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Physical and Mechanical Properties of Magnesium Oxide Matrix depending on Addition Ratio of Magnesium Chloride

염화마그네슘 첨가율에 따른 산화마그네슘 경화체의 물리 및 역학적 특성

  • Kim, Heon-Tae (Department of Architectural Engineering, Hanbat National University) ;
  • Jung, Byeong-Yeol (Department of Architectural Engineering, Hanbat National University) ;
  • Lee, Sang-Soo (Department of Architectural Engineering, Hanbat National University) ;
  • Song, Ha-Young (Department of Architectural Engineering, Hanbat National University)
  • Received : 2014.01.28
  • Accepted : 2014.04.28
  • Published : 2014.08.20

Abstract

Recently, for longevity of resident building, the main trend is that the change of the inside space organization of resident building from wall construction to rhamen construction, which resulted in increase in use of lightweight composite panel. Thus, in this study, authors analyzed the engineering property of oxide of magnesium depending on the magnesium chloride addition ratio. The results of this research is expected to contribute on providing a fundamental material for the surface materials of lightweight composite panel. As the result of the experiment, as fluidity increased, air content decreased and initial set and final set as the magnesium chloride addition ratio increase. In the aspect of flexural strength and compressive strength, the test specimen showed the highest strength at 40% of the magnesium chloride addition ratio. At 20% of the magnesium chloride addition ratio, the test specimen showed the lowest water absorption rate. As the magnesium chloride addition ratio increases, the expansibility tends to increase as well in the aspect of shrinkage strain. After observing microstructure, we can see hydration products in the form of needle. It appeared high flexural strength because the hydration products have mineral fibrous tissue shape, which also contribute to the cause of the expansibility.

최근 주거건축물의 장수명화를 위해 건축물을 내부공간구성을 벽식구조에서 라멘구조로 변화하면서 경량복합패널의 사용이 증가하는 추세이다. 따라서 본 연구에서는 염화마그네슘 첨가율에 따른 산화마그네슘 경화체의 공학적 특성을 연구하여 경량복합패널의 표면재로 사용하기 위한 기초적 자료로 사용하고자 한다. 실험결과, 염화마그네슘 첨가량이 증가함에 따라 유동성은 증가되었으며, 공기량은 감소하였고, 초결과 종결은 느려졌다. 휨강도와 압축강도에서는 염화마그네슘 첨가율 40%의 시험체가 가장 높은 강도를 발현하였으며, 흡수율의 경우 염화마그네슘 첨가율 20%의 시험체가 가장 낮은 흡수율을 나타내었다. 길이변화에서는 염화마그네슘 첨가율이 증가함에 따라 팽창양이 증가하는 경향을 나타내었으며, 미시구조를 관찰한 결과 바늘형상의 수화생성물을 볼 수 있었다. 이 수화생성물이 광물성 섬유조직 형태를 가지고 있어 높은 휨강도를 발현한 것으로 판단되며, 또한 팽창의 원인으로 판단된다.

Keywords

References

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