• 제목/요약/키워드: high strength hollow section

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100MPa급 초고강도 원심성형 각형보의 설계 및 제작기술 개발 (The Development of a 100 Mpa Class Ultra-high Strength Centrifugal Molded Square Beam Design and Manufacturing Technology )

  • 이두성;김성진;김정회
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권4호
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    • pp.11-22
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    • 2023
  • 본 연구에서는 원심성형 기법을 이용하여 구조용 콘크리트 각형보를 개발하였으며, 단면의 휨 강성을 확보하기 위하여 단면의 중 공률은 10 % 이하로 하며 이를 위하여 기존의 빈배합상태의 콘크리트가 아닌 고슬럼프(150~200 mm)의 물성을 가지며 설계강도가 100 MPa 이상인 콘크리트 배합비를 개발하여 적용하고, 원심성형 각형보를 제작하기 위한 특수거푸집을 제작하여 원심성형 각형보를 생산하였다. 생산된 원심성형 각형보는 원심성형 부재의 표준 휨 및 전단 시험기준에 따라 성능시험을 수행하였다. 4개의 시험체에 대한 정적재하시험 결과는 설계기준에서 제시하고 있는 단면의 공칭휨강도, 공칭전단강도 이상으로 나타나 초고강도 원심성형 각형보의 구조적인 신뢰성이 입증되었다.

중공 각재의 프레스 굽힘 변형 특성 (A Characteristics of Bending Deformation in HallowRectangular Tube by Press Die)

  • 이효영;김기성;허관도
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2007년도 추계학술대회 논문집
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    • pp.285-288
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    • 2007
  • In the recent years the using of low-density material such as high-strength Al alloy on the various industries is becoming light-weight. High strength and hollow Al alloy is good material for stiffness and recycling. Therefore the advanced manufacturing technology with Al alloy is continuously required in many industrial fields. In this study simplified hallow rectangular section of Al alloy is analyzed by FE analysis. Bending stress is affected punching and rotating of wing-die. The analysis of press bending is preformed at first. The elastic recovery value of component and stress distribution acting from the result of the bending angle of three types were obtained. The designed precesses were analyzed by the commercial FE code, Deform-3D. Forming dies for each process were designed and prototypes were manufactured by the verified forming process. Some of the important features of design parameters in the press bending were reviewed.

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Behavior of fibre reinforced cementitious material-filled steel tubular columns

  • Kharoob, O.F.;Taman, M.H.
    • Steel and Composite Structures
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    • 제23권4호
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    • pp.465-472
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    • 2017
  • This paper presents an experimental study, investigating the compressive behavior of glass-fibre reinforced and unreinforced cementitious material-filled square steel tubular (GFCMFST and CMFST) columns. The specimens were manufactured by using high performance cementitious materials without using coarse aggregate. The influence of adding glass-fibres to the mix on the behavior of both axially and eccentrically loaded columns is considered. It was found that adding glass fibre improvesthe confinement behavior, the axial compressive strength, the stiffness and the toughness of both axially and eccentrically loaded columns. The compressive strength of axially loaded columns is compared with strength predictions according to EC4 and the AISC specification. It was found that the design predictions according to EC4 and the AISC codes provide conservative results for CMFST and GFCMFST columns. Alternatively, the axial load-bending moment interaction diagrams specified in theEC4 are conservative for the eccentrically tubular CMFST and GFCMFST tested columns.

600MPa급 고강도 원형강관 부재의 성능 평가 (Experimental Behavior of Circular Tube Members with 600MPa High-strength Steel)

  • 이은택;조재영;심현주;김진호
    • 토지주택연구
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    • 제2권1호
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    • pp.47-52
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    • 2011
  • 현재 토목 및 건축구조에서 고성능 고강도 강에 대한 수요가 증가함에 따라 고성능 재료개발의 필요성이 증대되고 있다. 특히 초고층 건물과 장경간을 가지는 구조에서는 고강도, 고인성, 우수한 용접성 등이 요구된다. 이에 따라 현재 국내에서는 600MPa 급 강재의 개발이 진행 중에 있다. 그러나 고강도 강재는 일반 강재와는 전혀 다른 기계적 특성을 갖고 있다. 그러므로 고강도 강재를 구조물에 적용하기 위해서는 비탄성영역에서의 거동이 일반 강재와 동등한가를 확인해야 한다. 본 연구에서는 600MPa급 원형 강관의 기둥 및 보부재 실험을 통해 구조적 거동을 파악하였다. 각각 3개의 기둥 및 보 실험이 수행되었으며, 현행설계규준과의 적합성을 평가하였다.

