었다. 이는 알칼리자극제인 수산화칼슘이 고로슬래그 미분말과 반응했을 때 강도 증가에 영향을 미칠 수는 있으나, 시멘트와 비교하였을 때 미분말형태보다는 용액의 형태가 더 효과적이라는 것을 알 수 있다.

Experimental and numerical investigation of strengthened deficient steel SHS columns under axial compressive loads

  • Shahraki, Mehdi;Sohrabi, Mohammad Reza;Azizyan, Gholam Reza;Narmashiri, Kambiz
    • Structural Engineering and Mechanics
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    • 제67권2호
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    • pp.207-217
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    • 2018
  • In past years, numerous problems have vexed engineers with regard to buckling, corrosion, bending, and overloading in damaged steel structures. This article sets out to investigate the possible effects of carbon fiber reinforced polymer (CFRP) and steel plates for retrofitting deficient steel square hollow section (SHS) columns. The effects of axial loading, stiffness, axial displacement, the position and shape of deficient region on the length of steel SHS columns, and slenderness ratio are examined through a detailed parametric study. A total of 14 specimens was tested for failure under axial compression in a laboratory and simulated using finite element (FE) analysis based on a numerical approach. The results indicate that the application of CFRP sheets and steel plates also caused a reduction in stress in the damaged region and prevented or retarded local deformation around the deficiency. The findings showed that a deficiency leads to reduced load-carrying capacity of steel SHS columns and the retrofitting method is responsible for the increase in the load-bearing capacity of the steel columns. Finally, this research showed that the CFRP performed better than steel plates in compensating the axial force caused by the cross-section reduction due to the problems associated with the use of steel plates, such as in welding, increased weight, thermal stress around the welding location, and the possibility of creating another deficiency by welding.

Numerical and analytical investigation of parameters influencing the behavior of shear beams strengthened by CFRP wrapping

  • Ceyhun Aksoylu;Yasin Onuralp Ozkilic;Sakir Yazman;Mohammed Alsdudi;Lokman Gemi;Musa Hakan Arslan
    • Steel and Composite Structures
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    • 제47권2호
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    • pp.217-238
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    • 2023
  • In this study, a parametric study was performed considering material properties of concrete, material properties of steel, the number of longitudinal reinforcement (reinforcement ratio), CFRP ply orientations, a number of layers as variables by using ABAQUS. Firstly, the parameters used in the Hashin failure criteria were verified using four coupon tests of CFRP. Secondly, the numerical models of the beams strengthened by CFRP were verified using five experimental data. Finally, eighty numerical models and eighty analytic calculations were developed to investigate the effects of the aforementioned variables. The results revealed that in the case of using fibrous polymer to prevent shear failure, the variables related to reinforced concrete significantly affected the behavior of specimens, whereas the variables related to CFRP composite have a slight effect on the behavior of the specimens. As a result of numerical analysis, while the increase in the longitudinal tensile and compression reinforcement, load bearing capacity increases between 23.6%-70.7% and 5.6%-12.2%, respectively. Increase in compressive strength (29 MPa to 35 MPa) leads to a slight increase in the load-carrying capacity of the specimens between 4.6% and 7.2%. However, the decrease in the compressive strength (29 MPa to 20 MPa) significantly affected (between 6.4% and 8.1% decrease observed) the behavior of the specimens. As the yield strength increases or decreases, the capacity of specimens increase approximately 27.1% or decrease 12.1%. The effects of CFRP ply orientation results have been obtained as a negligible well approximately 3.7% difference. An increasing number of CFRP layers leads to almost no effect (approximately 2.8%) on the behavior of the specimen. Finally, according to the numerical analysis, the ductility values obtained between 4.0 and 6.9 indicate that the beams have sufficient ductility capacity.

