• Title/Summary/Keyword: antiwashout admixture

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Optimum Mix Proportions of High Fluidity Antiwashout Underwater Concrete Using Ground Granulated Blast Furnace Slag (고로슬래그 미분말을 사용한 고유동 수중불분리성 콘크리트의 최적배합비 도출)

  • Kim, Sung-Wook;Park, Jung-Jun;Bae, Su-Ho;Park, Jae-Im
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.13 no.8
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    • pp.3704-3712
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    • 2012
  • Recently, antiwashout underwater concrete has been increasingly used for marine foundations of long span bridges. However, to shorten the construction period of antiwashout underwater concrete used in marine foundations, high fluidity antiwashout underwater concrete should be manufactured largely improving fluidity than the previous one. Thus, the objective of this experimental research is to suggest optimum mix proportions of high fluidity antiwashout underwater concrete. For this purpose, concrete specimens containing ground granulated blast furnace slag were manufactured according to the dosage of antiwashout admixture for unit binder contents of 550 and 600kg/$m^3$, respectively. And then, their quality performances such as slump flow, setting time, underwater segregation resistance, and ratio of compressive strength were evaluated according to the related specification of Korea Concrete Institute. It was observed from the test results that the minimum dosage of antiwashout admixture was necessary to satisfy the related specification.

A Study on the $Cl^-$ ion property of antiwashout concrete using the superplasticizer agent (고유동화재를 사용한 수중불분리콘크리트의 Cl 이온 특성고찰)

  • 김동석;최재웅;구본창;하재담;엄태형;신연식
    • Proceedings of the Korea Concrete Institute Conference
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    • 1999.04a
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    • pp.117-122
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    • 1999
  • The antiwashout concrete which is a type of specific concrete is manufactured by using a plenty of superplasticizer with the non-dispersible underwater concrete admixture, and the application of it on construction site is being increased. But when we measure choride ion content by using the potentiographic tester, because it is over total chloride ion content(0.3kg/㎥ under) of Korean Concrete Specification, the claim of construction site is being presented on the quality of antiwashout concrete. Accordingly, hte aim of this study is to verify actual chloride ion content of antiwashout concrete by chloride ion analysis due to chemical admixtures by performance of antiwashout concrete. In conclusion the actual chloride ion content of antiwashout concrete is overestimated by anion($OH^-, SO4^{-2}, S^{-2}, etc) of chemical admixtures, and is proved to be as low as that of ordinary concrete.

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The Characteristic of Fresh Properties of Antiwashout Underwater Concrete with Variation of Fly Ash (플라이애쉬를 혼입한 굳지않은 수중불분리성 콘크리트의 특성에 관한 연구)

  • 정병훈;최병우;장희석;김명식
    • Proceedings of the Korea Concrete Institute Conference
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    • 2000.04a
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    • pp.41-46
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    • 2000
  • In recently, though the development of antiwashout admixture, if's possible to construct in underwater with the concrete which is improved segregation resistance of material, filling and self-leveling. It is generally to use this method with Europe and Japan as the central figure, and also the construction case is reported in korea. There's some advantages to add the fly ash in plain concrete. The objective of this study is to find the characteristics of fresh underwater antiwashout concrete which is followed by the blend rate of fly ash.

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The Development of Melamine Superplasticizer Using Antiwashout Underwater Concrete (수중불분리콘크리트에 사용되는 멜라민유동화제 개발)

  • Kang, Hyun-Ju;Lee, Kyung-Hee;Cho, In-Sung;Park, Soon-Eui
    • Journal of the Korean Ceramic Society
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    • v.39 no.10
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    • pp.963-969
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    • 2002
  • In this studies, methly celluloes was used as antiwashout admixture and when considering the physical properties and economical efficiencies of Underwater Concrete as the results of making an experiencing slump flow, flow loss, setting time, suspension and pH also compressive strength and underwater/an air compressive strength ratio according to the adding amount changes 5, 7, 9, 11 kg/$m^3$ to Underwater Concrete of melamine superplasticizer, the using amount of melamine superplasticizer in Underwater Concrete approximately represents 9 kg/$m^3$.

Quality Evaluation and Mix Proportion of Antiwashout Underwater Concrete with Mineral Admixture (광물질 혼화재료를 사용한 수중불분리성 콘크리트의 배합 및 품질평가 방안 검토)

  • Park, Yong Kyu;Kim, Hyun Woo;Yoon, Ki Woon
    • Journal of the Korea Concrete Institute
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    • v.26 no.6
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    • pp.679-686
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    • 2014
  • In this research, the mix proportion of the antiwashout underwater concrete with the mineral admixture was evaluated. It can reduce the amount used of the antiwashout admixture (hereinafter referred to as "AWA") and satisfy the properties of concrete. In addition, the review for the difference of the test and practical affairs were conducted. Optimized unit quantity of water of antiwashout underwater concrete and the amount used of AWA was revealed by $190kg/m^3$, 0.9%/W, respectively. In particularly, the mix design is reduced by 5% than the W/B of target strength even though the W and AWA reduced. Therefore, it will have the economical feasibility and qualities including the material separation, resistance characteristic and compressive strength, and etc. The stable value was shown in 1 point of minute passed in the measurement of the turbidity amounts using the turbidimeter after the checker insertion. However, it needs to be reviewed for the interrelationship between turbidity measuring machine and KCI-AD102 standard method. There were no significant differences of compressive strength of specimens in the water depending on the production methods.

