• 제목/요약/키워드: design strength

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Predictions of curvature ductility factor of doubly reinforced concrete beams with high strength materials

  • Lee, Hyung-Joon
    • Computers and Concrete
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    • 제12권6호
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    • pp.831-850
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    • 2013
  • The high strength materials have been more widely used in reinforced concrete structures because of the benefits of the mechanical and durable properties. Generally, it is known that the ductility decreases with an increase in the strength of the materials. In the design of a reinforced concrete beam, both the flexural strength and ductility need to be considered. Especially, when a reinforced concrete structure may be subjected an earthquake, the members need to have a sufficient ductility. So, each design code has specified to provide a consistent level of minimum flexural ductility in seismic design of concrete structures. Therefore, it is necessary to assess accurately the ductility of the beam sections with high strength materials in order to ensure the ductility requirement in design. In this study, the effects of concrete strength, yield strength of reinforcement steel and amount of reinforcement including compression reinforcement on the complete moment-curvature behavior and the curvature ductility factor of doubly reinforcement concrete beam sections have been evaluated and a newly prediction formula for curvature ductility factor of doubly RC beam sections has been developed considering the stress of compression reinforcement at ultimate state. Based on the numerical analysis results, the proposed predictions for the curvature ductility factor are verified by comparisons with other prediction formulas. The proposed formula offers fairly accurate and consistent predictions for curvature ductility factor of doubly reinforced concrete beam sections.

저수지 취수탑의 최적설계에 관한 연구(II) -강도설계법을 중심으로- (Optimum Design of the Intake Tower of Rerervoir -With Application of Strength Design Method-)

  • 김종옥;고재군
    • 한국농공학회지
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    • 제30권3호
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    • pp.82-94
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    • 1988
  • A growing attention has been paid to the optimum design of structures in recent years. Most studies on the optimum design of reinforced concrete structures has been mainly focussed to the design of structural members such as beams, slabs and columns, and there exist few studies that deal with the optimum design of large-scale concrete shell structures. The purpose of the present investigation is, therefore, to set up an efficient optimum design method for the large-scale reinforced concrete cylindrical shell structures like intake tower of reservoir. The major design variables are the dimensions and steel areas of each member of structures. The construction cost which is compo8ed of the concrete, steel, and form work costs, respectively, is taken as the objective function. The constraint equations for the design of intake-tower are derived on the basis of strength design method. The results obtained are summarized as follows 1. The efficient optimlzation algorithrns which can execute the automatic optimum design of reinforced concrete intake tower based on the strength design method were developed. 2. Since the objective function and design variables were converged to their optimum values within the first or second iteration, the optimization algorithms developed in this study seem to be efficient and stable. 3. When using the strength design method, the construction cost could be saved about 9% compared with working stress design method. Therefore, the reliability of algorithm was proved. 4. The difference in construction cost between the optimum designs with substructures and with entire structure was found to be small and thus the optimum design with substructures may conveniently be used in practical design. 5. The major active constraints of each structural member were found to be the 'bending moment constraint for slab, the minimum longitudinal steel ratio constraint for tower body and the shearing force, bending moment and maximum eccentricity constraints for footing, respectively. 6. The computer program developed in the present study can be effectively used even by an uneiperienced designer for the optimum design of reinforced concrete intake-tower on the basis of strength design method.

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유한요소해석에 의한 고강도 강재를 사용한 각형 콘크리트 충전 강관 기둥의 설계인자 분석 (Parametric Study on design Variables of Rectangular Concrete Filled Tubular Columns with High-Strength Steel)

