• 제목/요약/키워드: Flexural

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다층 층간분리된 복합적층보의 휨강성 감소 (Flexural Rigidity Reduction of Multi-Delaminated Composite Beams)

  • 박대효;백재욱;조백순
    • 한국강구조학회 논문집
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    • 제13권3호
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    • pp.233-244
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    • 2001
  • 본 연구에서는 다층 층간분리된 복합보의 휨강성 감소를 고찰하였다. 휨강성 감소를 평가하기 위해서 이론해석을 수행하였다. 층간분리가 복합보에 휨강성 감소에 주는 영향을 고찰하기 위해서 지배운동방정식이 유도되었고, 층간분리된 각각의 분할보는 연속조건을 이용한 반복관계를 이용하여 구해졌다. 복합적층보에 층간분리가 여러 층에서 발생한 경우에 대해 다양한 적층순서와 여러 가지 형태의 층간분리 형상으로 모델링하여 결과를 비교하였다. 다층 층간분리가 존재하는 적층복합보의 휨강성을 평가하는데 있어서 본 연구는 유용하게 활용될 수 있다.

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FRP-UHPC 복합 보강기법으로 보강된 RC 슬라브의 휨 파괴를 위한 설계 조건 (Flexural Failure Design Criteria for Retrofitted RC Slabs using FRP-UHPC Hybrid System)

  • 김정중;노혁천;마흐무드 레다 타하
    • 복합신소재구조학회 논문집
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    • 제3권2호
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    • pp.11-18
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    • 2012
  • This study proposes flexural failure design criteria of continuous slabs enhanced by a hybrid system of fiber reinforced polymer (FRP) and ultra high performance concrete (UHPC). The proposed hybrid retrofit system is designed to be placed at the top surface of the slabs for flexural strengthening of the sections in both positive and negative moment zones. The enhancing mechanisms of the proposed system for both positive and negative moment regions are presented. The neutral axis of the enhanced sections in positive moment zone at flexural failure is enforced to be in UHPC overlay for preventing the compression in FRP. From this condition, a relationship between design parameters of FRP and UHPC is established. Although the capacity of the proposed retrofit system to enhance flexural strength and ductility is confirmed through experiments of one-way RC slabs having two continuous spans, the retrofitted slabs failed in shear. To prevent this shear failure, a design criteria of flexural failure is proposed.

단시간과 장시간의 소결방법에 따른 지르코니아의 굴곡 강도와 미세구조의 변화 (The effect of short and long duration sintering method on microstructure and flexural strength of zirconia)

  • 이하빈;이태희;김지환
    • 대한치과기공학회지
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    • 제42권2호
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    • pp.73-79
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    • 2020
  • Purpose: The aim of this study was to investigate the influence of short and long duration sintering on microstructure and flexural strength of zirconia. Methods: To conduct three-point bending test, Zirconia specimens are milled according to ISO 6872 guidelines(N=18, n=9 per group). Two specimens group(n=8) is sintered for 10 hours(Standard schedule) and 3 hours(Speed schedule) at the peak temperature of 1550℃ with silicon carbide sintering furnace. Flexural strength of specimens are measured by instron. After coating each specimen(n=1), microstructure of specimens is observed using Scanning Electron Microscope(SEM). T-test was utilized to statistically assess the data. Results: The mean and standard deviation value of the flexural strength for standard schedule group are 578.15±57.48Mpa, that of speed schedule are 465.9±62.34Mpa. T-test showed significant differences in flexural strength between two zirconia specimen group which applied standard schedule and speed schedule respectively(p<0.05). Conclusion: The result of this study showed that the increase in sintering time led to increased grain size, and also to a positive effect on the flexural strength.

고강도 휨재의 강도와 연성에 관한 실험적 연구 (An Experimental Study on the Strengh and Ductility of High-Strength Flexural Members)

  • 이승준
    • 한국강구조학회 논문집
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    • 제13권1호
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    • pp.19-28
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    • 2001
  • 본 연구에서는 강구조 휨재의 강도와 연서이을 실험적인 방법으로 조사하였다. 휨재의 성능평가와 관련하여 총 9개의 시험체를 제작하고 실험을 실시하였다. 4개의 시험체는 구조용 강재 SM490을 이용하여 제작하였으며 5개의 시험체 제작에는 구조용 강재SM570이 이용하였다. 실험결과는 시험체의 강도와 연성에 초점을 두고 분석하였다. 실험결과는 모든 시험체가 현행 한계상태 설계기준의 공칭휨강도를 평균 1.22배 초과하는 충분한 휨강도를 보유하는 것으로 나타났다. 그러나 강재 SM570으로 제작된 콤팩트 단면의 시험체는 요구되는 연성을 나타내지 못하였다. 강재 SM570의 항복비가 0.9이었으며 이러한 항복비가 연성이 부족한 원인으로 추정되었다.

