• Title/Summary/Keyword: mixed ash

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A Study on the Engineering Characteristics of Soil - Fly Ash - Bentonite Liner (플라이애시-벤토나이트 혼합 점토차수재의 공학적 특성에 관한 연구)

  • Lee, Changhwan;Kim, Myeongkyun
    • Journal of the Korean GEO-environmental Society
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    • v.9 no.6
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    • pp.21-29
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    • 2008
  • As household and industrial wastes continue to rapidly increase every year, the demands for landfill sites are also increasing. However, the construction of landfill sites causes many problems due to the high costs of liners, while the leachate from the landfills generates secondary contamination of surrounding lands and groundwater. The purpose of this study is to determine the proper mixing ratio to meet the liner conditions (must be less than $1{\times}10^{-7}cm/sec$), using the local soil as the main material and using fly ash, bentonite, and cement as the mixing materials. The possibility of using this mixture as the liner for landfill sites was examined. To determine the proper mixing ratio, this study conducted basic physical properties tests, compaction tests, consolidation tests, and uniaxial compression tests. It was found that the higher the ratio of bentonite, the lower the coefficient of permeability, and the higher the ratio of fly ash, the higher the coefficient of permeability. The reason for this is that, while bentonite expands and fills pores, fly ash cannot fill the pores because the particles have a round shape and do not have adhesion. In conclusion, the optimum coefficient of permeability that meets the landfill liner condition was obtained when the ratio of bentonite was 15% or higher. If fly ash was mixed, the landfill liner condition was met when the ratio of bentonite was 15% or higher and the ratio of fly ash was 20% or lower.

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Properties of the Flowability and Strength of Cementless Alkali-Activated Mortar Using the Mixed Fly Ash and Ground Granulated Blast-Furnace Slag (플라이애쉬와 고로슬래그 미분말의 혼합 사용한 무시멘트 알칼리 활성 모르터의 유동성 및 강도 특성)

  • Koh, Kyung-Taek;Ryu, Gum-Sung;Lee, Jang-Hwa
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.5 no.4
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    • pp.114-121
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    • 2010
  • Portland cement production is under critical review due to high amount of CO2 gas released to the atmosphere. Attempts to increase the utilization of a by-products such as fly ash and ground granulated blast-furnace slag to partially replace the cement in concrete are gathering momentum. But most of by-products is currently dumped in landfills, thus creating a threat to the environment. Many researches on alkali-activated concrete that does not need the presence of cement as a binder have been carried out recently. However, most study deal only with alkali-activated ground granulated blast furnace slag or fly ash, as for the combined use of the both, little information is reported. In this study, we investigated the influence of mixture ratio of fly ash/ blast furnace slag tand curing condition on the flowability and compressive strength of mortar in oder to develop cementless alkali-activated concrete. In view of the results, we found out that the mixture ratio of fly ash/blast furnace slag always results to be significant factors. But the influence of curing temperature in the strength development of mortar is lower than the contribution due to other factors. At the age of 28days, the mixture 50% fly ash and 50% ground granulated blast furnace slag activated with 1:1 the mass ratio of 9M NaOH and sodium silicate, develop compressive strength of about 65 MPa under $20^{\circ}C$ curing.

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Lightweight Aggregate Bloating Mechanism of Clay/Incinerated Ash/Additive System (점토/소각재/첨가제계 인공 경량골재의 발포기구)

