• 제목/요약/키워드: flexural compression

검색결과 342건 처리시간 0.022초

강섬유 보강 숏크리트의 휨인성 평가 방법 연구 (A study on the flexural toughness evaluation method of steel fiber reinforced shotcrete)

  • 김재동;김덕영
    • 터널과지하공간
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    • 제10권2호
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    • pp.196-210
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    • 2000
  • 본 연구는 현재 한국도로공사에서 시행하고 있는 강섬유보강 숏크리트(SFRS)의 휨인성 평가 방법에 대한 타당성을 검증하기 위하여 수행되었다. 시료는 6종류의 강섬유를 사용하여 33개의 삼등분점굴곡시험용 빔 블록을 현장 타설 후 양생한 후 절단, 제작하였으며, 휨인성시험은 실험실에서 실시하였다. 한국도로공사의 시험지침을 따라 등가휨강도 및 인성계수를 산정하였으며, 이 결과는 ASTM, ITA 및 EFNARC의 평가 기준을 적용한 결과와도 비교하였다. 연구 결과 한국도로공사 평가 방법에서는 인성계수가 휨강도의 영향에 의하여 평가 결과에 모호성이 있는 것으로 판단되었다. 이를 수정하기 위하여 인성계수의 계산에 적용되는 휨강도를 설계 시에 설정된 설계휨강도로 대체, 적용하는 방법이 보다 적절히 SFRS의 휨인성을 평가할 수 있는 것으로 판단된다.

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전통 목구조 멍에 부재의 휨 보강 특성 (Flexural Strengthening Characteristic of Sleeper Member Traditional Wooden Architecture)

  • 김정섭;조철희;신용석;조윤희
    • 한국구조물진단유지관리공학회 논문집
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    • 제14권2호
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    • pp.145-152
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    • 2010
  • 본 연구는 루가구의 멍에 실험에서 휨거동 및 보강효과 등의 특성을 파악하였다. 실험 결과, 기준실험체는 가력하중 초기부터 하단에서 휨균열이 발생하여 파괴로 진행되었으나 탄소섬유막대 보강실험체는 실험체 상부에서 압축에 의한 수축현상이 발생하여 압괴되거나 보강재의 파단으로 파괴되어 초기하중부터 보강효과가 발휘되는 것으로 사료된다. 보강실험체는 기준실험체에 비해 항복강도는 6%~38%, 최대강도는 8%~17% 높은 강도를 나타내었다. 탄소섬유막대로 휨 보강한 실험체는 휨처짐 제어의 효과를 기대할 수 있을 것으로 사료된다. 보강실험체의 연성계수는 기준실험체에 비해 평균 141% 정도 증가되는 것으로 나타나 구조적으로 연성 거동을 기대할 수 있을 것으로 사료된다.

순환골재와 폐주물사를 활용한 철근콘크리트보의 휨거동에 관한 실험연구 (Experimental Study of Flexural Behavior of Reinforced Concrete Beam Using WFS and Recycled Aggregate)

  • 김성수;이대교
    • KIEAE Journal
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    • 제8권5호
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    • pp.61-68
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    • 2008
  • For the recycling of the resources and the preservation of the environment, this study's purpose is to measure flexural behavior of the reinforced concrete beams with the major variables like concrete strength, replacement ratio of the recycled aggregate and the waste foundry sand and the tension reinforcement ratio and to present the data of the recycled aggregate used for the structure design. The experiment on the flexural behavior resulted in the followings. The ultimate strength of recycled R/C beam was manipulated proportionate to the tension reinforcement ratio, however the strength instantly decreased after passing the ultimate load due to the destroyed concrete of the compression side. The deflection at the maximum load varied from the tension reinforcement ratio by 5.5 times. The test specimen with the tension reinforcement ratio less than $0.5{\rho}b$ showed constant curve without change in the load from the yield to the ultimate load in contrast to the distinctive plastic region where the displacement was rising. Although the strain of main tension steel with the reinforcement ratio indicate different, the design of recycled concrete member can be applied for current design code for reinforced concrete structure as the ratio of tension reinforcement district the under the reinforcement ration in a balanced strain condition.

