• 제목/요약/키워드: hollow sections

검색결과 131건 처리시간 0.027초

지관이 회전된 냉간성형 각형강관 T형 접합부의 최대내력(II)-주관 웨브 파괴모드- (Ultimate Strength of branch-rotated T-joints in Cold-formed Square Hollow Sections-Chord web failure mode-)

  • 배규웅;박금성;강창훈;문태섭
    • 한국강구조학회 논문집
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    • 제15권1호
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    • pp.69-76
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    • 2003
  • 본 논문에서 새로운 냉간성형 각형강관 T형 접합부의 최대내력과 변형제한치에 대한 연구이다. 새로운 접합부는 지관을 트러스 평면에 대하여 $45^{\circ}$회전시켜서 주관에 용접하는 형상이고, 지관 $45^{\circ}$회전형 T형 접합부 실험결과 중에서 주관 웨브 파괴가 지배하는 접합부만을 대상으로 설정하였다. $16.7{\leq}2{\gamma}(B/T){\leq}33.3$이고 $0.63{\leq}{\beta}(b_1/B){\leq}0.7$ 범위의 지관 $45^{\circ}$회전형 T형 접합부에 대하여, 최대내력을 정의를 위한 변형제한치는 주관폭의 3% 변형량(3%B) 으로 제안하였다. $0.63{\leq}{\beta}{\leq}0.7$ 범위의 기본형에 대한 기존의 항복선모델을 검토하고, 지관 $45^{\circ}$회전형에 대한 내력식을 제안하였다. 제안내력식은 기둥좌굴이론에 근거하고 있고, 냉간성형시 발생한 곡률부분을 고려하였다. 최종적으로 최적화된 주관단면 선택을 위한, 항복응력도와 $2{\gamma}$의 최적조건을 제안하였다.

강관 코아 합성 중공 기둥의 연성 거동 연구 (Ductility of Circular Hollow Columns with Internal Steel Tube)

  • 강영종;한승룡;박남회
    • 한국철도학회:학술대회논문집
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    • 한국철도학회 2002년도 춘계학술대회 논문집
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    • pp.183-188
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    • 2002
  • In locations where the cost or concrete is relatively high, or in situations where the weight or concrete members is to be kept to a minimum, it may be economical to use hollow reinforced concrete vertical members. Hollow reinforced concrete columns with low axial load, moderate longitudinal steel percentage, and a reasonably thick wall were found to perform in a ductile manner at the flexural strength, similar to solid columns. However, hollow reinforced concrete columns with high axial load, high longitudinal steel percentage, and a thin wall were found to behave in a brittle manner at the flexural strength, since the neutral axis is forced to occur away from the inside face of the tube towards the section centroid and, as a result, crushing of concrete occurs near the unconfined inside face of the section. If, however, a steel tube is placed near the inside face of a circular hollow column, the column can be expected not to fail in a brittle manner by disintegration of the concrete in the compression zone. Design recommendation and example by moment-curvature analysis program for curvature ductility are presented. Theoretical moment-curvature analysis for reinforced concrete columns, indicating the available flexural strength and ductility, can be conducted providing the stress-strain relation for the concrete and steel are known. In this paper, a unified stress-stain model for confined concrete by Mander is developed for members with circular sections.

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평금형을 통한 중공형재 압출의 유한요소 해석 (Finite Element Analysis for Extrusion of Hollow Shaped Section Through Square Die)

  • 이춘만;이승훈;조종래
    • 소성∙가공
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    • 제7권4호
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    • pp.375-381
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    • 1998
  • This paper presents development of finite element simulation program and analysis of hot extrusion through square dies with a mandrel. The design of extrusion dies is still an art rather than science. Die design for a new extrusion process is developed from through in-plant trials. In the present paper, a three-dimensional steady-state finite element simulation program is developed. Steady-state assumption is used for both the analyses of deformation and temperature. The developed program is effectively used to simulate hollow extrusion of several sections. Distributions of temperature effective strain rate, mean strain rate and mean stress are studied for an effective design of extrusion dies.

