• 제목/요약/키워드: axial compressive load

검색결과 349건 처리시간 0.026초

Elevated temperature resistance of concrete columns with axial loading

  • Alaskar, Abdulaziz;Alyousef, Rayed;Alabduljabbar, Hisham;Alrshoudi, Fahed;Mohamed, Abdeliazim Mustafa;Jermsittiparsert, Kittisak;Ho, Lanh Si
    • Advances in concrete construction
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    • 제9권4호
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    • pp.355-365
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    • 2020
  • The influence of temperature on the material of concrete filled columns (CFCs) under axial loading has been quantitatively studied in this research. CFCs have many various advantages and disadvantages. One of the important inefficiency of classic CFCs design is the practical lack of hooped compression under the operational loads because of the fewer variables of Poisson's rate of concrete compared to steel. This is the reason why the holder tends to break away from the concrete core in elastic stage. It is also suggested to produce concrete filled steel tube columns with an initial compressed concrete core to surpass their design. Elevated temperatures have essentially reduced the strengths of steel tubes and the final capacity of CFCs exposed to fire. Thus, the computation of bearing capacity of concrete filled steel tube columns is studied here. Sometimes, the structures of concrete could be exposed to the high temperatures during altered times, accordingly, outcomes have shown a decrement in compressive-strength, then an increase with the reduction of this content. In addition, the moisture content at the minimal strength is declined with temperature rising. According to Finite Element (FE), the column performance assessment is carried out according to the axial load carrying capacities and the improvement of ductility and strength because of limitations. Self-stress could significantly develop the ultimate stiffness and capacity of concrete columns. In addition, the design equations for the ultimate capacity of concrete columns have been offered and the predictions satisfactorily agree with the numerical results. The proposed based model (FE model of PEC column) 65% aligns with the concrete exposed to high temperature. Therefore, computed solutions have represented a better perception of structural and thermal responses of CFC in fire.

원형강관으로 구속된 콘크리트의 역학적 거동 특성에 관한 연구 (A Study on Properties of Mechanical Behaviors of Concrete Confined by Circular Steel Tube)

  • 박정민;김화중
    • 콘크리트학회지
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    • 제7권3호
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    • pp.199-210
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    • 1995
  • 충전형 강관콘크리트 구조는 강관과 콘크리트 두 재료의 이질적인 재료특성을 상호 보완적으로 발휘하여 구조적 성능향상을 꾀한 것으로서 제구조 특성상 우수한 구조형식이라 할 수 있다. 강관으로 구속된 콘크리트가 중심축력을 받게 되면 내부의 콘크리트는 압괴에 의한 체적 팽창을 외부의 강관에 의해 구속 받게 되므로 3축 압축응력 상태로 되어 압축강도가 증대된다. 또한 콘크리트의 압괴에 의한 탈락 현상이 방지되므로서 단면의 결손이 없어져 내력 저하가 작아진다는 잇점을 가진다. 따라서 본 연구에서는 원형강관으로 구속된 내부 콘크리트의 구조적 거동 특성을 규명하기 위한 것으로서 폭두께비와 충전 콘크리트의 강도를 주요 변수로 하여 일련의 실험을 통하여 강관으로 구속(3축 응력)된 콘크리트의 구조적 거동 특성을 고찰하였다. 일련의 실험을 통하여 얻어진 결론을 요약하면 다음과 같다. (1)강관에 의한 콘크리트의 구속효과는 강관의 폭두께비와 충전 콘크리트의 강도가 낮을수록 현저하며, 원형강관으로 구속된 내부 콘크리트는 최대내력시의 변형능력에 있어서 횡방향 구속이 없는 콘크리트보다 4~7배 정도까지 증대시켜 연성효과를 높일 수 있을 것으로 기대된다. (2)콘크리트의 구속계수를 이용하여 강관으로 구속된 내부 콘크리트의 강도와 콘트리트 충전강관 기둥의 최대내력을 산정할 수 있는 식을 제시하였다.