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Flexural stiffness of steel-concrete composite beam under positive moment

  • Ding, Fa-Xing;Liu, Jing;Liu, Xue-Mei;Guo, Feng-Qi;Jiang, Li-Zhong
    • Steel and Composite Structures
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    • 제20권6호
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    • pp.1369-1389
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    • 2016
  • This paper investigates the flexural stiffness of simply supported steel-concrete composite I-beams under positive bending moment through combined experimental, numerical, and different standard methods. 14 composite beams are tested for experimental study and parameters including shear connection degree, transverse and longitudinal reinforcement ratios, loading way are also investigated. ABAQUS is employed to establish finite element (FE) models to simulate the flexural behavior of composite beams. The influences of a few key parameters, such as the shear connection degree, stud arrangement, stud diameter, beam length, loading way, on the flexural stiffness is also studied by parametric study. In addition, three widely used standard methods including GB, AISC, and British standards are used to estimate the flexural stiffness of the composite beams. The results are compared with the experimental and numerical results. The findings have provided comprehensive understanding of the flexural stiffness and the modelling of the composite beams. The results also indicate that GB 50017-2003 could provide better results in comparison to the other standards.

Post-peak behavior and flexural ductility of doubly reinforced normal- and high-strength concrete beams

  • Pam, H.J.;Kwan, A.K.H.;Ho, J.C.M.
    • Structural Engineering and Mechanics
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    • 제12권5호
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    • pp.459-474
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    • 2001
  • The complete moment-curvature curves of doubly reinforced concrete beams made of normal- or high-strength concrete have been evaluated using a newly developed analytical method that takes into account the stress-path dependence of the constitutive properties of the materials. From the moment-curvature curves and the strain distribution results obtained, the post-peak behavior and flexural ductility of doubly reinforced normal- and high-strength concrete beam sections are studied. It is found that the major factors affecting the flexural ductility of reinforced concrete beam sections are the tension steel ratio, compression steel ratio and concrete grade. Generally, the flexural ductility decreases as the amount of tension reinforcement increases, but increases as the amount of compression reinforcement increases. However, the effect of the concrete grade on flexural ductility is fairly complicated, as will be explained in the paper. Quantitative analysis of such effects has been carried out and a formula for direct evaluation of the flexural ductility of doubly reinforced concrete sections developed. The formula should be useful for the ductility design of doubly reinforced normal- and high-strength concrete beams.

Combined strain gradient and concrete strength effects on flexural strength and ductility design of RC columns

  • Chen, M.T.;Ho, J.C.M.
    • Computers and Concrete
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    • 제15권4호
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    • pp.607-642
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    • 2015
  • The stress-strain relationship of concrete in flexure is one of the essential parameters in assessing the flexural strength and ductility of reinforced concrete (RC) columns. An overview of previous research studies revealed that the presence of strain gradient would affect the maximum concrete stress developed in flexure. However, no quantitative model was available to evaluate the strain gradient effect on concrete under flexure. Previously, the authors have conducted experimental studies to investigate the strain gradient effect on maximum concrete stress and respective strain and developed two strain-gradient-dependent factors k3 and ko for modifying the flexural concrete stress-strain curve. As a continued study, the authors herein will extend the investigation of strain gradient effects on flexural strength and ductility of RC columns to concrete strength up to 100 MPa by employing the strain-gradient-dependent concrete stress-strain curve using nonlinear moment-curvature analysis. It was evident from the results that both the flexural strength and ductility of RC columns are improved under strain gradient effect. Lastly, for practical engineering design purpose, a new equivalent rectangular concrete stress block incorporating the combined effects of strain gradient and concrete strength was proposed and validated. Design formulas and charts have also been presented for flexural strength and ductility of RC columns.