  • Kwon, Yong-Joon;Kim, Yoo-Taek;Lee, Ki-Gang;Kim, Young-Jin;Kang, Seung-Gu;Kim, Jung-Hwan;Park, Myoung-Sik
    • Journal of the Korean Ceramic Society
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    • v.38 no.9
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    • pp.811-816
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    • 2001
  • The influence of the incinerated ash and additives on glass phase formation of lightweight aggregate, weight-lightening, and the bloating mechanism was investigated. Clay was used as base materials and incinerated ash was added from 0 to 30wt%. The additives such as $Na_2CO_3,\;CaCo_3,\;K_2CO_3,\;MgCO_3$, and a little amount of waste oil were added to the mixed body. In clay/incinerated ash/additive system, it turned out that $CaCO_3\;and\;MgCO_3$ were the components for glass phase formation and $Na_2CO_3$ was the component for both glass phase formation and weight-lightening. The small addition of waste oil from 0.5wt% to 3.0wt% affect on the bloating of aggregate. Incinerated ash had a good effect on the glass phase controlling. The most effective condition controlling glass phase and bloating of aggregate was 10wt% incinerated ash, 2wt% waste oil at 1200$^{\circ}$C. The bloating mechanism of lightweight aggregate is as follows; 1) micro-crack formation caused by thermal-shock and gas generation from inside of aggregate, 2) volume expansion by glass phase formation on the aggregate surface and rapid gas bloating inside of aggregate, 3) densification after bloating.

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Strength Estimation of GGBF Slag Concrete by Warm Water Method (온수법에 의한 고로슬래그 미분말 혼합 콘크리트의 강도추정)

  • 문한영;최연왕;김용직
    • Proceedings of the Korea Concrete Institute Conference
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    • 2001.05a
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    • pp.313-318
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    • 2001
  • The cost of producing ready mixed concrete(remicon) has increased due to the rising cost of raw materials for concrete and transportation caused by the upturn of oil price. In contrast, its orders have also decreased due to the recession of the construction industry. In addition, the cost of delivery has decreased owing to the excessive competition among manufacturing companies, so manufacturing companies began mixing ground granulated blast-furnace slag or fly ash to lower the cost. However, there is no way to determine whether the strength of the concrete using the admixture is satisfied or dissatisfied with design strength at the early age. The purpose of this study is dedicated to early strength estimation of concrete mixed with an admixture, ground granulated blast-furnace slag.

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An experimental study on the evaluation of chloride attack resistance in mortar and concrete mixed with pozzolanic admixtures (포졸란계 혼화재를 혼입한 모르타르 및 콘크리트의 내염해 저항성 평가에 관한 실험적 연구)

  • 박정준;김도겸;하진규
    • Proceedings of the Korea Concrete Institute Conference
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    • 2000.10a
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    • pp.461-466
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    • 2000
  • To improve the quality of concrete, we usually consider the reduction of water/cement ratio, the increase of concrete cover depth and the use of mineral admixtures. Reportedly, the use of admixtures make concrete more durable and tighten against water. But, it is needed to study more about the relationship between the admixtures and the chloride ion diffusion. Therefore, in this study, we focused on the chloride ion diffusion properties of the pozzolanic admixtures such as fly-ash, slag and silica fume which are known as being useful on chloride attack resistance when mixed into mortar or concrete. Furthermore, we treed to analyze the correlation between mortar and concrete using the admixture, which is useful for analyzing chloride ion diffusion mechanism.

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A Study of Rheological Properties on Cement Paste System Mixed with Mineral Admixtures (광물혼화재가 혼합된 시멘트 페이스트 시스템의 레올로지 특성에 관한 연구)

  • 박대효;노명현;박춘근
    • Proceedings of the Korea Concrete Institute Conference
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    • 2003.11a
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    • pp.505-508
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    • 2003
  • The rheological properties of cement paste system mixed with mineral admixture for the purpose of increasing the strength and improving durability and rheology of concrete were investigated. The results were as follows: The rheological properties of one-ingredient paste system were improved with increasing the dosage of superplasticizer. For two-ingredients paste system, increasing the replacement rate of BFS(blast furnace slag) and FA(fly ash), the yield value and plastic viscosity were decreased compared with non-replacement. In the OPC(ordinary portland cement)-SF(silica fume) system, increasing the replacement rate of SF, the plastic viscosity and yield value increased linearly. In three-ingredients paste system, both OPC-BFS-SF and OPC-FA-SF system, the rheological properties were improved compared with the only replacement of SF. Both two- and three- ingredients paste system, the rheological properties using BFS were improved more than FA.