설계하중 사전재하 및 잔존강도 시험방법에 따른 고강도콘크리트의 고온특성 평가 - 제2보 변형특성을 중심으로 - (Evaluation for mechanical properties of high strength concrete by stressed test and stressed residual strength test - part 2 strain properties -)

  • 김영선;이태규;이대희;이승훈;김규용;김무한
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 춘계 학술발표회 제20권1호
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    • pp.761-764
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    • 2008
  • 본 연구는 40, 60, 80MPa급 고강도콘크리트의 변형특성에 있어서 $20{\sim}700^{\circ}C$ 범위로 상승되는 온도의 영향을 연구하는데 그 목적이 있다. 본 연구에서 시험의 종류는 설계하중 사전재하 및 잔존 강도 시험방법으로서 시험체를 가열하기 전에 극한강도의 25%하중을 사전재하한 후 가열을 실시하고, 가열하는 동안 하중을 유지하며, 목표온도에 도달한 후 고온상태 및 상온에서 24시간 냉각상태에서 시험체가 파괴될 때까지 재하를 실시했다. 시험은 W/B 46%, 32% 및 25%로 이루어진 콘크리트 시험체에 대하여 $20{\sim}700^{\circ}C$의 다양한 온도하에서 실시하였다. 시험결과 콘크리트 강도가 증가할수록 고온에서의 상대적인 탄성계수는 감소하였으며, 최대하중에서의 축방향 변형은 설계하중 사전 재하와 상관성이 높은 것으로 나타났다. 또한 온도상승에 따른 콘크리트의 열팽창변형은 압축강도뿐만 아니라 초기사전재하의 영향을 받는 것으로 나타났다.

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Physical test and PFC2D simulation of the failure mechanism of echelon joint under uniaxial compression

  • Sarfarazi, V.;Abharian, S.;Ghalam, E. Zarrin
    • Computers and Concrete
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    • 제27권2호
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    • pp.99-109
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    • 2021
  • Experimental and discrete element methods were used to investigate the effects of echelon non-persistent joint on the failure behaviour of joint's bridge area under uniaxial compressive test. Concrete samples with dimension of 150 mm×100 mm×50 mm were prepared. Uniaxial compressive strength and tensile strength of concrete were 14 MPa and 1MPa, respectivly. Within the specimen, three echelon non-persistent notches were provided. These joints were distributed on the three diagonal plane. the angle of diagonal plane related to horizontal axis were 15°, 30° and 45°. The angle of joints related to diagonal plane were 30°, 45°, 60°. Totally, 9 different configuration systems were prepared for non-persistent joint. In these configurations, the length of joints were taken as 2 cm. Similar to those for joints configuration systems in the experimental tests, 9 models with different echelon non-persistent joint were prepared in numerical model. The axial load was applied to the model by rate of 0.05 mm/min. the results show that the failure process was mostly governed by both of the non-persistent joint angle and diagonal plane angle. The compressive strengths of the specimens were related to the fracture pattern and failure mechanism of the discontinuities. It was shown that the shear behaviour of discontinuities is related to the number of the induced tensile cracks which are increased by increasing the joint angle. The strength of samples increase by increasing both of the joint angle and diagonal plane angle. The failure pattern and failure strength are similar in both methods i.e. the experimental testing and the numerical simulation methods.

Effects of number and angle of T Shape non persistent cracks on the failure behavior of samples under UCS test

  • Sarfarazi, V.;Asgari, K.;Maroof, S.;Fattahi, Sh
    • Computers and Concrete
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    • 제29권1호
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    • pp.31-45
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    • 2022
  • Experimental and numerical simulation were used to investigate the effects of angle and number of T shape non-persistent crack on the shear behaviour of crack's bridge area under uniaxial compressive test. concrete samples with dimension of 150 mm×150 mm×40 mm were prepared. Within the specimen, T shape non-persistent notches were provided. 16 different configuration systems were prepared for T shape non-persistent crack based on two and three cracks. In these configurations, the length of cracks were taken as 4 cm and 2 cm based on the cracks configuration systems. The angle of larger crack related to horizontal axis was 0°, 30°, 60° and 90°. Similar to cracks configuration systems in the experimental tests, 28 models with different T shape non-persistent crack angle were prepared in numerical model. The length of cracks were taken as 4 cm and 2 cm based on the cracks configuration systems. The angle of larger crack related to horizontal axis was 0°, 15°, 30°, 45°, 60°, 75° and 90°. Tensile strength of concrete was 1 MPa. The axial load was applied to the model. Displacement loading rate was controlled to 0.005 mm/s. Results indicated that the failure process was significantly controled by the T shape non-persistent crack angle and crack number. The compressive strengths of the specimens were related to the fracture pattern and failure mechanism of the discontinuities. Furthermore, it was shown that the compressive behaviour of discontinuities is related to the number of the induced tensile cracks which are increased by increasing the crack number and crack angle. The strength of samples decreased by increasing the crack number. In addition, the failure pattern and failure strength are similar in both methods i.e. the experimental testing and the numerical simulation methods (PFC2D).