스틸스터드의 압축내력 평가 (An Evaluation of Axial Compressive Strength in Steel Stud)

  • 신태송
    • 한국강구조학회 논문집
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    • 제10권4호통권37호
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    • pp.677-689
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    • 1998
  • 본 연구에서는 중심압축력을 받는 스털스터드의 설계강도에 대하여 다루었으며 비교 평가하였다. 미국규준인 냉간성형 LRFD 설계규준 (AISI). 유럽의 냉간박벽부재설계규준 (EC3 part 1.3) 및 독일의 관련규정 (DASt-Richtlinie 016)의 유사성과 차이점을 소개하고 분석하며 체계적으로 평가하였다. 특히 유효폭과 전체 안정성문제 (휨좌굴과 비틀림좌굴)가 이 논문에서 내포되어 있다. 또한 예제를 통하여 두 규준인 AISI와 EC3에 의한 설계압축강도를 산정하고 비교 분석하였다.

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부재의 길이가 폴리머 콘크리트의 휨압축 강도에 미치는 영향 (Effects of Specimen Length on Flexural Compressive Strength of Polymer Concrete)

  • 연규석;김남길;주명기;유근우;권윤환
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 봄 학술발표회 논문집
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    • pp.99-104
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    • 2002
  • In this paper the influence or specimen length on flexural compressive strength and parameter or equivalent rectangular stress block of polymer concrete was evaluated. For this purpose, a series of C-shaped specimens subjected to eccentric compression were tested using four different length-to-depth ratios(from 1.0, 2.0, 3.0 and 4.0) of specimens with compressive strength of 1,020kgf/cm$^2$. Results indicate that for the region of h/c$\leq$3.0 the reduction in equivalent rectangular stress block depth and flexural compressive strength with increase of length-to-depth ratios was apparent but for the region of h/c$\geq$3.0 they were nearly constant. It means that for the region of h/c$\geq$3.0 effect of specimen length on equivalent rectangular stress block depth and flexural compressive strength was negligible. It was also founded that the effect of specimen length on v, a coefficient of strength, that was from 0.84 to 0.86 regardless of h/c was petty. Finally, predictive equation is, suggested by using modified law of effect of specimen length and results.

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휨 하중을 받는 재생 PET 폴리머 콘크리트의 인장크리프 모델 (Tension Creep Model of Recycled PET Polymer Concrete with Flexural Loading)

  • 채영석;태기호
    • 한국안전학회지
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    • 제27권5호
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    • pp.117-125
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    • 2012
  • In recent years, polymer concrete based on polyester resin have been widely generalized and the research of polymer concrete have been actively pursued by the technical innovations. Polymer concrete is a composite consisting of aggregates and an organic resin binder that hardens by polymerization. Polymer concrete are stronger by a factor of three or more in compression, a factor of four to six in tension and flexural and a factor of two in impact when compared with portland cement concrete. In view of the growing use of polymer concrete, it is important to study the physical characteristics of the material, emphasizing the short term properties as well as long term mechanical behavior. If polymer concrete is to be used in flexural load-bearing application such as in beam, it is imperative to understand the deformation of the material under sustained loading conditions. This study is proposed to empirical and mechanical model of polymer concrete tension creep using long-term experimental results and mathematical development. The test results showed that proposed model has been used successfully to predict creep deformations at a stress level that was 20 percent of the ultimate strength and viscoelastic behavior of recycled-PET polymer concrete is linear of stress level up to 30 percent. It is expected that the present model allows more realistic evaluation of varying stresses in polymer concrete structures with a constant loading.

Improving design limits of strength and ductility of NSC beam by considering strain gradient effect

  • Ho, J.C.M.;Peng, J.
    • Structural Engineering and Mechanics
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    • 제47권2호
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    • pp.185-207
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    • 2013
  • In flexural strength design of normal-strength concrete (NSC) beams, it is commonly accepted that the distribution of concrete stress within the compression zone can be reasonably represented by an equivalent rectangular stress block. The stress block it governed by two parameters, which are normally denoted by ${\alpha}$ and ${\beta}$ to stipulate the width and depth of the stress block. Currently in most of the reinforced concrete (RC) design codes, ${\alpha}$ and ${\beta}$ are usually taken as 0.85 and 0.80 respectively for NSC. Nonetheless, in an experimental study conducted earlier by the authors on NSC columns, it was found that ${\alpha}$ increases significantly with strain gradient, which means that larger concrete stress can be developed in flexure. Consequently, less tension steel will be required for a given design flexural strength, which improves the ductility performance. In this study, the authors' previously proposed strain-gradient-dependent concrete stress block will be adopted to produce a series of design charts showing the maximum design limits of flexural strength and ductility of singly-and doubly-NSC beams. Through the design charts, it can be verified that the consideration of strain gradient effect can improve significantly the flexural strength and ductility design limits of NSC beams.