  • 최현기;배백일;최윤철;최창식
    • 한국구조물진단유지관리공학회 논문집
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    • 제19권2호
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    • pp.10-21
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    • 2015
  • 합성구조의 안전성의 보장을 위해 대부분의 설계기준은 경험적 사실을 기반으로 강재의 설계기준항복강도의 상한선을 제시하고 있다. 그러나 세장비가 큰 콘크리트충전강관기둥과 같이 탄성 좌굴하중에 영향을 받는 부재의 경우 설계강도를 크게 낮게 평가함에 따라 비경제적 설계가 수행될 경우가 발생한다. 따라서 세장한 기둥의 경제적 설계를 위해 현행 설계기준에서 제시하고 있는 강재의 설계기준항복강도 이상의 항복강도를 보유한 강재가 사용될 경우 설계기준의 안전성에 대한 평가를 수행하였다. 다양한 경우에서의 높은 설계기준항복강도의 적용성 평가를 위하여 유한요소해석을 사용한 변수분석을 계획하였으며, 680MPa 급의 항복강도를 보유한 강재가 적용된 세장한 직사각형 콘크리트 충전 강관기둥의 실험을 수행하여 유한요소해석 모델의 적합성 평가와 고강도 강재의 적용성 평가를 수행하였다. 변수분석에 적용된 변수는 강재의 항복강도, 콘크리트의 설계기준압축강도, 강재의 두께와 세장비로 구성되었다. 각 변수들은 KBC 2009에 의한 강도와 비교되었다. 54개의 모델에 대한 변수분석 결과와 기 수행 연구결과들을 통해 세장한 직사각형 콘크리트 충전 강관기둥은 KBC에서 제안하고 있는 강재항복강도의 제한을 초과할 경우에도 안전하게 설계될 수 있는 것으로 나타났다.

파이프 서포트의 내력 산정 방안 (A Proposed method of the Strength Calculation of Pipe Support)

  • 이영욱;최순주
    • 한국안전학회지
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    • 제16권1호
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    • pp.59-64
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    • 2001
  • Even though there is a guideline for the required strength of pipe support in inspection, it does not mean the nominal strength which can be used for the form work design. And, Concrete Specification defines that the pipe support should be designed according to the steel design guidelines but the design details are not provided, such as buckling length and the sectional modulus, etc. For the better prediction of strength of pipe support, the slenderness ratio of support which reflects the boundary condition should be considered. In this paper, the elastic buckling formula based on the slenderness is derived. The formula contains the strength reduction factor that consider the strength deduction caused by initial lateral deformation and is 0.65 consistently regardless of boundary conditions. And the coefficient of effective buckling length is calculated from the experiment.

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철근콘크리트 보에 사용된 전단보강철근의 항복강도 제한에 대한 평가 (Evaluation on the Maximum Yield Strength of Steel Stirrups in Reinforced Concrete Beams)

  • 이진은;이정윤
    • 콘크리트학회논문집
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    • 제24권6호
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    • pp.685-693
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    • 2012
  • 현재 콘크리트설계기준에서는 전단보강철근의 항복강도를 제한하고 있다. 이 연구에서는 ACI318-08, EC2-02, CSA-04에서 제시하고 있는 전단설계기준을 이용한 계산값과 예제 실험체 데이터 값의 비교 분석을 통하여 각 기준의 전단보강철근 항복강도 제한의 상향조정에 대하여 판단해 보았다. 실험값과 계산값의 비교는 전단보강철근의 항복 강도를 제한하지 않았을 경우와 항복강도를 제한하였을 경우, 항복강도 및 철근비를 제한하였을 경우 세 가지로 나누어 분석하였다. 분석 결과는 전단보강철근의 항복강도를 제한하지 않았을 경우가 가장 실험값을 잘 예측하는 것으로 나타났다. 또한 항복강도를 기준으로 비교했을 때, 기준에서 제한하고 있는 항복강도 이상의 고강도에서도 실험값에 가까운 값을 예측함을 확인하였다. 따라서 기존의 전단설계수식에 고강도 전단보강철근의 강도를 적용하더라도 수식이 성립한다고 볼 수 있으며 기준상에서 제한하고 있는 항복강도를 상향조정하여도 적용상의 불리함이 없을 것으로 판단된다.

지오스트립/샌드페이퍼 계면에서의 마찰특성 평가 (Evaluation of Friction Properties between Geostrip/Sandpaper Interface)

  • 임지혜;변성원;전한용
    • 한국지반신소재학회논문집
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    • 제5권4호
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    • pp.27-33
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    • 2006
  • 흙 입자의 크기를 고려한 5종류의 샌드페이퍼를 사용하여 지오스트립/샌드페이퍼 계면에서의 마찰특성을 평가하였으며, 전단력에 의한 마찰계수와 마찰각 등을 구하였다. 설계강도가 각각 50, 70, 100KN/m인 3종류의 지오스트립이 사용되었으며, 입자 크기가 각각 P100, 220, 320, 400, 600인 5종류의 샌드페이퍼가 사용되었다. 지오스트립의 설계강도에 따라 전단강도는 큰 차이를 나타내지 않았으며, 이는 전단 시 접촉되는 지오스트립 표면이 강도에 따라 차이가 나지 않고 비슷하기 때문이다. 샌드페이퍼의 입자의 크기가 클수록 더 큰 전단강도 값을 나타내었으며, 지오스트립/P100 계면에서 가장 큰 값을 나타내었다. 끝으로 모든 시료의 경우 post-peak 강도 감소 현상이 나타났으며, 이는 전단 시험에 의한 지오스트립 표면 의 마모에 기인한다.

