• 제목/요약/키워드: deflection-to-span ratio

검색결과 94건 처리시간 0.023초

Balanced Ratio of Concrete Beams Internally Prestressed with Unbonded CFRP Tendons

  • Lee, C.;Shin, S.;Lee, H.
    • International Journal of Concrete Structures and Materials
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    • 제11권1호
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    • pp.1-16
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    • 2017
  • The compression or tension-controlled failure mode of concrete beams prestressed with unbonded FRP tendons is governed by the relative amount of prestressing tendon to the balanced one. Explicit assessment to determine the balanced reinforcement ratio of a beam with unbonded tendons (${\rho}^U_{pfb}$) is difficult because it requires a priori knowledge of the deformed beam geometry in order to evaluate the unbonded tendon strain. In this study, a theoretical evaluation of ${\rho}^U_{pfb}$ is presented based on a concept of three equivalent rectangular curvature blocks for simply supported concrete beams internally prestressed with unbonded carbon-fiber-reinforced polymer (CFRP) tendons. The equivalent curvature blocks were iteratively refined to closely simulate beam rotations at the supports, mid-span beam deflection, and member-dependent strain of the unbonded tendon at the ultimate state. The model was verified by comparing its predictions with the test results. Parametric studies were performed to examine the effects of various parameters on ${\rho}^U_{pfb}$.

DCOC를 이용한 RC 프레임의 최소경비설계 (Minimum Cost Design of Reinforced Concrete Frames Using DCOC)

  • 한상훈;구봉근;조홍동;오현수
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2000년도 봄 학술발표회 논문집
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    • pp.485-490
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    • 2000
  • This paper describes the application of discretized continuum-type optimality criteria (DCOC) for minimum-cost design of the reinforced concrete frame structures consisting of beams and columns. The cost of construction as objective function which includes the costs of concrete, reinforced steel and formwork is minimized. The design constraints include limits on the maximum deflection at a prescribed node, bending and shear strengths in beams, uniaxial bending strength of columns according to design codes(CEB/FIP, 1990). In the first stage, only beams with uniform cross-sectional parameters per span are considered. But the steel ratio is allowed to vary freely. The cross-sectional parameters and steel ratio in each column are assumed to be uniform for practical reasons. Optimality criteria is given based on the well known Kuhn-Tucker necessary conditions, followed by an iterative procedure for designs when the design variables are the depth and the steel ratio. The versatility of the DCOC technique has been demonstrated by considering numerical examples which have one-bay four-storey frame.

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케이블 스포크 휠 지붕 시스템의 비선형 거동 (Nonlinear Behaviors of Cable Spoke Wheel Roof Systems)

  • 박강근;이미향;박미진
    • 한국공간구조학회논문집
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    • 제17권1호
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    • pp.31-40
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    • 2017
  • The objective of this study is to analysis the mechanical characteristics and nonlinear behaviors on the geometric nonlinear behavior of a cable spoke wheel roof system for long span lightweight roof structures. The weight of a cable spoke wheel roof dramatically can reduce and the cable roof system can easily make the required rigidity and shape by the sag ratio and pretension forces. Determining the pretension and initial sag of cable roof system is essential in a design process and the shape of roof is changed by pretension. The nonlinear behavior of flexible cable system has greatly an affect on the sag and pretension. This paper will be carried out analyzing and comparing the tensile forces and deflection of a cable spoke wheel system for the large span retractable roof, and analyzed to deflections and tensile forces by the post height of center hub. The double arrangement of a spoke wheel system with reverse curvature works more effectively as a load bearing system, the pretension can easily increase the structural stiffness. The cable truss system can carry vertical load in up and downward direction, and act effectively as load bearing elements.

Behaviors of novel sandwich composite beams with normal weight concrete

  • Yan, Jia-Bao;Dong, Xin;Wang, Tao
    • Steel and Composite Structures
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    • 제38권5호
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    • pp.599-615
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    • 2021
  • The ultimate strength behaviour of sandwich composite beams with J-hooks and normal weight concrete (SCSSBJNs) are studied through two-point loading tests on ten full-scale SCSSBJNs. The test results show that the SCSSBJN with different parameters under two-point loads exhibits three types of failure modes, i.e., flexure, shear, and combined shear and flexure mode. SCSSBJN failed in different failure modes exhibits different load-deflection behaviours, and the main difference of these three types of behaviours exist in their last working stages. The influences of thickness of steel faceplate, shear span ratio, concrete core strength, and spacing of J-hooks on structural behaviours of SCSSBJN are discussed and analysed. These test results show that the failure mode of SCSSBJN was sensitive to the thickness of steel faceplate, shear span ratio, and concrete core strength. Theoretical models are developed to estimate the cracking, yielding, and ultimate bending resistance of SCSSBJN as well as its transverse cross-sectional shear resistance. The validations of predictions by these theoretical models proved that they are capable of estimating strengths of novel SCSSBJNs.