Stitching Effect on Flexural and Interlaminar Properties of MWK Textile Composites

  • Byun, Joon-Hyung;Wang, Yi-Qi;Um, Moon-Kwang;Lee, Sang-Kwan;Song, Jung-Il;Kim, Byung-Sun
    • Composites Research
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    • 제28권3호
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    • pp.136-141
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    • 2015
  • The stitching process has been widely utilized for the improvement of through-thickness property of the conventional laminated composites. This paper reports the effects of stitching on the flexural and interlaminar shear properties of multi-axial warp knitted (MWK) composites in order to identify the mechanical property improvements. In order to minimize the geometric uncertainties associated with the stacking pattern of fabrics, the regular lay-up was considered in the examination of the stitching effect. The key parameters are as follows: the stitch spacings, the stitching types, the stitching location, and the location of compression fixture nose. These parameters have little effect on the flexural and interlaminar shear properties, except for the case of stitching location. However, the geometry variations caused by the stitching resulted in minor changes to the mechanical properties consistently. Stitching on the $0^{\circ}$ fibers showed the lowest flexural strength and modulus (12% reduction for both properties). The stitch spacing of 5 mm resulted in 8% reduction for the case of interlaminar strength compared with that of 10 mm spacing.

크기효과가 고려된 철근콘크리트 휨 부재의 최소철근비 제안 (A Proposal of Minimum Steel Ratio Considering Size Effect for Flexural Reinforced Concrete Member)

  • 유성원;허윤
    • 한국안전학회지
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    • 제25권6호
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    • pp.128-136
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    • 2010
  • In according with concrete structural design standard, it is common designing flexure reinforcement concrete to induce tension failure. So reinforcing ratio is limited to inducing tension failure. And maximum reinforcing ratio is regulated to protecting concrete compression strength caused by over reinforced building. Minimum reinforcing ratio is also limited in designing standard to protecting brittle failure as extremely using less reinforcing bar. But in minimum reinforcing ratio it is extremely conservative or it is sometimes impossible to induce stable tension-failure because they are depending on yield failure and experienced method and concrete designing standard strength. Therefore the purpose of the present paper is to evaluate the flexural behavior of minimum steel ratio of reinforced concrete of beams and to propose the guide-line of equation of minimum steel ratio by performing static flexural test of 16 beams according to size effect, number of steel, yielding stress of steel, and concrete compressive strength which are presumed effective variables. From experimental results, the equation of minimum steel ratio was newly proposed considered size effect.

Effectiveness of steel fibers in ultra-high-performance fiber-reinforced concrete construction

  • Dadmand, Behrooz;Pourbaba, Masoud;Sadaghian, Hamed;Mirmiran, Amir
    • Advances in concrete construction
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    • 제10권3호
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    • pp.195-209
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    • 2020
  • This study investigates the behavior of ultra-high-performance fiber-reinforced concrete (UHPFRC) with hybrid macro-micro steel and macro steel-polypropylene (PP) fibers. Compression, direct and indirect tension tests were carried out on cubic and cylindrical, dogbone and prismatic specimens, respectively. Three types of macro steel fibers, i.e., round crimped (RC), crimped (C), and hooked (H) were combined with micro steel (MS) and PP fibers in overall ratios of 2% by volume. Additionally, numerical analyses were performed to validate the test results. Parameters studied included, fracture energy, tensile strength, compressive strength, flexural strength, and residual strength. Tests showed that replacing PP fibers with MS significantly improves all parameters particularly flexural strength (17.38 MPa compared to 37.71 MPa). Additionally, the adopted numerical approach successfully captured the flexural load-deflection response of experimental beams. Lastly, the proposed regression model for the flexural load-deflection curve compared very well with experimental results, as evidenced by its coefficient of correlation (R2) of over 0.90.