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Production and Statistical Qualtity Control of Low-Heat High Strength Reacy-Mixed Concrete (저발열 고강도 레미콘 제조 및 통계적 품질관리)

  • Park, Yon-Dong;Noh, Jae-Ho;Han, Chung-Ho;Kim, Hoon
    • Proceedings of the Korea Concrete Institute Conference
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    • 1996.04a
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    • pp.376-381
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    • 1996
  • In this study, the quality contral of high strength reacy-mixed concrete with design compressive strength of 420 kgf/$\textrm{cm}^2$ placed at a tail building for a long period is statistically investigated. The amount of cast-in-place high strength concrete is by about $15000\textrm{m}^3$. The required average compressive striength is 500 kgf/$\textrm{cm}^2$ according to KS F 4009 with assumed coefficient of variation of 11%. Since there are many concrete members in this construction, fly ash is used to reduce the heat of hydration of concrete. As the results of this study, the average actual 28-day compressive strength is 498 kgf/$\textrm{cm}^2$ and the coefficient of variation is 6.7%. The placing speed is comparable to normal strength concrete, however, the pump pressure is higher than that of normal strength concrete.

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Strength-stiffness Evaluation of Cemented Coarse Geomaterials (강화된 조립질 지반재료의 강도 및 강성 평가)

  • Cho, Chung-Yeon;Park, Seong-Wan;An, Dong-Seok;Park, Hee-Mun
    • Proceedings of the Korean Geotechical Society Conference
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    • 2009.03a
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    • pp.326-330
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    • 2009
  • In this study, coarse-grained geomaterials were mixed with cementing binder. To do that, typical soils from road construction sites were selected to assess the strength and stiffness characteristics of cemented geomaterials mixed with cement and recycled fly ash. Mechanistic evaluation on these samples was performed depending on the various binder contents. Increasing cementing content tend to increase the resilient modulus under repeated loadings and unconfined strength respectively. In addition, the toughness of cemented geomaterials was also estimated in order to check the ability to resisting fatigue failure.

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The Quality Control of Mass Concrete mixed with Fly-Asy (플라이애쉬를 혼합한 매스콘크리트의 품질관리)

  • 박칠림;권영호;이상수;김동석;박상준
    • Proceedings of the Korea Concrete Institute Conference
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    • 1998.10b
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    • pp.940-945
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    • 1998
  • Recently, serious cracking problems have been reported in this country while the process of actual massive concrete construction. he hydration heat arising from the chemical reaction of cement with water causes temperature differentials in between inside and outside of a structural member, and these temperature differentials induce thermal stresses. In this paper, we described on the practical application and quality control of the mass concrete mixed with fly-ash. This project is investigating adiabatic temperature rise test of concrete, mock-up test in the laboratory, ad B/P before placing the mass concrete in site. As a result, we can be prevent temperature cracking from the cement hydration heat of mass concrete and also can be showed up secure quality control flow chart of mass concrete.

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Properties of Superplasticized Ready Mixed Concrete for Heavily Reinforced Concrete Structure (철근배근이 복잡한 구조물에 타설하기 쉬운 초유동 레미콘 특성)

  • 조일호;신무섭;백일환;이건갑
    • Proceedings of the Korea Concrete Institute Conference
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    • 1997.04a
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    • pp.210-219
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    • 1997
  • This research which lays emphasis on ready mixed concrete standard 25-210~240kgf/$\textrm{cm}^2$ shows the influence caused by the ratio of ingredients of superplasticized concrete, and the flowing and strength development of mortar and concrete according to the ratio of ingredients. This research shows that flowability, compactability, and segregation resistivity are the best condition under the following ratio of ingredients: fly ash 30%, unit binders 490~510kg/$\textrm{m}^3$, unit weight of water 184~194kg/$\textrm{m}^3$, fine aggregate ratio 49~51%, and superplasticizer 1.1~1.5%. Following this ratio of ingredients, the reinforced concrete structures to need design strength 25-210~240kgf/$\textrm{cm}^2$ can apply to complicated constructions.

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