I형 PSC 거더교를 위한 구조해석 모델의 비교 (Comparison of Structural Analysis Models on PSC I-Girder Bridges)

  • 이환우;김광양;한상준;고동원
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2006년도 정기 학술대회 논문집
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    • pp.725-732
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    • 2006
  • This study has been started for the development of a refined live load distribution formula that has safety and precision toward I type prestressed concrete girder bridge. This type of bridge is mainly applied to short span bridges that are $25{\sim}40m$ in length. Based on various structure analysis models that are currently being applied as preceding studies for the development of live load distribution method. an analysis of flexural stiffness ratio for barrier and diaphragm has been performed. As the result of parametric analysis for the changes in flexural stiffness ratio, the effect of barrier on load distribution showed as insignificant in all structural analysis models while analyzing the deflection distribution. Also. the deflection distribution of the models with stiffness of 25% in which the diaphragm eccentricity is accounted for as same as the models with stiffness of 100% in which the diaphragm eccentricity is unaccounted for. This results are verified through the comparison with a experimental data.

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Shear behavior of the hollow-core partially-encased composite beams

  • Ye, Yanxia;Yao, Yifan;Zhang, Wei;Gao, Yue
    • Steel and Composite Structures
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    • 제44권6호
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    • pp.883-898
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    • 2022
  • A hollow-core partially-encased composite beam, named HPEC beam, is investigated in this paper. HPEC beam comprises I-beam, longitudinal reinforcement, stirrup, foam formwork, and cementitious grout. The foam formwork is located on both sides of the web, and cementitious grout is cast within the steel flange. To investigate the shear performance of HPEC beams, static loading tests of six HPEC beams and three control beams were conducted. The shear span ratio and the number of studs on the shear behavior of the HPECspecimens were studied. The failure mechanism was studied by analyzing the curves of shear force versus both deflection and strain. Based on the shear span ratio (𝜆), two typical shear failure modes were observed: shear compression failure when 1.6 ≤ 𝜆 ≤ 2; and diagonal compression failure when 𝜆 ≤ 1.15. Shear studs welded on the flange can significantly increase the shear capacity and integrity of HPEC beams. Flange welded shear studs are suggested. Based on the deformation coordination theory and superposition method, combined with the simplified modified compression field model and the Truss-arch model, Modified Deformation Coordination Truss-arch (M.D.C.T.) model was proposed. Compared with the shear capacity from YB9038-2006 and JGJ138-2016, the calculation results from M.D.C.T. model could provide reasonable predictions.

Buckling characteristics and static studies of multilayered magneto-electro-elastic plate

  • Kiran, M.C.;Kattimani, S.C.
    • Structural Engineering and Mechanics
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    • 제64권6권
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    • pp.751-763
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    • 2017
  • This article deals with the buckling behaviour of multilayered magneto-electro-elastic (MEE) plate subjected to uniaxial and biaxial compressive (in-plane) loads. The constitutive equations of MEE material are used to derive a finite element (FE) formulation involving the coupling between electric, magnetic and elastic fields. The displacement field corresponding to first order shear deformation theory (FSDT) has been employed. The in-plane stress distribution within the MEE plate existing due to the enacted force is considered to be equivalent to the applied in-plane compressive load in the pre-buckling range. The same stress distribution is used to derive the potential energy functional. The non-dimensional critical buckling load is accomplished from the solution of allied linear eigenvalue problem. Influence of stacking sequence, span to thickness ratio, aspect ratio, load factor and boundary condition on critical buckling load and their corresponding mode shape is investigated. In addition, static deflection of MEE plate under the sinusoidal and the uniformly distributed load has been studied for different stacking sequences and boundary conditions.