고강도 경량 48V MHEV 배터리 하우징 개발을 위한 구조시뮬레이션에 관한 연구 (A Study on Structural Simulation for Development of High Strength and Lightweight 48V MHEV Battery Housing)

  • 김용대;이정원;정의철;이성희
    • Design & Manufacturing
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    • 제17권1호
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    • pp.48-55
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    • 2023
  • In this study, on the structure simulation for manufacturing a high strength/light weight 48V battery housing for a mild hybrid vehicle was conducted. Compression analysis was performed in accordance with the international safety standards(ECE R100) for existing battery housings. The effect of plastic materials on compressive strength was analyzed. Three models of truss, honeycomb and grid rib for the battery housing were designed and the strength characteristics of the proposed models were analyzed through nonlinear buckling analysis. The effects of the previous existing rib, double-sided grid rib, double-sided honeycomb rib and double-sided grid rib with a subtractive draft for the upper cover on the compressive strength in each axial direction were examined. It was confirmed that the truss rib reinforcement of the battery housing was very effective compared to the existing model and it was also confirmed that the rib of the upper cover had no significant effect. In the results of individual 3-axis compression analysis, the compression load in the lateral long axis direction was the least and this result was found to be very important to achieve the overall goal in designing the battery housing. To reduce the weight of the presented battery housing model, the cell molding method was applied. It was confirmed that it was very effective in reducing injection pressure, clamping force and weight.

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사질토를 지나 풍화암에 소켓된 매입 PHC말뚝에서 지반의 허용압축지지력 산정도표 및 산정공식 개발에 관한 연구(VI) - 지반의 허용압축지지력 산정용 표해 또는 도해 - (A Study(VI) on the Development of Charts and Equations Predicting Bearing Capacity for Prebored PHC Piles Socketed into Weathered Rock through Sandy Soil Layers - Axial Compressive Bearing Capacity Prediction Table Solution or Chart Solution -)

  • 남문석;권오균;박민철;이창욱;최용규
    • 한국지반공학회논문집
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    • 제35권11호
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    • pp.75-95
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    • 2019
  • 본 연구에서는 사질토층을 지나 풍화암에 소켓된 매입 PHC말뚝에 대한 수치해석 결과를 분석하여 정리한 도표 또는 도해로부터 매입 PHC말뚝의 동원지지력을 구하는 방법을 제안하였다. 즉, 수치해석 결과인 하중-침하량 곡선에서 5% 직경에 해당하는 침하량에서 발현된 사질토층의 동원주면마찰력, 풍화암층의 동원주면마찰력과 동원선단지지력을 산정할 수 있는 표해 또는 도해를 제안하였다. 이때 허용압축지지력은 동원 지지력에 안전율 3.0을 적용하여 산정하였다. 사질토층을 지나 풍화암에 소켓된 매입 PHC말뚝의 허용압축지지력은 사질토층의 허용주면마찰력과 풍화암층의 허용주면마찰력 및 허용선단지지력을 합산하여 산정하는 것으로 제안하였고, 각 허용압축지지력 성분을 구할 수 있는 절차도 제시되어 있다. 본 연구에서 제안된 동원지지력 산정용 표해(또는 도해)를 사용할 경우, 적정 설계에서 PHC말뚝의 설계효율(DE)은 85%로 나타났으며, 따라서 최적 설계에서는 PHC말뚝의 장기허용압축하중(Pall) 까지도 활용할 수 있는 것으로 나타났다. 그리고 PHC말뚝의 우수한 압축하중 지지 성능을 효과적으로 활용하기 위하여 지반의 허용압축지지력(Qall)이 말뚝의 허용압축하중(Pall) 이상이 될 수 있도록 설계할 것을 권장하였다.

지점부 상부슬래브에 PS강선 긴장된 강 박스거더교의 구조적 특성 분석 (Structural Characteristics Analysis of Steel Box Girder Bridge being stressed the PS Steel Wires at the Upper Slab of the Intermediate Support)

