• 제목/요약/키워드: concrete codes

검색결과 652건 처리시간 0.043초

Comparison between the Egyptian and international codes based on seismic response of mid- to high-rise moment resisting framed buildings

  • Ahmed Ibrahim;Ibrahim El-Araby;Ahmed I. Saleh;Mohammed Shaaban
    • Structural Engineering and Mechanics
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    • 제87권4호
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    • pp.347-361
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    • 2023
  • This research aims to assess the behavior of reinforced concrete (RC) residential buildings when moment-resisting frames (MRFs) are used as the lateral resisting system. This investigation was conducted using MIDAS Gen v.19.0. Buildings with various plan footprints (Square, Rectangular, Circular, Triangular, and Plus-Shaped), and different heights (15 m, 30 m, 45 m, and 60 m) are investigated. The defined load cases, the equivalent static lateral load pattern, and the response spectrum function were defined as stated by the American Standard (ASCE 7-16), the 1997 Uniform Building Code (UBC97), the Egyptian Code for Loads (ECP-201), and the European Standard (EC8). Extensive comparisons of the results obtained by the different codes (including the story displacement, the story drift, and the base shear) were undertaken; to assess the response of moment-resisting multi-story framed buildings under lateral loads. The results revealed that, for all study cases under consideration, both ECP-201 and EC8 gave smaller base shear, displacement, and drift by one third to one fourth, around one fourth, around one fifth, respectively for both the ELF and RSA methods if compared to ASCE 7-16 and UBC97.

장경간 PSC Beam 교량을 위한 고강도콘크리트의 개발에 관한 연구(II) (A Study on the Development of High Strength Concrete for Long Span PSC Beam Bridge(II))

  • 백상현;이형준;김기수;엄태선;정원기;황은영
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1998년도 가을 학술발표논문집(II)
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    • pp.291-296
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    • 1998
  • In the present study, the high strength concrete which is adequate for the long span PC beam above 40 meters has been developed. The optimum cement for high strength concerete was selected through laboratory tests and in-situ mock-up applications. The optical concrete mix design was performed, and the properties of fresh concrete and hardened concrete have been investigated. These results of laboratory study are analized and compared to domestic and foregn design codes and specifications. Finally, the developed high strength concrete was applied to half-scale PSC beams and showed good applicability in field conditions. It is conclude that hte developed high strength concrete can be applied to civil and architectural structures in the field applications.

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FRP 보강근을 사용한 콘크리트 보의 신뢰성 해석 (Reliability Assessment of Concrete Beams Reinforced with GFRP Bars)

  • 남호윤;서대원;한범석;신성우
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 춘계 학술발표회 제20권1호
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    • pp.185-188
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    • 2008
  • FRP 보강근은 철근부식의 근본적인 대책으로서 높은 인장강도와 내부식성이 우수한 재료이다. 그러나 낮은 탄성계수로 인해 부재의 처짐 및 균열이 철근콘크리트를 사용한 부재에 비하여 크게 발생하는 문제점이 있으며, 취성적인 성질로 인하여 파괴가 급격히 발생할 우려가 있다. 이러한 FRP 보강근을 구조부재에 사용하기 위해서는 기존의 철근콘크리트 부재설계와는 다른 개념이 필요하며, 이미 구조부재에 FRP 보강근을 사용하고 있는 외국의 경우 기존의 FRP 보강근을 사용한 구조부재의 설계를 위한 제안식들은 실험에 의한 계수의 추가 등으로 철근콘크리트 구조설계식을 수정하는 형태로서 제안되어지고 있다. 그러나 이러한 방법은 설계식을 복잡하게 하며, 철근콘크리트와 다른 FRP 보강근의 특성을 적절히 반영하고 있다고 할 수 없다. 또한, 기존의 설계식의 수정된 형태에서는 하중저감계수와 같은 안전계수(safety factor)를 제안하고 있으나, 정확한 신뢰성레벨은 알지 못하며, 실험에 의한 경험적 값의 성격이 강하다. 따라서 본 연구에서는 FRP bar를 사용한 보의 불확실성을 조사하고, FRP bar를 사용한 부재의 신뢰성지수를 평가하였다.

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An evolutionary approach for predicting the axial load-bearing capacity of concrete-encased steel (CES) columns

  • Armin Memarzadeh;Hassan Sabetifar;Mahdi Nematzadeh;Aliakbar Gholampour
    • Computers and Concrete
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    • 제31권3호
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    • pp.253-265
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    • 2023
  • In this research, the gene expression programming (GEP) technique was employed to provide a new model for predicting the maximum loading capacity of concrete-encased steel (CES) columns. This model was developed based on 96 CES column specimens available in the literature. The six main parameters used in the model were the compressive strength of concrete (fc), yield stress of structural steel (fys), yield stress of steel rebar (fyr), and cross-sectional areas of concrete, structural steel, and steel rebar (Ac, As and Ar respectively). The performance of the prediction model for the ultimate load-carrying capacity was investigated using different statistical indicators such as root mean square error (RMSE), correlation coefficient (R), mean absolute error (MAE), and relative square error (RSE), the corresponding values of which for the proposed model were 620.28, 0.99, 411.8, and 0.01, respectively. Here, the predictions of the model and those of available codes including ACI ITG, AS 3600, CSA-A23, EN 1994, JGJ 138, and NZS 3101 were compared for further model assessment. The obtained results showed that the proposed model had the highest correlation with the experimental data and the lowest error. In addition, to see if the developed model matched engineering realities and corresponded to the previously developed models, a parametric study and sensitivity analysis were carried out. The sensitivity analysis results indicated that the concrete cross-sectional area (Ac) has the greatest effect on the model, while parameter (fyr) has a negligible effect.

