• Title/Summary/Keyword: 폭렬특성

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An Experimental Study on the Explosive Spalling Properties of Concrete according to Concrete Compressive Strength and Moisture rate (콘크리트의 압축강도 및 함수율에 따른 폭렬특성에 관한 연구)

  • Lee, Jae-Young;Kim, Dong-Jun;Kwon, Young-Jin;Harada, Kazunori
    • Proceedings of the Korea Institute of Fire Science and Engineering Conference
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    • 2009.04a
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    • pp.147-154
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    • 2009
  • 화재와 같은 고온의 환경에서 콘크리트의 고강도화는 폭렬(Explosive Spalling)이라는 큰 위험성을 가지고 있으며, 이러한 폭렬의 원인으로는 콘크리트 내부의 수증기압이 가장 큰 원인으로 제기되고 있다. 본 논문은 콘크리트의 폭렬발생 있어서 압축강도 및 함수율이 초기 폭렬특성에 미치는 영향을 실험적으로 검토하기위하여 건축구조물의 화재 온도조건인 ISO834 화재온도이력곡선을 15분, 30분 적용하여 콘크리트의 초기 폭렬특성을 검토하였다. 그 결과 압축강도 가열시간 함수율이 증가할수록 폭렬발생 및 폭렬현상이 증대되는 경향이 나타났으며, 15분, 30분 가열시간에 따른 잔존강도율을 나타내었다. 또한, 압축강도 및 함수율에 따른 폭렬발생영역을 분석하였으며, 압축강도 50${\sim}$100 MPa의 경우 함수율 3%이하, 100 MPa이상의 경우는 1%이하로 제어할 경우 폭렬현상이 발생하지 않을 것으로 판단되었다.

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The Influence of Silica Fume and PP Fiber Contents on Explosive Spalling of Concrete (실리카흄 및 PP섬유가 콘크리트의 폭렬에 미치는 영향)

  • Kim, Dong-Joon;Kim, Jeng-Hee;Lee, Jae-Young;Kazunori, Harada;Kwon, Young-Jin
    • Proceedings of the Korea Institute of Fire Science and Engineering Conference
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    • 2011.11a
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    • pp.382-385
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    • 2011
  • 본 논문은 초고강도콘크리트의 폭렬현상을 연구해 보고자 실리카흄 유무와 PP섬유의 혼입량을 변수로 하여 공시체와 벽체의 폭렬현상을 관찰한 후 변수가 초고강도콘크리트에 어떠한 영향을 주는지를 실험적으로 규명하는 것을 목적으로 하였다. KS F 2257 화재온도이력곡선을 30분 적용하여 콘크리트의 초기 폭렬특성을 실험적으로 검토하였다. 그 결과 공시체의 경우 압축강도가 100 MPa 초고강도콘크리트의 경우에는 실리카흄 여부와 PP섬유 혼입량이 폭렬억제에 관계되는 주요 인자인 것을 알 수 있었으며, 벽체의 경우에는 벽체 시험체의 부분 가열 및 전면 가열 실험을 실시했다. 폭렬 최대 깊이, 시간, 소리 발생 회수를 비교하면 부분 가열이 전체 가열에 비해 폭렬이 빠르고 깊게 발생하는 것으로 나타났다.

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Spalling Properties of 60, 80MPa High Strength Concrete with Fiber (복합섬유(PP, NY)를 혼입한 60, 80MPa 3성분계 고강도콘크리트의 내화특성)

  • Kim, Seong-Deok;Kim, Sang-Yun;Bae, Ki-Sun;Park, Su-Hee;Lee, Bum-Sik
    • Journal of the Korea Institute of Building Construction
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    • v.10 no.4
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    • pp.3-9
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    • 2010
  • Fire resistance and material properties of high-strength concrete (W/B 21.5%, 28.5%) with OPC, BS and FA were tested in this study. Main factors of the test consisted of fiber mixing ratio and W/B. Two types of fiber (NY, PP) mixed with the same weight were used for the test. The fiber mixing ratios were 0%, 0.05%, 0.1%, and 0.2% of the concrete weight. After performing the test, Under the W/B level of 21.5% and 28.5%, the spalling was effectively resisted by using the high strength concrete with fiber mixing ratios of 0.05%~0.1%. Compressive strength, flowability and air content are similar those of the fiberless high-strength concrete with the same W/B.