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Behavior and calculation on concrete-filled steel CHS (Circular Hollow Section) beam-columns

  • Han, Lin-Hai;Yao, Guo-Huang;Zhao, Xiao-Ling
    • Steel and Composite Structures
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    • 제4권3호
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    • pp.169-188
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    • 2004
  • A mechanics model is developed in this paper for concrete-filled steel CHS (circular hollow section) beam-columns. A unified theory is described where a confinement factor (${\xi}$) is introduced to describe the composite action between the steel tube and the filled concrete. The predicted load versus deformation relationship is in good agreement with test results. The theoretical model was used to investigate the influence of important parameters that determine the ultimate strength of concrete-filled steel CHS beam-columns. The parametric and experimental studies provide information for the development of formulas for the calculation of the ultimate strength of the composite beam-columns. Comparisons are made with predicted beam-columns strengths using the existing codes, such as LRFD-AISC-1999, AIJ-1997, BS5400-1979 and EC4-1994.

Flexural behaviour of square UHPC-filled hollow steel section beams

  • Guler, Soner;Copur, Alperen;Aydogan, Metin
    • Structural Engineering and Mechanics
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    • 제43권2호
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    • pp.225-237
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    • 2012
  • This paper presents an experimental investigation of the flexural behavior of square hollow steel section (HSS) beams subjected to pure bending. Totally six unfilled and nine ultra high performance concrete (UHPC)-filled HSS beams were tested under four-point bending until failure. The effects of the steel tube thickness, the yield strength of the steel tube and the strength of concrete on moment capacity, curvature, and ductility of UHPC-filled HSS beams were examined. The performance indices named relative ductility index (RDI) and strength increasing factor (SIF) were investigated with regard to different height-to-thickness ratio of the specimens. The flexural strengths obtained from the tests were compared with the values predicted by Eurocode 4, AISC-LRFD and CIDECT design codes. The results showed that the increase in the moment capacity and the corresponding curvature is much greater for thinner HSS beams than thicker ones. Eurocode 4 and AISC-LRFD predict the ultimate moment capacity of the all UHPC-filled HSS beams conservatively.

Buckling analysis of thin-walled circular hollow section members with and without longitudinal stiffeners

  • Cuong, Bui H.
    • Structural Engineering and Mechanics
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    • 제81권2호
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    • pp.231-242
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    • 2022
  • Numerical solutions for the linear buckling behavior of thin-walled circular hollow section members (CHS) with and without longitudinal stiffeners are presented using the semi-analytical finite strip method (SAFSM) which is developed based on Marguerre's shallow shell theory and Kirchhoff's assumption. The formulation of 3-nodal line finite strip is presented. The CHS members subjected to uniform axial compression, uniform bending, and combination of compression and bending. The buckling behavior of CHS is investigated through buckling curves which relate buckling stresses to lengths of the member. Effects of longitudinal stiffeners are studied with the change of its dimensions, position, and number.

Optimization of RC polygonal cross-sections under compression and biaxial bending with QPSO

  • de Oliveira, Lucas C.;de Almeida, Felipe S.;Gomes, Herbert M.
    • Computers and Concrete
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    • 제30권2호
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    • pp.127-141
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    • 2022
  • In this paper, a numerical procedure is proposed for achieving the minimum cost design of reinforced concrete polygonal column cross-sections under compression and biaxial bending. A methodology is developed to integrate the metaheuristic algorithm Quantum Particle Swarm Optimization (QPSO) with an algorithm for the evaluation of the strength of reinforced concrete cross-sections under combined axial load and biaxial bending, according to the design criteria of Brazilian Standard ABNT NBR 6118:2014. The objective function formulation takes into account the costs of concrete, reinforcement, and formwork. The cross-section dimensions, the number and diameter of rebar and the concrete strength are taken as discrete design variables. This methodology is applied to polygonal cross-sections, such as rectangular sections, rectangular hollow sections, and L-shaped cross-sections. To evaluate the efficiency of the methodology, the optimal solutions obtained were compared to results reported by other authors using conventional methods or alternative optimization techniques. An additional study investigates the effect on final costs for an alternative parametrization of rebar positioning on the cross-section. The proposed optimization method proved to be efficient in the search for optimal solutions, presenting consistent results that confirm the importance of using optimization techniques in the design of reinforced concrete structures.

