• Title/Summary/Keyword: 생활재

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A Field Survey on Number and Volume of the Living Commodities of Children (초등학생의 생활재 수량 및 용적특성에 관한 현장조사연구)

  • 이연숙;조은경;김주연;권오진;허진민
    • Proceeding of Spring/Autumn Annual Conference of KHA
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    • 2002.11a
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    • pp.143-148
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    • 2002
  • Residential indoor space is a major living setting for young children where multi-dimension at development can be expected through the interaction with items and components of the environment. The physical environment and attributes have been, however, relatively ignored. Especially during last several decades of housing development, residential units have been produced without accurate understanding of residents' material possession. To better design living environments, especially, a life setting for children, this research focused on finding out the characteristics of living items which belong to and are used by children.

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Stabilization of heavy metals of Municipal Solid Waste Incineration Bottom Ash by Carbonation (탄산화 반응에 의한 생활폐기물 소각 바닥재의 중금속 안정화)

  • Han, Gi-Chun;Um, Nam-Il;You, Gwang-Suk;Ahn, Ji-Whan
    • Proceedings of the Korean Institute of Resources Recycling Conference
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    • 2005.05a
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    • pp.33-36
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    • 2005
  • 생활폐기물을 소각한 후 발생되는 바닥재는 토목, 건설 분야에서 골재로서 활용 가치가 높으나, Cu, Pb 등 일부 중금속의 용출량이 환경기준치를 초과하여 바닥재의 재활용을 저해시키는 주요 요인으로 작용하고 있다. 본 연구에서는 바닥재의 중금속 용출을 저감시키기 위한 방법으로서 인위적인 탄산화에 의한 생활폐기물 소각 바닥재의 중금속 안정화 특성을 조사하였다. 4mesh를 기준으로 각 입단에 대해 고액비, 온도, $CO_2(g)$ 주입량에 따라 중금속 용출농도를 조사하였다. 중금속용출시험 결과 Pb, Cr, Cd, As는 미량 또는 불검출되었으며, Cu는 4mesh 이상에서 2.21mg/L, 4mesh이하에서 5.12mg/L로 4mesh이하에서 환경기준치를 초과하였다. 4mesh이하에 대해 탄산화 반응을 수행한 결과 $CO_2(g)$ 주입됨에 따라 pH는 초기 12.5에서 8까지 감소하였으며, Cu의 용출 농도는 pH 10에서 1.34mg/L까지 감소되었으며, pH 9-8에서는 불검출되어 탄산화 반응에 의해 바닥재의 환경적 안정성을 증진시킬 수 있음을 확인할 수 있었다.

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A Study on Recycling of Waste Polyethylene Film (폐폴리에틸렌 필름의 재활용에 관한 연구)

  • Lee, Hwan-Kwang
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.9 no.1
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    • pp.182-188
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    • 2008
  • The compounds of recycled polyethylene(PE) and fly-ashes were prepared. Polymers used were sorted PE from mixed plastics of household waste and Low Density Polyethylene(LDPE) and Linear Low Density Polyethylene(LLDPE) recycled from the scrap of packaging film plants. Fly-ashes were from the power plant and from the household waste incinerator. The tensile strength of recycled LDPE and LLDPE compounds decreased and the flexural modulus increased with greater amount of the power plant fly-ash. Anthracite fly-ash gave rise to slightly higher tensile and flexural strength of the LLDPE mixtures than bituminous coal fly-ash presumably due to higher content of unburned carbon. The incinerator fly-ash introduced to household waste PE enhanced both tensile strength and flexural modulus of the compounds. When LDPE and household waste PE were used together, the synergistic effect of incinerator fly-ash to household waste PE was offset by reduced crystallization of LDPE due to the filler particle. The compounds of household waste PE and incinerator fly-ash might be applied to structural materials for such as sewage pipe, which reduces the waste treatment cost and conserve the environment and resources.

Vegetation Effects and Properties on Green Soil Blended with Cement-Based Materials for Slope Stability (시멘트 기반 재료를 혼합한 사면 안정용 녹생토의 물성 및 식생 영향성)

  • Choi, Yoon-Suk;Kim, Joo-Hyung;Cho, Young-Keun;Kim, Ho-Kyu;Park, Ok-Yun
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.9 no.2
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    • pp.117-126
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    • 2021
  • An experimental study was carried out to investigate the applicability of cement-based materials for green soil which is a soil for promoting plant growth. The results show that the shear strength of the green soil mixed with gypsum cement (No.3) was low, but the hardness (23.6mm) and pH value (7.4) was most suitable for the vegetation environment. In addition, the initial vegetation germination of green soil, which improved performance by adding a moisturizer, was slower than that of general green soil, and the conductivity value tended to be slightly higher. On the other hand, the slope adhesion of advanced green soil was high, and it was found that the plant growth rate and the regeneration capacity were superior after time passed.