An Experimental Study on the Curing Method and PP Fiber Mixing Ratio on Spalling Resistance of High Strength Concrete (양생요인 및 PP 섬유 혼입율 변화에 따른 고강도 콘크리트의 폭렬특성)

  • Han, Cheon-Goo;Kim, Won-Ki
    • Journal of the Korea Institute of Building Construction
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    • v.9 no.6
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    • pp.113-119
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    • 2009
  • This study is to investigate the fundamental and fireproof qualities of high strength concrete corresponding to changes in the curing factors and the PP fiber ratio. The results were as follows. For the fundamental characteristics of concrete, the fluidity was reduced in proportion to the increase in the PP fiber ratio. The compressive strength was somewhat reduced according to an increase in the PP fiber ratio. However, it had the high strength scope of more than 60 MPa at 7 days and of more than 90 MPa at 28 days. On the spalling mechanism followed by changes of the water content ratio, spalling was prevented in all combinations, except the specimen without PP fiber and subjected to 3.0% of moisture contents. When spalling was prevented at that time, the residual compressive strength ratio was 22%~41% and the mass reduction ratio was 5%~7%, which was relatively favorable. As the spalling mechanism corresponds to changes in the curing method, spalling was prevented in concrete with a PP fiber mixing ratio of more than 0.05% in the event of standard curing, and in concrete with a PP fiber mixing ratio of more than 0.10% in the case of steam curing and autoclave curing. In these cases, when spalling was prevented, the residual compressive strength ratio was 23~42% and the mass reduction ratio was 7~11%. In these results, the ease of spalling prevention in high strength concrete was inversely proportional to the water content ratio. Depending on the curing method, spalling was prevented in concrete with over 0.05% PP fiber with standard curing and in concrete with over 0.1% PP fiber with steam curing and autoclave curing.

A Study on Fire Resistance and Spalling of HPC Beam with Fiber-Cocktail in ISO Fire under Loading Condition (표준화재 재하조건하에서 Fiber Cocktail을 혼입한 고강도 콘크리트 보의 폭렬특성 및 내화성능에 관한 연구)

  • Cho, Kyung-Suk;Kim, Heung-Youl;Kim, Hyung-Jun
    • Fire Science and Engineering
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    • v.23 no.6
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    • pp.126-134
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    • 2009
  • In an attempt to control the spalling in high strength concrete, spalling reducer was mixed to identify the effect and thermal characteristics of concrete beam member at high temperature. The member was manufactured in such as way of adding 40~60MPa of high strength concrete into spalling reducer, and then fire resistance performance were monitored under the ISO standard fire load condition in accordance with KS F 2257. As a result of test, fore rate performance of 40MPa beam without spalling reducer was 180minutes, 50MPa was 174minutes and 60MPa was 152minutes, indicating that 50MPa and 60MPa beam appeared 6~28minutes short to become a 3-hour rate. However, 50 and 60MPa beam mixed with spalling reducer appeared to have satisfied the requirements for 180minutes. A spalling was occurred in surface of 50 and 60MPa beam mixed without spalling reducer, while no spalling or surface failure was occurred with 50 and 60MPa beam mixed with spalling reducer. Thus polypropylene fiber mixed with the concrete proved to be effective, but viewing that the surface of 60MPa was peeled off partially, the steel fiber mixed appeared not to be effective for the beam more than 60MPa.

Fire Resistant Properties of the RC Columns Applying Various Splling Prevention Methods (폭렬방지공법 변화에 따른 RC 기둥부재의 내화특성)

  • Han, Cheon-Goo;Pei, Chang-Chun;Lee, Jong-Suk;Lee, Chan-Young
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.13 no.3 s.55
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    • pp.119-126
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    • 2009
  • This study investigated the fire resistance of RC columns applying Fiber addition method, Fire board attaching method, and Fire proof sparying method. The results were summarized as following. The test showed that increase of fiber content, as expected, decreased the fluidity of fresh concrete, but for the types of fiber, the specimens containing nylon(NY) was favorable. The incline of fiber content also affected on the air content of concrete, which the specimens adding polypropylene(PP) fiber was the lowest, followed by a less decrease in polyvinyl alchhol(PVA) and then NY respectively. For the compressive strength at 28days, it was over 50MPa and showed slight increasing tendency by rising fiber contents. After the fire test completed, control concrete exhibited the severe demage, while the specimens containing more than 0.05vol.% of PP and NY was able to protect from spalling. In the case of splay, the partly spalling occurred at the all finishing material, however the RC columns were protected from spalling. For the methods attached with boards, all RC columns were protected except the dry attaching method. The reduced weight ratio was favorable because it was below 8 % except for plain concrete.