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.

팽창줄눈의 이론적 산정 (Theoretical Evaluation on Spacings of Expansion Joint)

  • 이홍재;이차돈
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1999년도 학회창립 10주년 기념 1999년도 가을 학술발표회 논문집
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    • pp.455-458
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    • 1999
  • It has been known that buildings having inappropriate expansion joints in their spacings may be subject to exterior damages due to extensive cracks on the outer walls under service loads, and structural damages due to excessive moment induced by temperature changes at ultimate load conditions. Rather inconsistent code provisions are available regarding spacings of expansion joints from different foreign structural codes and even worse, no quantiative measure on spacings is given in our codes for building structures. In order to establish a rational measure on the spacing of expansion joints, theoretical approaches are taken in this study. The developed theoretical formula is, then, converted to design chart for structural designer's convenience in its use. The chart considers both service and ultimate load stages.

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신뢰성 이론에 기초한 철근콘크리트 건축구조물의 하중 및 저하계수 설계식에 관한 연구 (Development of Probability-Based LRFD Formats for R.C Structure)

  • 김상효;조형근;배규웅
    • 콘크리트학회지
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    • 제4권4호
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    • pp.123-133
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    • 1992
  • 확률이론을 이용한 구조물 신뢰성에 관한 연구가 최근 급속히 발달함과 동시에 구조물의 저하능력과 작용하중들의 확률적 특성들에 대한 인식이 제고됨에 따라 여러나라에서 확률이론에 근거한 설계규준이 개발되고 있다. 작용하중이나 구조저항력의 확률적 특성을 보이고 있기 때문에 외국의 설계규준을 직접 도입하는 것은 여러 가지 문제점이 있으며, 따라서 국내현실에 적합한 설계규준에 대한 연구가 필요하다. 본 연구에서는 국내 철근콘크리트 구조물의 합리적인 설계규준을 제시하기 위하여 국내에서 수집\ulcorner분석된 구조부재강도 및 작용하중의 확률적 모형을 이용하여 현행 설계규준에 내포된 신뢰도를 검정하고 나아가 최적하중계수를 분석하였다.

Theoretical Development and Design Aids for Expansion Joint Spacings

  • Lee, Hong-Jae;Lee, Cha-Don
    • KCI Concrete Journal
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    • 제12권1호
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    • pp.101-111
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    • 2000
  • It has been a well known fact that buildings having inappropriate expansion joints in their spacings may be subject to exterior damages due to extensive cracks on the outer walls under service loads and structural damages due to excessive moment induced by temperature changes at ultimate load conditions. Unfortunately, consistent code provisions are unavailable regarding spacings of expansion joints from different foreign structural codes. And a more serious problem is that no quantitative measurements on spacings is given in our codes for building structures. In order to establish a rational guideline on the spacing of expansion joints, theoretical approaches are taken in this study. The developed theoretical formula is, then, converted to a design chart for structural designers' convenience in its use. The chart considers both service and ultimate load stages.

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인천대교 접속교 파일캡의 해석과 설계 (Analysis and Design of Approach Bridge Pile Cap in Incheon Bridge Project)

  • 송종영;신현양;최규용;송창희;이태열;심이수
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2006년도 추계 학술발표회 논문집
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    • pp.221-224
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    • 2006
  • For structural engineers, design of pile cap causes difficulties since design of this member is not specifically addressed by codes. In general, pile cap is considered as deep beam and designed for shear and moment at specified critical section. This is called as traditional section method. However, many international design codes suggest the application of strut tie method for better design of this member. In this paper, a brief application of strut tie method to the design check of pile cap structure designed by section method is presented. Unlike well known pile cap with single column, the example pile cap has two columns. In order to find out proper load path under various load condition, three dimensional finite element method was carried out. The result indicates that provided reinforcement by traditional section method has sufficient capacity to meet the design requirements.

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BIM 기반 형상코드를 이용한 기둥 철근길이 자동 산정 기초 연구 (A Basic Study of Automatic Rebar Length Estimate Algorithm of Columns by Using BIM-Based Shape Codes Built in Revit)

  • 오진혁;김선국
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2023년도 봄 학술논문 발표대회
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    • pp.21-22
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    • 2023
  • In reinforced concrete constructions, reinforcing bar generates more CO2 per unit weight than other construction materials. In particular, cutting and bending rebar is the main source of rebar waste in the construction industry. Rebar-cutting waste is inevitable during the construction of a reinforced concrete structure since the rebar is not manufactured as designed. Large amounts of waste can be avoided by utilizing optimal cutting patterns and schedules. This research provides a fundamental analysis of the automatic calculation of column rebar length using BIM-based shape codes to minimize cutting waste to near zero. By employing this approach in practice, it is possible to minimize the rate of rebar-cutting waste, reduce costs, shorten construction duration, and reduce CO2 emissions. In addition, the development of this research will serve as a clue for the development of BIM-based rebar layout automation algorithms.

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