전단 보강이 없는 FRP RC보의 파괴 거동 (Failure Behavior of FRP RC Beams without Shear Reinforcements)

  • 이재훈;손현아;신성진
    • 콘크리트학회논문집
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    • 제22권2호
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    • pp.199-208
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    • 2010
  • FRP bar를 철근 대체제로 활용하기 위해서는 설계 기준의 확립이 시급하나 국내에서는 이 소재에 대한 기초 연구가 부족한 상황이다. 그러므로 2차에 걸쳐 전단보강이 없는 18개의 FRP RC와 4개의 기존 RC 실험체의 거동을 관찰하였다. 1차 실험은 휨 파괴 거동과 사용성 항목의 계측 자료 수집을 목적으로 시작되었다. 휨파괴를 유도하기 위하여 전단배근을 강화하는 대신 그로 인한 거동의 불확실성을 배제하기 위하여 전단지간비만을 조정하여 휨파괴를 유도하고, 전단배근을 사용하지 않기로 하였다. 실험 결과 거의 모든 실험체는 전단파괴 되었으며 실험계획에 적용한 ACI 440.1R과 CSA S806의 전단 강도식이 실제와 큰 편차가 있음을 확인하였다. 1차 실험의 결과를 근거로 2차 실험에서는 전단파괴거동을 집중적으로 관찰하였다. 표준 실험체의 제원은 길이 3,300 mm폭 ${\times}$ 800 mm ${\times}$ 유효깊이 200 mm, 순지간 2,800 mm, 전단지간 1,200 mm로 전단지간비는 6.0이며, 단순지지 조건으로 4점 재하실험을 수행하였다. 검토 변수에는 콘크리트 압축강도, 보강근의 종류 및 탄성계수, 전단지간비, 유효보강비, 다발 배근의 영향, 피복두께의 영향이 포함된다.

스터럽이 없는 GFRP 보강근 콘크리트 보에 대한 실험적 연구 (Experimental Study for GFRP Reinforced Concrete Beams without Stirrups)

  • 고성현
    • 한국구조물진단유지관리공학회 논문집
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    • 제18권2호
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    • pp.21-29
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    • 2014
  • 본 연구에서는 GFRP 이형 보강근으로 휨보강된 보의 거동, 파괴유형과 강도를 평가하였다. 4개의 보 실험체들을 제작하여 실험을 수행하였다. 4점 하중재하 조건으로 단순지지된 GFRP로 보강 콘크리트 실험체의 거동과 하중-처짐을 관찰하였다. 전단배근으로 인한 거동의 불확실성을 배제하기 위하여 스터럽을 배근하지 않고 실험체를 제작하였다. 실험 변수는 전단지간비와 유효보강비이다. 실험체의 길이는 3,300 또는 $1,950mm{\times}200mm{\times}240mm$이고 순지간 2,900 또는 1,000mm이다. 전단지간비는 6.5와 2.5이며, GFRP 유효 보강근비는 $1.126{\rho}_{fb}$, $2.250{\rho}_{fb}$, $3.375{\rho}_{fb}$$0.634{\rho}_{fb}$이다. 실험 결과 모든 실험체는 전단파괴 되었으며 실험계획에 적용한 ACI 440.1R, CSA S806와 ISIS의 전단 강도식이 실제와 편차가 있음을 확인하였다.

새그 비를 고려한 케이블 네트 구조물의 역학적 거동 (Mechanical Behavior of Cable Net Structures Considering Sag Ratio)

  • 박강근;이동우
    • 한국공간구조학회논문집
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    • 제16권3호
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    • pp.47-58
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    • 2016
  • Cable network system is a flexible lightweight structure which curved cables can transmit only tensile forces. The weight of cable roof dramatically can reduce when the length becomes large. The cable network system is too flexible, most cable systems are stabilized by pretension forces. The tensile force of cable system is greatly influenced by the sag ratio and pretension forces. Determining initial sag ratio of cable roof system is essential in a design process of cable structures. Final sag ratio and pretension depends on initial installed sag and on proper handling during installation. The design shape of cable system has an affect on the sag and pretension, and must be determined using well-defined design philosophy. This paper is carried out the comparative data of the deflection and tensile forces on the geometric non-linear analysis of cable network systems according to sag ratio. The study of cable network system is provided to technical informations for the design of a large span cable roof, analytical results are compared with the results of other researchers. Structural nonlinear analysis of systems having cable elements is relatively complex than other rigid structural systems because displacements are large as a reason of flexibility, initial prestress is applied to cables in order to increase the rigidity, and then divergence of nonlinear analysis occurs rather frequently. Therefore, cable network systems do not exhibit a typical nonlinear behavior, iterative method that can handle geometric nonlinearities are necessary.