• Title/Summary/Keyword: high performance steel fiber concrete

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Experimental investigation of steel fiber effects on anti-penetration performance of self-compacting concrete

  • Jian Ma;Liang Bian;Jie Zhang;Kai Zhao;Huayan Yao;Yongliang Zhang
    • Advances in concrete construction
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    • v.16 no.2
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    • pp.119-126
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    • 2023
  • Steel fiber reinforced self-compacting concrete (SFRSCC) has good workability such as high flowability and good cohesiveness. The workability, compressive strength, splitting tensile strength, and anti-penetration characteristics of three kinds of SFRSCC were investigated in this paper. The fraction of steel fibers of the SFRSCC is 0.5%, 1.5% and 2.0% respectively. The results of the static tests show that the splitting tensile strength increases with the increase of fraction of steel fibers, while the compressive strength of 1.5% SFRSCC is lowest. It is demonstrated that the anti-penetration ability of 1.5% SFRSCC subjected to a velocity projectile (200-500 m/s) is better than 0.5% and 2.0% SFRSCC according to the experimental results. Considering the steel fiber effects, the existing formula is revised to predict penetration depth, and it is revealed that the revised predicted depth of penetration is in good agreement with the experimental results. The conclusion of this paper is helpful to the experimental investigations and engineering application.

Flexural toughness density of High Performance Fiber Reinforced Cementitious Composites (고인성 섬유보강 시멘트 복합재료의 휨인성 밀도)

  • Kim, Dong-Joo
    • Proceedings of the Korea Concrete Institute Conference
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    • 2010.05a
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    • pp.401-402
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    • 2010
  • This research initially suggest flexural toughness density as a key parameter describing energy absorption capacity of High Performance Fiber Reinforced Cementitious Composites [HPFRCC] regardless of the size of specimen. Two types of high strength steel fibers, Hooked and Twisted fiber, were used in two types of flexural specimen ($100{\times}100{\times}350mm^3$ and $150{\times}150{\times}500mm^3$) to estimate and validate the flexural toughness density.

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Evaluation on the Impact Resistance Performance of Fiber Reinforced Concrete by High Velocity Steel Projectile Test (고속 비상체의 충격시험에 의한 섬유보강콘크리트의 내충격 성능평가)

  • Nam, Jeong-Soo;Choi, Hyeong-Gil;Kim, Young-Sun;Park, Jong-Ho;Jeong, Yong;Kim, Gyu-Yong
    • Proceedings of the Korea Concrete Institute Conference
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    • 2009.05a
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    • pp.389-390
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    • 2009
  • Recently, building structure damage and number of lives lost by bomb terror is increasing. Therefore, in this study, present basic data for development of impact resistance performance by evaluation on the impact resistance performance of fiber reinforced concrete by high velocity steel projectile test.

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Evaluation for fire resistance performance of high strength CFT with loading (재하하중에 따른 고강도 CFT의 내화성능 평가)

  • Hong, Seok-Beom;Yoo, Jo-hyeong;Kim, Woo-Jae;Lee, Ji-Hwan
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2013.11a
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    • pp.184-185
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    • 2013
  • Concrete filled steel Tube(CFT) columns have great strength but also fire resistance performance due to the heat storage effect of concrete. In this research, we focus on the fire performance of CFT using 100 MPa concrete without fire protection. We use steel fiber and nylon fiber for fire resistance. We perform the fire test of CFT specimen with loading 200, 300 and 400 ton. To investigate the effect of loading to fire resistance, we compare the fire resistance time according to the loading.

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Evaluation on Mechanical Properties of Organic of Fiber Reinforced Concrete Using Macro Forta Fiber (매크로 포타 섬유를 사용한 섬유 보강 콘크리트의 역학적 특성 평가)

  • Ryu, Hwa-Sung;Kim, Deuck-Mo;Shin, Sang-Heon;Ryu, Il-Hwan;Joe, Ji-Min
    • Journal of the Korea Institute of Building Construction
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    • v.17 no.4
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    • pp.321-329
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    • 2017
  • Concrete is a semi-brittle material, so its compressive strength is high but its tensile strength is low. The use of fiber-reinforced concrete to improve the disadvantages of such concrete can be an effective way to toughen effective toughness, and the performance is improved by using steel fiber reinforced concrete for structures that are vulnerable to bending forces. However, alternative materials are required due to corrosion of steel fiber and lowering of workability. The purpose of this study is to evaluate the availability of replacing steel fiber reinforced concrete by evaluating physical properties, mechanical properties and drying shrinkage properties of concrete using macro forta fiber with excellent diffusibility. Experimental results show that the macro forta fiber has better fluidity and mechanical performance than the steel fiber reinforced concrete. It was also confirmed that the crack resistance of concrete using Macro Forta fiber is effective in improving structural cracking and drying shrinkage resistance compared to steel fiber reinforced concrete.

