PURPOSES : The purpose of this study is to analyze not only the strength but also the durability and abrasion resistance of concrete pavements as increasing the cases of domestic concrete pavement damage which do not meet the service years.
METHODS: The bottom layer of a two-lift concrete pavement was paved with original Portland cement (OPC) with 20~23 cm thickness. On the other hand, the top-layer, which is directly exposed to the environment and vehicles, was paved with high-performance concrete (HPC) with 7~10 cm thickness. For the optimal mixed design of the top-layer material of a two-lift concrete pavement, silica fume and polymer powder were mixed. Furthermore, it analyzes abrasion resistance of concrete as follow‘ ASTM C 779’which is dressing wheel abrasion test method.
RESULTS : As a result, abrasion resistance is improved with increasing the silica fume ratio. When the polymer powder is mixed, abrasion resistance of concrete is much improved. However, the effect of mixing ratio is not significant. It is very effective that adding both silica fume and polymer powder occur 20~40% of abrasion comparing with OPC variables.
CONCLUSIONS : The concrete strength and durability increased with silica fume and polymer powder. In particular, it is significant increasing strength of polymer powder under the flexural strength. In the abrasion resistance side, it is also significant when the silica fume and polymer powder used together.
The purpose of this study is to investigate the optimum conditions of dispersion and strength to maximize the mechanical properties of woody cellulose nano–crystal (CNC). As a dispersing method, ultrasonic dispersing machine and magnetic stirrer were used as the mechanical dispersion method. The mixing ratio of cellulose nano-crystals (CNCs) was 0.2% and the dispersion time was 10 minutes. Steam curing was carried out for 6, 24 and 48 hours. Based on the experimental results, we will propose source technology regarding CNC for construction materials.
본 연구에서 광촉매 종류 및 혼입율에 따른 역학적 특성 및 질소산화물 제거 특성을 평가하였고 보다 경제적이고 효율적인 광촉매 콘크리트 제조를 위해 분할 타설하는 방법에 대해 검토하였다. 그 결과 광촉매 혼입률이 5%일 때 가장 높은 압축강도와 탄성계수가 측정되었다. 광촉매 반응에 의한 질소산화물 제거 성능평가 결과 광촉매 혼입률이 증가함에 따라 질소산화물 제거율이 증가하였다. 이때 광촉매 P-25의 질소산화물 제거성능은 NP-A보다 우수하였다. 경제성을 고려하여 콘크리트 표면의 일정 두께를 광촉매 콘크리트로 타설하는 분할 타설 방안을 제안하였고, 이때의 일체화 성능을 평가하였다. 그 결과 역학적 성능 및 내구성능이 Plain에 비해 동등 이상으로 나타나 일체화 거동을 만족하는 것으로 판단된다.
The main purpose of this study is to provide fundamental data in reducing thermal cracks of mass concrete by using Urea. Substitution methods of Urea mixed concrete was different from existing substitution method of concrete. Therefore existing research for Urea mixed concrete had no definite criterion in performance evaluation. In this research, setting-up new criteria, Urea/Water ratio, when evaluating experiment results. As result of experiment, Cement Paste flow was increased largely when mixed in addition method. But there were almost no differences in degree of temperature reduction and time-delay.