  • 차태권;장일영
    • 한국구조물진단유지관리공학회 논문집
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    • 제25권2호
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    • pp.1-7
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    • 2021
  • 강 박스거더 교량의 연속지점부 바닥판은 상부플랜지와 합성되는 구조이며 장경간 교량에서는 지점부 바닥판에 인장균열이 발생할 수 있는 구조로서 내구성 저하 등의 문제가 발생하고 있다. 이는 장경간 적용시 고정하중 및 활하중의 영향으로 슬래브의 교축방향 인장응력이 설계인장강도를 초과하기 때문이다. 이에 지점부 슬래브에 교축방향 철근을 추가하여 인장균열을 제어하고 추가의 압축응력 도입이 필요하다. 이러한 문제점 해결을 위해 연속지점부 상부슬래브의 인장응력 구간에 PS강선 긴장으로 압축응력을 도입하는 강 박스거더교의 구조계를 제안하였고, 이에 따른 구조적 성능을 유한요소해석과 실물시험체의 강선긴장 실험을 통해서 비교 검증하였다. PS강선 긴장을 통해 부모멘트부에 발생하는 슬래브의 인장응력 및 균열을 제어할 수 있는 압축응력을 도입하면 기존 강 박스거더교에 비해 구조안전성 개선 및 내구성능을 강화할 수 있다.

The behavior of concrete filled steel tubular columns infilled with high-strength geopolymer recycled aggregate concrete

  • Rajai Z. Al-Rousan;Haneen M. Sawalha
    • Steel and Composite Structures
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    • 제51권6호
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    • pp.661-678
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    • 2024
  • The utilization of geopolymer recycled aggregate concrete (GRAC) as the infilled core of the concrete-filled steel tubular (CFST) columns provides superior economic and environmental benefits. However, limited research exists within the field of geopolymer recycled aggregate concrete considered a green and sustainable material, in addition to the limitation of the design guidelines to predict the behavior of such an innovative new material combination. Moreover, the behavior of high-strength concrete is different from the normal-strength one, especially when there is another material of high-strength properties, such as the steel tube. This paper aims to investigate the behavior of the axially loaded square high-strength GRACFST columns through the nonlinear finite element analysis (NLFEA). A total of thirty-two specimens were simulated using ABAQUS/Standard software with three main variables: recycled aggregate replacement ratio (0, 30, and 50) %, width-to-thickness ratios (52.0, 32.0, 23.4, and 18.7), and length-to-width ratio (3, 5, 9, and 12). During the analysis, the response in terms of the axial load versus the longitudinal strain was recorded and plotted. In addition, various mechanical properties were calculated and analyzed. In view of the results, it has been demonstrated that the mechanical properties of high-strength GRACFST columns such as ultimate load-bearing capacity, compressive stiffness, energy absorption capacity, and ductility increase with the increase of the steel tube thickness owing to the improvement of the confinement effect of the steel tube. In contrast, the incorporation of the recycled aggregate adversely affected the mentioned properties except the ductility, while the increase of the recycled aggregate replacement ratio improved the column's ductility. Moreover, it has been found that the increase in the length-to-width ratio significantly reduced both the failure strain and the energy absorption capacity. Finally, the obtained NLFEA results of the ultimate load-bearing capacity were compared with the corresponding predicted capacities by numerous codes. It has been concluded that AISC, ACI, and EC give conservative predictions for the ultimate load-bearing capacity since the confinement effect was not considered by these codes.

2축 편심 축력을 받는 고강도 콘크리트 기둥의 수정 등가응력블럭 (Modified Rectangular Stress Block for High Strength RC Columns to Axial Loads with Bidirectional Eccentricities)

  • 유석형;반병열;신성우
    • 콘크리트학회논문집
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    • 제15권2호
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    • pp.335-343
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    • 2003
  • 철근 콘크리트 보의 휨 해석 시 적용되는 콘크리트 압축연단의 극한변형률(${\varepsilon}$$_{cu}$) 과 등가응력블럭 계수(${\beta)$$_1$)는 1축 뿐 만 아니라 2축 휨 해석에도 적용될 수 있는 것으로 여러 실험결과를 통하여 검증되었다. 그러나 2축 휨을 받는 기둥 단면에서와 같이 압축영역이 비직사각형인 경우 극한변형률과 등가응력블럭 계수는 압축영역이 직사각형인 경우와 달라지게 되고, 이와 같은 압축영역 형태에 따른 콘크리트 응력분포 특성의 변화는 기둥과 같이 고축력을 받는 경우 단면의 휨 강도에 중요한 영향을 끼치게 된다. 그러나 ACI318-99에서 제시하는 기둥의 2축 휨 설계도표는 1축과 2축 휨 해석에 동일한 응력분포 특성치를 적용하여 산출되었다. 본 논문에서는 중립축 각도와 깊이에 따른 응력분포 특성을 파악하고 이를 합리적으로 수식화 함으로써 수정된 단면 소성해석 모델을 제시하였다. 또한 제시된 소성해석 모델을 적용한 기둥 단면해석 Program을 개발하고 해석 결과를 기존의 소성해석 모델 및 실험결과와 비교하였다.