중합 조건에 따른 간접복합레진의 굴곡강도 (Flexural strength of indirect composite resin with different polymerization conditions)

  • 금영희;김부섭
    • 대한치과기공학회지
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    • 제35권4호
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    • pp.333-341
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    • 2013
  • Purpose: The purpose of this study was to evaluate the flexural strength of indirect composite resins with different polymerization conditions. Methods: Ten specimens ($2mm{\times}2mm{\times}25mm$) of each composite resins (Tescera (T), Gradia (S) and Sinfony (S)) were fabricated by two polymerization methods : manufacturers's and light heat pressure. Composite resins polymerized by manufacturers's method and light heat pressure served as control (TS, GS and SS) and experimental groups (TE, GE and SE), respectively. The composite resins were tested for flexural strength and the surface of composite resins were observed with scanning electron microscope (SEM) under X1,000 magnification. Results: The flexural strength values of cured composite resin decreased in the following order: TE (195.4MPa), TS (179.8MPa), GE (169.9MPa), SE (137.7MPa), SS (111.1MPa) and GS (100.9MPa) groups. Conclusion: The flexural strength values between the control and the experimental groups were not significantly different although experimental groups showed higher flexural strength values than control groups.

누적손상을 고려한 강섬유보강 콘크리트의 피로파괴 특성 (Fatigue Failure Characteristics of Steel Fiber Reinforced Concrete Considering Cumulative Damage)

  • 김동호;홍창우;이주형;이봉학
    • 한국농공학회지
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    • 제44권2호
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    • pp.117-126
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    • 2002
  • Concrete containing discontinuous discrete steel fiber in a normal concrete is called steel fiber reinforced concrete(SFRC). Tensile as well as flexural strengths of concrete could be substantially increased by introducing closely spaced fibers which delay the onset of tension cracks and increase the tension strength of cracks. However, many properties of SFRC have not been investigated, especially properties on repeated loadings. Thus, the purposes of this dissertation is to study the flexural fatigue characteristics of SFRC considering cumulative damage. A series of experimental tests such as compressive strength, splitting tensile strength, flexural strength, flexural fatigue, and two steps stress level fatigue were conducted to clarify the basic properties and fatigue-related properties of SFRC. The main experimental variables were steel fiber fraction (0, 0.4, 0.7, 1, 1.5%), aspect ratio (60, 83). The principal results obtained through this study are as follows: The results of flexural fatigue tests showed that the flexural fatigue life of SFRC is approxmately 65% of ultimate strength, while that of plain is less than 58%. Especially, the behavior of flexural fatigue life shows excellent performance at 1.0% of steel-fiber volume fraction. The cumulative damage test of high-low two stress levels is within the value of 0.6 ∼ 1.1, while that of low-high stress steps is within the value of 2.4 ∼ 4.0.

Experimental Investigation for Flexural Stiffness of Paperboard-stacked Structure

  • Lee, Myung-Hoon;Park, Jong-Min
    • 한국포장학회지
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    • 제7권1호
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    • pp.9-15
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    • 2001
  • Top-to-bottom compression strength of corrugated fiberboard boxes is partly dependent on the load-carrying ability of the central panel areas. The ability of these central areas to resist bending under load will increase the stacking strength of the box. The difference of box compression strengths, among boxes which are made with identical dimensions and fabricated with same components but different flute sizes, is primarily due to difference of the flexural stiffness of the box panels. Top-to-bottom compression strength of a box is accurately predicted by flexural stiffness measurements and the edge crush test of the combined boards. This study was carried out to analyze the flexural stiffness, maximum bending force and maximum deflection for various corrugated fiberboards by experimental investigation. There were significant differences between the machine direction (MD) and the cross-machine direction (CD) of corrugated fiberboards tested. It was about 50% in SW and DW, and $62%{\sim}74%$ in dual-medium corrugated fiberboards(e.g. DM, DMA and DMB), respectively. There were no significant differences of maximum deflection in machine direction among the tested fiberboards but, in cross direction, DM showed the highest value and followed by SW, DMA, DMB and DW in order. For the corrugated fiberboards tested, flexural stiffness in machine direction is about $29%{\sim}48%$ larger than cross direction, and difference of flexural stiffness between the two direction is the lowest in DMA and DMB.

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