최근 새로운 교면포장 재료로 사용되고 있는 라텍스 개질 콘크리트(LMC; Later Modified Concrete)는 부착강도 및 휨 강도가 우수하고 염분 및 수분침투에 방수효과가 있어 점차 활용이 증가될 전망이다. 또한, 초속경시멘트를 사용한 라텍스 개질 콘크리트(RSLMC; Rapid-Setting Latex Modified Concrete)는 3시간에 실용강도를 발휘하여 긴급을 요하는 공사나 보수재료로서 적합하나, 염화물의 침투 및 동결융해로 인한 내구성능 저하 등의 문제가 검증되지 않아 이에 대한 연구가 필요한 실정이다. 따라서, 본 연구에서는 RSLMC의 내구특성을 평가하기 위해 염소이온 투과실험 및 동결융해 저항성 실험을 수행하여 투수특성과 동결융해 저항성을 분석하였다. 실험은 ASTM 규정과 KS 규정에 따라 실시하였으며, 실험변수는 라텍스 혼입률 0, 5, 10, 15, 20%와 소포제 혼입률 0, 1.6, 3.2, 4.8, 6.4%로 수행하였다. 실험결과 RSLMC는 라텍스 혼입률 15%에서 소포제 혼입량에 상관없이 모두 100이하의 전하량을 나타내어 매우 낮은 투수특성을 보였다. 또한, 소포제의 혼입률 3.2% 이상인 경우 동결융해 300 싸이클까지 상대동탄성계수가 90% 이상을 유지하여 소포제의 사용이 동결융해 저항성에 효과가 있는 것으로 나타났다.
최근 새로운 교면포장 재료로 사용되고 있는 라텍스 개질 콘크리트(LMC; Later Modified Concrete)는 부착강도 및 휨 강도가 우수하고 염분 및 수분침투에 방수효과가 있어 점차 활용이 증가될 전망이다. 또한, 초속경시멘트를 사용한 라텍스 개질 콘크리트(RSLMC; Rapid-Setting Latex Modified Concrete)는 3시간에 실용강도를 발휘하여 긴급을 요하는 공사나 보수재료로서 적합하나, 염화물의 침투 및 동결융해로 인한 내구성능 저하 등의 문제가 검증되지 않아 이에 대한 연구가 필요한 실정이다. 따라서, 본 연구에서는 RSLMC의 내구특성을 평가하기 위해 염소이온 투과실험 및 동결융해 저항성 실험을 수행하여 투수특성과 동결융해 저항성을 분석하였다. 실험은 ASTM 규정과 KS 규정에 따라 실시하였으며, 실험변수는 라텍스 혼입률 0, 5, 10, 15, 20%와 소포제 혼입률 0, 1.6, 3.2, 4.8, 6.4%로 수행하였다. 실험결과 RSLMC는 라텍스 혼입률 15%에서 소포제 혼입량에 상관없이 모두 100이하의 전하량을 나타내어 매우 낮은 투수특성을 보였다. 또한, 소포제의 혼입률 3.2% 이상인 경우 동결융해 300 싸이클까지 상대동탄성계수가 90% 이상을 유지하여 소포제의 사용이 동결융해 저항성에 효과가 있는 것으로 나타났다.
Phase change material (PCM) has been developed and applied in various fields as construction material. If the application of PCM as the semi-rigid pavement cement grout becomes available, it would be possible to control the occurrence of a micro crack due to the generation of hydration heat in the ultra rapid harding cement, and if the occurrence of a micro crack is reduced, it would be possible to improve the cohesion performance between asphalt matrix and grout as well as to compact the matrix of the pavement material, improving the durability. Therefore, the applicability review of PCM for the purpose of improving the semi-rigid pavement materials through the shrink reduction of ultra rapid harding cement used as the semi-rigid pavement cement grout was carried out in this study.
Phase change material (PCM) has been developed and applied in various fields as construction material. If the application of PCM as the semi-rigid pavement cement grout becomes available, it would be possible to control the occurrence of a micro crack due to the generation of hydration heat in the ultra rapid harding cement, and if the occurrence of a micro crack is reduced, it would be possible to improve the cohesion performance between asphalt matrix and grout as well as to compact the matrix of the pavement material, improving the durability. Therefore, the applicability review of PCM for the purpose of improving the semi-rigid pavement materials through the shrink reduction of ultra rapid harding cement used as the semi-rigid pavement cement grout was carried out in this
A study to apply phase change material(PCM) to rapid hardening cement paste forming semi-rigid pavement was carried out. The characteristics fresh and hardened paste were evaluated through the experiment for a total of 6 mixtures according to the cement type and the substitution of phase change material for acrylate. The fluidity by substituting phase change material for acrylate satisfied the target flow time of 10 to 13 seconds. In case of setting time, it was possible to secure the performance of rapid hardening cement by substituting phase change material, and if the substitution ratio over 60%, the initial set occurred 1 to 2 minutes faster than other mixtures. In case of compressive strength and bond strength, it showed similar strength characteristics with the plain mixture, and it satisfied both the target compressive and bonding strength of 36MPa and 2MPa. The mixture substituting phase change material showed higher resistance to chloride ion penetration than the mixture only using acrylate and the OPC level was insufficient. From the results of physical and mechanical performances of semi-rigid pavement cement paste, the phase change material substitution rate of 20% was effective in the range of this study.
In this study, manufactured of cement mortar using high early strength cement(10 ~ 50 wt%) and blast furnace slag powder(50 ~ 90 wt%), according to compressive strength and flexural strength of hardened cement mortar. XRD and SEM were evaluated utilizing the initial cement hydration properties.
In this study, “Recycling of ladle furnace slag (LFS) in the electric furnace process to produce ultra rapid harding cement” is the target technology. Environmental and economic efficiencies of target technology are analyzed and ecoefficiency is assessed based on these results. The methodologies to analyze environmental and economic efficiencies are LCA (Life Cycle Assessment) and market price which is calculated based on LCC (Life Cycle Costing), respectively. Global warming potential (GWP) and abiotic resource depletion (ARD) are selected as indicator of environmental analysis. The reference flow of this study is considered 1kg of ultra rapid harding cement which made from the LFS. As a result of that, target process has environmental efficiency of 13.1 for global warming and 5.93 for abiotic resource depletion and has economic efficiency of 4.86. Eco-efficiencies are derived from this study can be applied to slag recycling policy formulation and effect analysis in the future. This can be also applied to improve process’s environmental and economic performances.