A Study on the Fluidity of Antiwashout Underwater Concrete Containing Fly Ash (Fly Ash를 사용한 수중불분리 콘크리트의 유동성에 관한 연구)

  • 권중현;배기성
    • Journal of Ocean Engineering and Technology
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    • v.12 no.1
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    • pp.153-161
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    • 1998
  • This paper is to investigate the Fluidity of Antiwashout Underwater Concrete containing Fly Ash. The results of study are concluded as follows: the increase in Slump Flow value did not happen in the plain concrete which was replaced cement by Fly Ash; however, the maximum value could reach in the replacement of 30% of Fly Ash by weight of cement in the Fly Ash replaced concrete. On the condition of Fly Ash-Antiwashout Underwater Concrete in expecting 50 cm of the Slump Flow, it was necessary that the usage amount of Superplasticizer be around 1% of unit Binder, and 1.5% in 60 cm of the Slump Flow, respoectively.

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Fundamental Properties of Antiwashout Underwater Concrete (수중불분리성 콘크리트의 기초물성에 대하여)

  • Kim, Jin-Cheol;Jeong, Yong;Park, Sung-Hak;Park, Ki-Cheong
    • Proceedings of the Korea Concrete Institute Conference
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    • 1995.04a
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    • pp.1-7
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    • 1995
  • The objective of this experimental investigation was to examine the fundamental properties of antiwashout underwater concrete. Expriments were conducted on the antiwashout property in underwater, the compressive strength in the air and in underwater, setting time, slump flow loss. As a result, a dosage of 2.0-2.5kg/$\textrm{m}^3$ antiwashout admixture was found to be appropriate not to cause water pollution and to provide a reliably good compressive strength in underwater concrete. Also, the experimental results showed that the amount of less than 50mg/$\ell$ suspended solid was required to obtain the underwater to air compressive strength ratio of more than 80%

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An Effect on the Properties of Antiwashout Underwater Concrete by mixing time and mixing quantity (배합시간과 배합량이 수중불분리성 콘크리트의 특성에 미치는 영향)

  • 박세인;김동명;김종수;김명식
    • Proceedings of the Korea Concrete Institute Conference
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    • 2000.10a
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    • pp.345-350
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    • 2000
  • The objective of this study makes investigation into the effect on the properties of underwater antiwashout concrete. which is followed by mixing time and mixing quantity. There is an tendency that (the compressive strength of underwater antiwashout concrete made and cured in fresh water or sea water) is increase when dry mixing time, mixing quantity, total mixing time is increase as unit weight grows. The difference of compressive strength (in case of no dry mixing time and 60 second) is averagely 46.8kgf/㎠ in the fresh water and 35.6kgf/㎠ in sea water. it's considered that dry mixing is dispersed by underwater antiwashout admixture.

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An Experimental Study on the Water Tightness of Fly Ash Antiwashout Underwater Concrete (플라이애시 수중불분리성 콘크리트의 수밀성에 관한 실험적 연구)

  • Kwon, Jung-Hyun;Kim, Bong-Ik
    • Journal of Ocean Engineering and Technology
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    • v.22 no.4
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    • pp.40-45
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    • 2008
  • This paper describes the effects of fly ash replacement on the water tightness of antiwashout underwater concrete, which replaced the cement with fly ash from 0% to 30%. The experimental work was performed to find out the depth of permeation of concrete specimens cast in air and cured in 23 $^{\circ}C$ tap water using an open center pressure type of water permeation tester. The results showed that the permeation depth values of antiwashout underwater concrete were deeper than normal concrete, but that an admixture using fly ash during antiwashout underwater concrete casting in air made it more watertight than normal concrete according to the water permeation testing. SEM observations of the specimens of fly ash antiwashout underwater concrete showed that it wasmore packed with structures because of the pozzolan reaction of the fly ash and cement.

Fundamental Study on the Characteristics of Antiwashout Underwater Concrete (수중 비분리 콘크리트의 특성에 대한 기초적 연구)

  • 김명식
    • Magazine of the Korean Society of Agricultural Engineers
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    • v.38 no.6
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    • pp.74-82
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    • 1996
  • In this study, the characteristics of antiwashout underwater concrete according to the using types of admixture were experimentally investigated. Especially, the comparison on the performance of seven types(CO-A, B, C, D, E, F, G) of the manufactured admixtures was carried out in the same mixing condition and proportions. Based on the results of experiments, the conclusions were summarized as follows : (1) The slump flow on most of specimens except by CO-F type were progressed very well. (2) In most of products, the measured values of suspensions, pH's and air contents were lower than their reference values. However, CO-B, CO-F and CO-G types exceeded the reference ones in suspension and pH. (3) The time lags between initial and final setting were about three hours in most of tests, however, the maximum difference of total setting time was ten hours in comparing with the admixture types. The unit weights were mostly lower than $2300kg/m^3$ and the compressive strengths cured by salt water were about 80% of the ones by fresh water. (4) Finally, in spite of some problems, most of the manufactured admixtures may be performed well their functions in antiwashout under-water concrete if the using quantities are properly controlled by the site experiments.

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