Finite element analysis of slender HSS columns strengthened with high modulus composites

  • Shaat, Amr;Fam, Amir
    • Steel and Composite Structures
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    • 제7권1호
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    • pp.19-34
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    • 2007
  • This paper presents results of a non-linear finite element analysis of axially loaded slender hollow structural section (HSS) columns, strengthened using high modulus carbon-fiber reinforced polymer (CFRP) longitudinal sheets. The model was developed and verified against both experimental and other analytical models. Both geometric and material nonlinearities, which are attributed to the column's initial imperfection and plasticity of steel, respectively, are accounted for. Residual stresses have also been modeled. The axial strength in the experimental study was found to be highly dependent on the column's imperfection. Consequently, no specific correlation was established experimentally between strength gain and amount of CFRP. The model predicted the ultimate loads and failure modes quite reasonably and was used to isolate the effects of CFRP strengthening from the columns' imperfections. It was then used in a parametric study to examine columns of different slenderness ratios, imperfections, number of CFRP layers, and level of residual stresses. The study demonstrated the effectiveness of high modulus CFRP in increasing stiffness and strength of slender columns. While the columns' imperfections affect their actual strengths before and after strengthening,the percentage gain in strength is highly dependent on slenderness ratio and CFRP reinforcement ratio, rather than the value of imperfection.

Experimental Investigation on Post-Fire Performances of Fly Ash Concrete Filled Hollow Steel Column

  • Nurizaty, Z.;Mariyana, A.A.K;Shek, P.N.;Najmi, A.M. Mohd;Adebayo, Mujedu K.;Sif, Mohamed Tohami M.A;Putra Jaya, Ramadhansyah
    • 국제초고층학회논문집
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    • 제10권4호
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    • pp.335-344
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    • 2021
  • In structural engineering practice, understanding the performance of composite columns under extreme loading conditions such as high-rise bulding, long span and heavy loads is essential to accuratly predicting of material responses under severe loads such as fires or earthquakes. Hitherto, the combined effect of partial axial loads and subsequent elevated temperatures on the performance of hollow steel column filled fly ash concrete have not been widely investigated. Comprehensive test was carried out to investigate the effect of elevated temperatures on partial axially loaded square hollow steel column filled fly ash concrete as reported in this paper. Four batches of hollow steel column filled fly ash concrete ( 30 percent replacement of fly ash), (HySC) and normal concrete (CFHS) were subjected to four different load levels, nf of 20%, 30%, 40% and 50% based on ultimate column strength. Subsequently, all batches of the partially damage composite columns were exposed to transient elevated temperature up to 250℃, 450℃ and 650℃ for one hour. The overall stress - strain relationship for both types of composited columns with different concrete fillers were presented for each different partial load levels and elevated temperature exposure. Results show that CFHS column has better performance than HySC at ambient temperature with 1.03 relative difference. However, the residual ultimate compressive strength of HySC subjected to partial axial load and elevated temperature exposure present an improvement compared to CFHS column with percentage difference in range 1.9% to 18.3%. Most of HySC and CFHS column specimens failed due to local buckling at the top and middle section of the column caused by concrete crushing. The columns failed due to global buckling after prolong compression load. After the compression load was lengthened, the columns were found to fail due to global buckling except for HySC02.

Hysteretic behaviour of circular tubular T-joints with local chord reinforcement

  • Shao, Y.B.;Wang, Y.M.;Yang, D.P.
    • Steel and Composite Structures
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    • 제21권5호
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    • pp.1017-1029
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    • 2016
  • When a welded circular hollow section (CHS) tubular joint is subjected to brace axial loading, failure position is located usually at the weld toe on the chord surface due to the weak flexural stiffness of the thin-walled chord. The failure mode is local yielding or buckling in most cases for a tubular joint subjected to axial load at the brace end. Especially when a cyclic axial load is applied, fracture failure at the weld toe may occur because both high stress concentration and welding residual stress along the brace/chord intersection cause the material in this region to become brittle. To improve the ductility as well as to increase the static strength, a tubular joint can be reinforced by increasing the chord thickness locally near the brace/chord intersection. Both experimental investigation and finite element analysis have been carried out to study the hysteretic behaviour of the reinforced tubular joint. In the experimental study, the hysteretic performance of two full-scale circular tubular T-joints subjected to cyclic load in the axial direction of the brace was investigated. The two specimens include a reinforced specimen by increasing the wall thickness of the chord locally at the brace/chord intersection and a corresponding un-reinforced specimen. The hysteretic loops are obtained from the measured load-displacement curves. Based on the hysteretic curves, it is found that the reinforced specimen is more ductile than the un-reinforced one because no fracture failure is observed after experiencing similar loading cycles. The area enclosed by the hysteretic curves of the reinforced specimen is much bigger, which shows that more energy can be dissipated by the reinforced specimen to indicate the advantage of the reinforcing method in resisting seismic action. Additionally, finite element analysis is carried out to study the effect of the thickness and the length of the reinforced chord segment on the hysteretic behaviour of CHS tubular T-joints. The optimized reinforcing method is recommended for design purposes.

