Lim Myung Hee, Kim Seung Hyun, Kim Young Uk, Khim Jeehyeong
Department of Civil and Environmental Engineering, Korea University, 5-ga, Anam-dong, Sungbuk-gu, Seoul 136-701, South Korea.
Ultrason Sonochem. 2007 Feb;14(2):93-8. doi: 10.1016/j.ultsonch.2006.03.003. Epub 2006 Apr 27.
To examine the reaction rates of sonochemical degradation of aqueous phase carbon tetrachloride, trichloroethylene and 1,2,3-trichloropropane at various temperatures, power intensities, and saturating gases, the batch tests were carried out. The degradations of chlorinated hydrocarbons were analyzed as pseudo first order reactions and their reaction rate constants were in the range of 10(-1)-10(-3)/min. The reaction was fast at the low temperature with higher power intensity. Also, the reaction went fast with the saturating gas with high specific heat ratio, high solubility and low thermal conductivity. The main mechanism of destruction of chemicals was believed the thermal combustion in the bubble.
为了研究在不同温度、功率强度和饱和气体条件下,水相中四氯化碳、三氯乙烯和1,2,3-三氯丙烷的声化学降解反应速率,进行了间歇试验。将氯代烃的降解分析为拟一级反应,其反应速率常数在10(-1)-10(-3)/分钟范围内。在低温和较高功率强度下反应较快。此外,使用比热比高、溶解度高和热导率低的饱和气体时反应也较快。认为化学物质破坏的主要机制是气泡中的热燃烧。