Review of Spatting Effect on Concrete Element in Fire (화재시 콘크리트 요소 폭렬영향성 고찰)

  • Kim, Hyung-Jun;Han, Sang-Hoon;Choi, Seng-Kwan
    • Fire Science and Engineering
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    • v.21 no.2 s.66
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    • pp.54-63
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    • 2007
  • Concrete is generally accepted to have good inherent fire resistance. It mainly relies on the assumption that concrete has low heat-transfer characteristic and spatting does not occur during the course of a fire. However, the significant numbers of fire accidents have shown in recent years that incidence of spatting has caused sever damages to many structures. This review has systematically investigated the behaviour of concrete in fire, including phenomenon of spatting, with respect to the theorical consideration and experimental results. Explosive spatting is caused by the build-up of water vapor pressure in concrete subjected to increasing temperatures. When this pressure exceeds the tensile strength of the concrete over a fire-exposed area, explosive spatting can result in a typical temperature range between $200^{\circ}C\;and\;400^{\circ}C$. The major functions are known to be moisture content, pore pressure, load ratio, and heating regime.

A Study on the Spalling Properties of Polymer Modified Cement Mortar Using Polypropylene Fiber (폴리프로필렌 섬유를 혼입한 폴리머 시멘트 모르타르의 폭렬특성에 관한 연구)

  • Kim, Min-Sung;Sim, Sang-Rak;Ryu, Dong-Woo
    • Journal of the Korea Institute of Building Construction
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    • v.20 no.4
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    • pp.305-311
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    • 2020
  • Polymer modified cement mortar (PCM) can improve the performance of adhesion strength, flexural strength, chemical resistance, etc., compared with cement mortar, and is widely used when repairing RC structures. However, PCM causes a burst in an environment with high temperature and fire rate, which causes problems in the stability of the structure. In this study, for the purpose of developing explosive reduction PCM, the polymer mixing ratio is 2%, 4%, 6%, the fiber length is 6mm, 12mm, 6+12mm, and the PP fiber mixing rate is 0.05 Vol% and 0.1 Vol%. Furnace heating experiment (600℃, 800℃) was carried out. As a result of comparative analysis of the explosive properties, it was confirmed that the explosive reduction effect due to the fiber incorporation was insufficient when the polymer mixing amount was 6% or more.

Spalling Resistance of High Strength Concrete Using Non-Stripping Form (비탈형 거푸집에 의한 고강도 콘크리트의 폭렬방지)

  • You, Ji-Young;Han, Chang-Pyung;Jee, Suk-Won;Han, Min-Cheol;Yang, Seong-Hwan;Han, Cheon-Goo
    • Proceedings of the Korea Concrete Institute Conference
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    • 2008.04a
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    • pp.865-868
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    • 2008
  • As a part of a series of study, this study reviewed the fire proof characteristics of high performance concrete RC column members using non-stripping form that accompanied metal lath lateral confinement to prevent spalling of high performance concrete which is increasingly used recently, and the results are as follows. Flow and air amount both satisfied target range, and compressive strength, over 80MPa at age 28 days, showed high strength range. As for spalling characteristics, in the case of plain in which no fiber is mixed, severe spalling occurred, and in the case of 0.05% nylon("NY" hereinafter)+polypropylene("PP" hereinafter) fiber mixture, only surface area experienced partial spalling. Regarding non-stripping form changes, both non-stripping 25-20 and non-stripping 50-20 experienced spalling at finish material area, and non-stripping 50-20 showed better spalling proof performance than non-stripping 25-20. In the case of non-stripping 50-40, spalling was prevented, and while mass reduction rate was less than 10%, its temperature hysteresis showed the most excellent fire proof performance with base metal surface area maximum temperature $376.1^{\circ}C$.

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Experimental Study on the Spalling Properties of Ultra High Strength Concrete containing Amorphous Metallic Fiber (비정질강섬유를 혼입한 초고강도콘크리트의 폭렬특성에 관한 실험적 연구)

  • Choe, Gyeong-Cheol;Kim, Gyu-Yong;Kim, Hong-Seop;Hwang, Eui-Chul;Nam, Jeong-Soo
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.23 no.3
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    • pp.111-118
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    • 2019
  • This study examined the effect of amorphous metallic (AM) fibers on the spalling properties of ultra high strength concrete. Six specimens with concrete strengths of 100 MPa and 150 MPa were evaluated with mix proportions of polypropylene (PP) fibers of 0.15% by concrete volume, and proportions of AM fibers of 0.3% and 0.5% by concrete volume. These specimens were then heated in accordance with the ISO-834 heating curve. The movement of water vapor through a pore network formed by molten PP fibers was found to be a dominant factor controlling the spalling of high-strength concrete. Spalling control was not found to be significantly affected by the addition of 0.3% AM fibers; however, when 0.5% AM fibers was added, cracking was limited and so were paths for water vapor migration, increasing the likelihood of a moisture clog and creating the differential internal pressure often blamed for concrete spalling.