Evaluation on Shear Contribution of Steel Fiber Reinforced Concrete in Place of Minimum Shear Reinforcement (최소 전단철근 대용으로의 강섬유 콘크리트의 전단기여도 평가)

  • Kim, Chul-Goo;Park, Hong-Gun;Hong, Geon-Ho;Kang, Su-Min
    • Journal of the Korea Concrete Institute
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    • v.27 no.6
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    • pp.603-613
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    • 2015
  • In current design codes, minimum shear reinforcement is required for reinforced concrete flexural members, and the use of steel fiber reinforced concrete is permitted to replace the minimum shear reinforcements. In the present study, to estimate the effects of shear reinforcements and fibers on shear strength, simply supported beams were tested under transverse loading. The test results showed that the shear strength was significantly increased by the use of fibers. Particularly, the effect of fiber reinforced concrete was pronounced when high-strength concrete was used. The performance of fiber reinforced concrete for minimum shear reinforcement was evaluated using results of the present study and existing tests.

Impact Resistance of Steel Fiber-Reinforced Concrete Panels Under High Velocity Impact-Load (고속충격하중을 받는 강섬유보강콘크리트 패널의 내충격성능)

  • Kim, Sang-Hee;Kang, Thomas H.K.;Hong, Sung-Gul;Kim, Gyu-Yong;Yun, Hyun-Do
    • Journal of the Korea Concrete Institute
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    • v.26 no.6
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    • pp.731-739
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    • 2014
  • This paper describes the evaluation of the impact performance of steel fiber-reinforced concrete based on high-velocity impact experiments using hard spherical balls. In this experimental study, panel specimens with panel thickness to ball diameter (h/d) ratios of 3.5 or less were tested with variables of steel fiber volume fraction, panel thickness, impact velocity, and aggregate size. Test results were compared with each other to evaluate the impact resistance. The results showed that the percentage of weight and surface loss decreased as the steel volume fraction increased. However, the penetration depth increased with up to steel fiber volume fraction of 1.5%. Particularly the results of specimens with 20 mm aggregates showed poorer performance than those with 8 mm aggregates. The results also confirmed that the impact performance prediction formulas are conservative with (h/d) ratios of 3.5 or less. Despite the conservative predictions, the modified NDRC formula and ACE formula predict the impact performance more consistently than the Hughes formula.

Shear performance of an innovative UHPFRC deck of composite bridge with coarse aggregate

  • Qi, Jianan;Wanga, Jingquan;Feng, Yu
    • Advances in concrete construction
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    • v.7 no.4
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    • pp.219-229
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    • 2019
  • This paper presents an experimental study on the structural performance of an innovative ultra-high performance fiber reinforced concrete (UHPFRC) deck with coarse aggregate of composite bridge under shear force. Test parameters included curing method and shear span-to-height ratio. Test results indicated that more short fine cracks developed beside the existing cracks due to the randomly dispersed fibers, resulting in re-distributing and homogenizing of the concrete stress beside cracks and allowing for the occurrence of more cracks with small spacing compared to normal strength concrete beams. Curing methods, incorporating steam curing and natural curing, did not have obvious effect on the nominal bending cracking strength and the ultimate strength of the test specimens. Shear reinforcement need not be provided for UHPFRC decks with a fiber volume fraction of 2%. UHPFRC decks showed superior load resistance ability after the appearance of cracks and excellent post-cracking deformability. Lastly, the current shear provisions were evaluated by the test results.

A Study on the Flexural Behavior of RC Beams Strengthened with High-Performance Carbon Fiber Bars (고성능 탄소섬유봉으로 보강된 철근콘크리트 보의 휨거동에 관한 연구)

  • 하기주;신종학;박연동;전찬목;이영범;김기태
    • Proceedings of the Korea Concrete Institute Conference
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    • 2002.10a
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    • pp.451-456
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    • 2002
  • An experimental study was carried out to investigate the flexural behavior of RC beams strengthened with high-performance carbon fiber bars. Specimens designed with the conventional retrofitting method were also tested to compare load-carrying capacity and ductility. As the results, specimens strengthened with high-performance carbon fiber bars showed much higher load-carrying capacity and ductility compared to specimens strengthened with a steel plate and carbon fiber sheets. The failure mechanism of the specimen strengthened with a high-performance carbon fiber bar was bond-slip, whereas that of the others were interface debonding or rip-off.

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Performance of Hybrid Fiber Reinforced Concrete at Elevated High Temperature (고온에서 하이브리드 섬유보강 콘크리트의 성능)

  • Won, Jong-Pil;Park, Kyung-Hoon;Park, Chan-Gi
    • Journal of the Korea Concrete Institute
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    • v.20 no.3
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    • pp.325-333
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    • 2008
  • This study evaluated the mechanical performance, shrinkage crack and fire resistance of hybrid fiber (blended steel and polypropylene fiber with different diameter and length) reinforced concrete at elevated temperature. The compressive, splitting tensile, flexural, plastic shrinkage test were conducted to the evaluate the mechanical properties and the resistance of shrinkage crack. Also, the surface investigation, reduction rate of mass and residual compressive test were performed to evaluate the physical and mechanical properties after 400$^{\circ}C$, 600$^{\circ}C$, 800$^{\circ}C$ and 1,200$^{\circ}C$ exposure. Test results showed that the hybrid fiber reinforced concrete improved the mechanical performance, shrinkage crack and fire resistance. The reduction of performance with a temperature change were high at the temperature of $600\sim800^{\circ}C$.