Investigation on mechanical performance of flat steel plate-lightweight aggregate concrete hollow composite slab

  • Yang, Yong;Chen, Yang;Yang, Ye;Zeng, Susheng
    • Steel and Composite Structures
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    • 제31권4호
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    • pp.329-340
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    • 2019
  • An innovated type of the flat steel plate-lightweight aggregate concrete hollow composite slab was presented in this paper. This kind of the slab is composed of flat steel plate and the lightweight aggregate concrete slab, which were interfaced with a set of perfobond shear connectors (PBL shear connectors) with circular hollow structural sections (CHSS) and the shear stud connectors. Five specimens were tested under static monotonic loading. In the test, the influence of shear span/height ratios and arrangements of CHSS on bending capacity and flexural rigidity of the composite slabs were investigated. Based on the test results, the crack patterns, failure modes, the bending moment-curvature curves as well as the strains of the flat steel plate and the concrete were focused and analyzed. The test results showed that the flat steel plate was fully connected to the lightweight aggregate concrete slab and no obvious slippage was observed between the steel plate and the concrete, and the composite slabs performed well in terms of bending capacity, flexural rigidity and ductility. It was further shown that all of the specimens failed in bending failure mode regardless of the shear span/height ratios and the arrangement of CHSS. Moreover, the plane-section assumption was proved to be valid, and the calculated formulas for predicting the bending capacity and the flexural rigidity of the composite slabs were proposed on the basis of the experimental results.

강관 보강 중공 R.C 기둥의 연성 평가 해석 (Ductility Evaluation of Circular Hollow Reinforced Concrete Columns with Internal Steel Tube)

  • 한승륭;임남형;강영종;이규세
    • 한국강구조학회 논문집
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    • 제15권1호
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    • pp.1-8
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    • 2003
  • 콘크리트의 가격이 상대적으로 높고 콘크리트 부재의 중량이 중요시되는 곳에서 중공 기둥을 사용하는 것이 경제적이다. 낮은 축력비와 적당한 종방향 철근비에서의 중공기둥은 원형 R.C 기둥과 유사한 휨강도와 연성능력을 갖는다. 그러나 높은 종방향 철근비와 축력비를 갖는 중공기둥 안쪽면에서의 구속력 부족으로 인한 압괴로 취성적인 거동을 보인다. 그래서 중공기둥의 안쪽면에 강관을 삽입한다면 기둥의 취성적인 거동을 방지할 수 있다. 본 연구에서는 콘크리트 교각의 내부에 강관을 삽입하여, 재료비의 절감과 중량의 감소 및 중공교각의 연성을 증가시키고, 이의 해석을 위해 강관의 삽입효과를 나타낼 수 있는 해석 프로그램을 개발하여, 상용 프로그램의 원형기둥 및 중공기둥의 해석치와 비교하여 타당성을 입증하였다. 휨강도와 연성을 표현하기 위해서는 모멘트-곡률 해석법이 사용되었으며, 콘크리트의 구속효과를 나타내기 위해 Mander의 통합된 콘크리트 모델이 사용되었다. 이러한 결과를 토대로 하여 매개변수 해석을 수행하여 강관 보강 중공 R.C 기둥의 거동특성을 연구하였다.

각형강관 T형 접합부의 휨거동에 관한 실험 연구 (An Experimental Study on the Flexural Behavior for T-joints with Square Hollow Structural Sections)

  • 박금성;이상섭;최영환;배규웅
    • 한국강구조학회 논문집
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    • 제21권3호
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    • pp.211-219
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    • 2009
  • 비렌딜 트러스가 면내 휨모멘트 하중을 받는 지관 정방형의 각형강관 T형 접합부의 거동을 실험적으로 조사하기 위한 것이 본 논문의 목적이다. T형 접합부에서 각형강관 주관 플랜지면의 위에 각형강관 지관이 용접으로 접합되어 있다. 주요 변수로는 주관 두께에 대한 폭의 비($2{\gamma}$)로 ${16.7{\leq}2{\gamma}{\leq}33.3}$의 범위이고, 주관 폭에 대한 지관 폭의 비인 폭비($\beta$)로 ${0.40{\leq}{\beta}{\leq}0.71}$이다. 접합부에 면내 휨모멘트 하중이 작용하도록 총 9개의 실험체를 제작하여 실험하였다. 실험결과, 각형강관 지관 정방형의 T형 접합부에 대한 면내 휨강도는 주관 폭두께비와 폭비에 관계없이 주관 플랜지 휨변형에 의해 결정됨을 알 수 있다. 또한, 지관 정방형의 각형강관 T형 접합부의 면내 휨강도는 사용성에 의해 지배되는 것으로 나타나 면내 최대 휨강도는 1%B 변형시의 휨강도($M_{1%B}$)에 1.5배로 평가할 수 있는 것을 알 수 있다. 최종적으로 지관 정방형의 각형강관 T형 접합부에 대한 면내 휨강도는 주관의 폭두께비가 작을수록, 주관 폭에 대한 지관 폭의 비인 폭비가 클수록 접합부의 휨강도는 선형으로 증가하는 것으로 나타났다.