고강도 확대머리 인장철근을 가지는 SFRC 깊은 보의 전단강도 (Shear Strength of SFRC Deep Beam with High Strength Headed Reinforcing Tensile Bars)

  • 김영록;이창용;김승훈
    • 한국구조물진단유지관리공학회 논문집
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    • 제23권5호
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    • pp.111-117
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    • 2019
  • 확대머리 SD600 고강도 인장철근으로 단부 정착된 SFRC 깊은보의 전단성능을 평가하기 위해 전단 실험을 수행하였다. 실험 변수는 주인장 철근의 단부 정착방법(확대머리 철근, 일자형 철근), 단부 정착길이, 전단보강근 유무 등이다. 전단경간비는 1을 가지는 실험체에 대한 전단실험결과, 모든 실험체는 초기 휨 균열이 발생한 후 경사균열이 진행되면서 최종적으로 압축전단파괴되었다. 확대머리 철근으로 기계적 정착된 실험체들이 일자형 철근 정착에 비하여 5.6~22.4% 더 큰 전단강도를 나타내었다. 확대머리 철근으로 기계적 정착된 실험체들에 대하여 최대하중의 75%까지는 지압응력이 전체 정착응력의 0.9~17.2%에 도달하였으나, 최대하중 시점에서 지압응력이 전체 정착응력의 22.4%~46%에 도달하여 큰 응력 부담률을 나타내었다. 이를 통하여 확대머리 지압응력에 의한 정착응력 증가가 전단강도에 큰 영향을 미침을 알 수 있다. 실험 전단강도가 실용식에 의한 전단강도의 2.68~4.65 배로 평가되어, 실용식이 전단내력을 안전측으로 평가하였다.

Geotechnical Engineering Progress with the Incheon Bridge Project

  • Cho, Sung-Min
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 세계 도시지반공학 심포지엄
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    • pp.133-144
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    • 2009
  • Incheon Bridge, 18.4 km long sea-crossing bridge, will be opened to the traffic in October 2009 and this will be the new landmark of the gearing up north-east Asia as well as the largest & longest bridge of Korea. Incheon Bridge is the integrated set of several special featured bridges including a magnificent cable-stayed girder bridge which has a main span of 800 m width to cross the navigation channel in and out of the Port of Incheon. Incheon Bridge is making an epoch of long-span bridge designs thanks to the fully application of the AASHTO LRFD (load & resistance factor design) to both the superstructures and the substructures. A state-of-the-art of the geotechnologies which were applied to the Incheon Bridge construction project is introduced. The most Large-diameter drilled shafts were penetrated into the bedrock to support the colossal superstructures. The bearing capacity and deformational characteristics of the foundations were verified through the world's largest static pile load test. 8 full-scale pilot piles were tested in both offshore site and onshore area prior to the commencement of constructions. Compressible load beyond 30,000 tonf pressed a single 3 m diameter foundation pile by means of bi-directional loading method including the Osterberg cell techniques. Detailed site investigation to characterize the subsurface properties had been carried out. Geotextile tubes, tied sheet pile walls, and trestles were utilized to overcome the very large tidal difference between ebb and flow at the foreshore site. 44 circular-cell type dolphins surround the piers near the navigation channel to protect the bridge against the collision with aberrant vessels. Each dolphin structure consists of the flat sheet piled wall and infilled aggregates to absorb the collision impact. Geo-centrifugal tests were performed to evaluate the behavior of the dolphin in the seabed and to verify the numerical model for the design. Rip-rap embankments on the seabed are expected to prevent the scouring of the foundation. Prefabricated vertical drains, sand compaction piles, deep cement mixings, horizontal natural-fiber drains, and other subsidiary methods were used to improve the soft ground for the site of abutments, toll plazas, and access roads. Light-weight backfill using EPS blocks helps to reduce the earth pressure behind the abutment on the soft ground. Some kinds of reinforced earth like as MSE using geosynthetics were utilized for the ring wall of the abutment. Soil steel bridges made of corrugated steel plates and engineered backfills were constructed for the open-cut tunnel and the culvert. Diverse experiences of advanced designs and constructions from the Incheon Bridge project have been propagated by relevant engineers and it is strongly expected that significant achievements in geotechnical engineering through this project will contribute to the national development of the longspan bridge technologies remarkably.

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