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콘크리트의 비틀림강도를 포함한 RC보의 공칭비틀림강도 (Nominal Torsional Moment Strength of RC Beam with Torsional Moment Strength of Concrete)

  • 박창규
    • 한국농공학회지
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    • 제44권3호
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    • pp.73-84
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    • 2002
  • Nominal shear strength of concrete beam is the combined strength of concrete shear strength and steel shear strength in current design code. But Torsional moment strength of concrete is neglected in calculation of the nominal torsional moment strength of reinforced concrete beam in current revised code. Tensile stress of concrete strut between cracks is still in effect due to tension stiffening effect. But the tensile stresses of concrete after cracking are neglected in bending and torsion in design. The torsional behavior is similar to the shear behavior in mechanics. Therefore the torsional moment strength of concrete should be concluded to the nominal torsional moment strength of reinforced concrete beam. To verify the validity of the proposed model, the nominal torsional moment strengths according to CEB, two ACI codes(89, 99) and proposed model are compared to experimental torsional strengths of 55 test specimens found in literature. The nominal torsional moment strengths by the proposed model show the best results.

신경망을 이용한 고강도 콘크리트 배합설계모델에 관한 연구 (A Study on Mix Design Model of High Strength Concrete using Neural Networks)

  • 이유진;이선관;김영수
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2012년도 추계 학술논문 발표대회
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    • pp.253-254
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    • 2012
  • The purpose of this study is to suggest and verify high-strength concrete mix design model applying neural network theory, in order to minimize effort and time wasted by using trial and error method utill now. There are 7 input and 2 output to predict mix design. 40 data of mix design were learned with back-propagation algorithm. Then they are repeatedly learned back-propagation in neural network theory. Also, to verify predicted model, we analyzed and compared value predicted from 60MPa mix design with value measured by actual compressive strength test.

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형상최적화 기법을 이용한 초고강도강판 성형용 프레스 금형의 구조설계 가이드라인 (Design Guideline for Press Tool Structure of Ultra-high Strength Steel Part with Shape Optimization Technique)

  • 강경훈;곽정환;배상범;김세호
    • 소성∙가공
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    • 제26권6호
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    • pp.372-377
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    • 2017
  • In this paper, an effective design procedure was proposed to design the rib of die structure for auto-body member with ultra-high strength steel (UHSS) having ultimate tensile strength (UTS) of 1.5 GPa. From analysis results of the die structure, structural safety of the die was evaluated with information such as displacement and von-Mises stress. It was concluded that the casting part could be designed in order to reduce tool deformation. A design guideline of the die structure was proposed, especially for the rib structure in the casting part with an optimization scheme and local reinforcement concept. Simulation result following the design guideline fully explained that stability of the tool structure could be obtained simultaneously with weight minimization.

현행 내진설계 규준에서 요구되는 수평강도의 평가 방법 (Method of Evaluation of the Strength Required in Current Seismic Design Code)

  • 한상환
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 1997년도 추계 학술발표회 논문집 Proceedings of EESK Conference-Fall 1997
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    • pp.193-200
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    • 1997
  • Current seismic design code is based of the assumption that the designed structures would be behaved inelastically during a severe earthquake ground motion. For this reason, seismic design forces calculated by seismic codes are much lower than the forces generated by design earthquakes which makes structures responding elastically. Present procedures for calculating seismic design forces are based on the use of elastic spectra reduced by a strength reduction factors known as "response modificaion factor". Because these factors were determined empirically, it is difficult to know how much inelastic behaviors of the structures exhibit. In this study, base shear forces required to maintain target ductility ratio were first calculated from nonlinear dynamic analysis on the single degree of freedom system. And then, base shear foeces specified in seismic design code compare with above results. If the strength(base shear) required strength should be filled by overstrength and/or redundancy. Therefore, overstrength of moment resisting frame structure will be estimated from the results of static nonlinear analysis(push-over analysis).analysis).

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