원형강관 플랜지 이음에 관한 실험적 연구 (Experimental Study on Circular Flange Joints in Tubular Structures)

  • 신창훈;한덕전
    • 한국구조물진단유지관리공학회 논문집
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    • 제6권4호
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    • pp.119-127
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    • 2002
  • 본 연구의 목적은 강관구조물에서 고력볼트로 인장접합되는 플랜지 이음의 거동을 연구하는데 목적이 있다. 9개의 플랜지 이음 실험체의 실험을 수행하였으며, 실험시 고력볼트의 변형율과 이음부의 변형율 그리고 변위를 측정하였다. 고력볼트의 변형율, 플랜지 사이에서 발생하는 지레반력 그리고 강관과 플랜지 판의 응력분포를 연구하였다. 원형강관 플랜지 이음 설계에 사용되는 기준식을 비교 분석하였다.

보강 철근 정착 홀을 갖는 합성 전단연결재를 적용한 콘크리트 충전 PHC말뚝의 전단성능 평가 (Shear Experiments on Concrete Filled PHC Pile with Composite Shear Connectors with Rebar Holes)

  • 김정회;박영식;민창식
    • 콘크리트학회논문집
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    • 제29권3호
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    • pp.259-266
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    • 2017
  • 본 연구는 PHC말뚝의 단점인 전단력을 보강한 기능성말뚝을 개발하여 보다 경제적이고 합리적인 말뚝의 현장 적용에 기여하고자 하였다. 본 연구를 통해 개발된 CFP말뚝은 링형 합성 전단연결재를 배치하고 PHC말뚝 중공부에 콘크리트를 속채움함으로써 말뚝의 전단성능을 증대시키고, PHC말뚝 내 보강철근(H13-8ea)과 말뚝 중공부의 보강철근(H19-8ea)을 배치하여 횡보강철근비 증대에 따른 전단강도를 향상시켰다. 또한, 속채움 콘크리트와 PHC말뚝의 합성거동을 위해 말뚝 보강철근의 정착 홀이 형성된 합성 전단연결재를 배치하여 보강철근의 다월력을 말뚝의 전단강도 증진에 효과적으로 반영시켰다. CFP말뚝의 전단설계와 성능을 검증하고자 도로교설계기준의 한계상태설계법(2012)을 적용한 전단강도를 산출하였고, 말뚝 시험규정인 KS F 4306에서 제시한 실험방법을 통해 결과값을 비교 검토하였다. CFP말뚝의 단면별 설계전단강도와 실험결과 각 시험체는 설계전단강도 대비 평균 2.20, 2.15, 2.05의 안전율을 확보하는 것으로 나타나 효과적인 전단강도 예측이 가능할 것으로 생각된다.

100MPa급 초고강도 원심성형 콘크리트의 내구성 평가를 위한 실험연구 (Experimental Study to Evaluate the Durability of 100 MPa Class Ultra-high Strength Centrifugal Molding Concrete)

  • 김정회;김성진;이두성
    • 한국구조물진단유지관리공학회 논문집
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    • 제28권1호
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    • pp.12-23
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    • 2024
  • 본 연구에서는 원심성형 기법을 이용하여 구조용 콘크리트 각형보를 개발하였으며, 단면의 휨강성을 확보하기 위하여 단면의 중공률은 10 %이하로 하며 이를 위하여 기존의 빈배합상태의 콘크리트가 아닌 고슬럼프(150~200)의 물성을 갖으며 설계강도가 100 MPa이상인 콘크리트 배합비를 개발하여 적용하였다. 피암터널이나 라멘소교량의 상부구조로 활용될 원심성형 PSC 각형보의 내구성을 조사하기 위하여 압축⧵강도 100 MPa급 초고강도 원심성형 콘크리트의 열화 및 내화학적 특성에 대한 내구성능을 평가하였다. 2022년과 2023년에 제작한 원심 성형 각형보 시험체에 대하여 염화물침투 저항성, 촉진탄산화 , 황산염침식 저항성, 동결융해 저항성, 스케일링 저항성 등 콘크리트의 내구성 시험을 수행하였다. 본 연구에서 검증한 내용을 고려해 볼 때 추후 제작단계에서 수밀성이 높아지는 원심성형 콘크리트의 내구성은 일반적인 콘크리트에 비해 우수한 것으로 조사되었다.