Abstract
This study was performed to manufacture a rigid sound absorbing material by increasing the continuous void ratio of cellular concrete, thereby achieving an increase in sound absorption ratio and an enhancement in strength of the cellular concrete. By the experiments, it was determined that an increase in sound absorption ratio is achieved by increasing the added amount of air voids, thereby increasing the continuous void ratio. When the material had a thickness of 5 cm, a satisfactory average sound absorption ratio of 70% was obtained at a continuous void ratio of 40% or more. An increase in the thickness of the sound absorbing material resulted in an increase in sound absorption ratio in a super bass range. The specific gravity of cellular concrete meeting an average sound absorption ratio of 70% was 0.4 at a material thickness of 5 cm, and 0.6 or less at a material thickness of 7 cm. The compressive strength of the cellular concrete having a specific gravity of 0.4 meeting an average sound absorption ratio of 70% or more was 1.37 Mpa at a cement fineness of 3,000. This compressive strength was increased to 3.34 MPa at a cement fineness of 8,000. Accordingly, it was determined that the compressive strength of cellular concrete having continuous voids increases with a higher cement fineness.
본 연구에서는 기포콘크리트속에 연속공극율을 증가시켜 흡음률을 높이면서 강도를 증진시킨 강체형 흡음재의 제조를 목적으로 하였다. 실험결과, 기포첨가량을 증가시켜 연속공극률을 높일수록 흡음률이 증가하였으며, 재료두께 5cm인 경우 연속공극률 40%이상에서 평균흡음률 70%이상을 만족하였다. 또한 흡음재 두께의 증가는 중저음영역에서 흡음률 증가를 나타내었으며 평균흡음률 70%이상을 만족하는 기포콘크리트의 비중은 재료두께 5cm에서 0.4이하, 7cm에서 0.6이하로 나타났다. 그리고 평균흡음률 70%이상 만족하는 비중 0.4인 기포콘크리트의 압축강도는 시멘트분말도 3,000$\textrm{cm}^2$/g의 경우 1.37MPa이나, 시멘트분말도 8,000$\textrm{cm}^2$/g에서는 3.34MPa로 증가되었다. 따라서, 연속공극을 갖는 기포콘크리트의 압축강도는 시멘트분말도가 높을수록 증가하는 것으로 사료된다.