• Title/Summary/Keyword: alkali-activator

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Mechanical and Germination Characteristics of Stabilized Dredged Soil (고화준설토의 역학적 특성과 식생 발아 특성)

  • Lee, Miji;Mun, Kyoungju;Yoon, Gillim;Eum, Hyunmi;Kim, Yuntae
    • Journal of the Korean GEO-environmental Society
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    • v.15 no.3
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    • pp.33-40
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    • 2014
  • In this paper, mechanical and germination characteristics of stabilized dredged soils were investigated to recycle dredged soil in eco-friendly manner such as waterfront construction. Non sintering binder (NSB), which was developed by using interchemical reactions between slag, high-calcium fly ash, alkali activator on the dredged marine clay, was added to dredged soil. Ordinary portland cement was also used for the comparison of two binders. Experimental tests such as flow test and unconfined compressive test were carried out to evaluate characteristics of stabilized dredged soil. Leaching test, pH measure, vegetation germination test were also conducted to consider environmental applicability. The unconfined compressive tests shows that unconfined compressive strength (UCS) also increases with the increase of curing time and mixed ratio. UCS of NSB mixtures were higher than those of OPC mixtures. Germination tests showed that germination and sprouting date are better in NSB mixture than OPC mixture. It can be explained that germination decreased as pH and 7-day strength increased.

Characterization of geopolymer made of municipal solid waste incineration ash slag (도시쓰레기 소각재 슬래그로 제조된 지오폴리머의 특성)

  • Kim, Yongsung;Kang, Seunggu
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.24 no.1
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    • pp.15-20
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    • 2014
  • In this research, the geopolymer was fabricated using municipal solid waste incineration ash (denoted as MSWIA) slag and alkali activator, NaOH and its properties were analyzed. Particularly, the effects of NaOH molarity, particle size of MSWIA, and liquid/solids ratio on the compressive strength of geopolymers were investigated. The compressive strength of geopolymers fabricated increased with finer grain size of MSWIA, and optimum value of the liquid/solids ratio was identified as 0.13. As the molarity of the NaOH increased, the compressive strength of geopolymers was increased. Even more the 20 M of NaOH, but the strength was not increased. The calcium aluminum silicate and calcium aluminum silicate hydrate zeolites were generated in the geopolymer fabricated with more than 20 M of NaOH, with some unreacted silica and unknown crystals remained. The highest compressive strength, 163 MPa, of geopolymer was appeared at conditions of curing temperature $70^{\circ}C$, and 20 M of NaOH, indicating that the high concentration of NaOH accelerates the geopolymer reaction and dense microstructure. The high-strength geopolymer fabricated in the present study is expected to contribute significantly to develop the field of cement alternative substances and to improve the recycling rate of MSWIA slag.

Physical and Chemical Properties of Chlorine Bypass System-Dust from Cement Manufacturing (시멘트 생산 시 발생하는 Chlorine Bypass System-dust의 물리 및 화학적 특성)

  • Han, Min-Cheol;Lee, Dong-Joo
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.7 no.4
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    • pp.310-315
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    • 2019
  • This study conducted a series of studies to find alternative ways to use Chlorine Bypass System-dust(CBS-dust) in cement production. The results of engineering characteristics of CBS-dust are summarized as follows. First of all, the density of CBS-dust is 2.40, lighter than cement and the pH was 12.50 which was strong alkaline. In terms of particle size, it was 11.70 ㎛ which was finer than cement. With chemical properties, calcium oxide(CaO) was the highest as 35.10%, potassium oxide(K2O) was 32.43%, potassium chloride(KCl) was 19.46%, sulfur oxide(SO3) was 6.81%, and the remaining chemical components are SiO2, Fe2O3, Al2O3, MgO, and the like. Therefore, if CBS-dust is used as early-strength chemical admixtures in the concrete secondary products that use a large amount of mineral admixtures without rebar, it can be an effective method for increasing the strength of concrete as an alkali activator and preventing early-frost damage of Cold Weather Concrete.

Influence of Na/Al Ratio and Curing Temperature of Geopolymers on Efflorescence Reduction (Na/Al 비와 양생온도가 지오폴리머의 백화억제에 미치는 영향)

  • Kim, Byoungkwan;Heo, Ye-Eun;Chon, Chul-Min;Lee, Sujeong
    • Resources Recycling
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    • v.27 no.6
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    • pp.59-67
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    • 2018
  • Efflorescence is a white deposit of powders in the surface of cement concrete which can also occur in geopolymers. Efflorescence occurs when sodium ions in alkali activator react with atmospheric carbon dioxide to form sodium carbonate components. In this study, we investigated whether the secondary efflorescence can be reduced by controlling the Na/Al mole ratio or by changing the curing temperature and heat curing time in fly ash-based geopolymers. The 28 days compressive strength in geopolymers having Na/Al ratio of 1.0 was higher than geopolymers having Na/Al ratio of 0.8. The strength increased with the increasing curing temperature and longer heat curing time. On the other hand, efflorescence was lower when the curing temperature was high and the heat curing time was longer in the geopolymers having Na/Al ratio of 1.0. The geopolymers having Na/Al ratio of 0.8 showed accelerated efflorescence occurrence than the geopolymers having Na/Al ratio of 1.0. In order to reduce the occurrence of the secondary efflorescence of fly ash-based geopolymers, it will be advantageous to maintain the Na/Al ratio at 1.0, increase the curing temperature, and lengthen the heating curing time.