重庆主城区两江溶解有机质的荧光光谱特征
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摘要
应用荧光发射、三维荧光光谱(EEM)技术研究了重庆主城区长江、嘉陵江水体中溶解有机质(DOM)的荧光光谱特征在2008年4~8月的变化规律,以"5·12"汶川地震及唐家山堰塞湖事件与7和8月丰水期为出发点,结合两江各采样段面的pH,DO,DOC,TOC与EEM指纹特征、荧光指数(f_(450/500))等参数,探讨了两江DOM的组成、分布及其变化规律,着重阐述了EEM中类腐殖酸、类富里酸和类蛋白质3类荧光峰的环境生态行为特征及其影响。实验结果显示两江水体中DOM以类富里酸和类腐殖酸为主,嘉陵江类蛋白质较强,两江水体汇合后,各荧光峰都有所减弱;5月、6月和丰水期两江DOM的类蛋白显著增强,多为陆源所致,丰水期两江各荧光峰在汇合后明显降低。
The fluorescence emission and excitation emission matrix(EEM) technologies were used to characterize the dissolved organic matter(DOM) in the water body of the Yangtze River and Jialing River around the Chongqing urban areas from April to August 2008.Concerning about the accidents of the Wenchuan' s Earthquake in May and Tangjiashan Yansaihu' s effects in June,and the high water period time in the summer in two months of July and August,from the EEM obtained from each sampling station and time,the composition,distribution and their changing features of the DOM in the two rivers were investigated as combined with the water samples' environmental parameters such as pH,DO,DOC with EEM's fingerprint features,f_(450/500) etc;finally the bio-environment behavior effects of the three types of fluorescence peaks were elaborated,where humic-like,fulvic -like,and protein-like from the five sampling stations' EEMs during the five months were given detailed representation. From the experimental results obtained,the fluorescence peaks are mainly composed of two types of fluorophores:humic-like and protein-like in the two rivers around the Chongqing urban areas during the investigation in five months,the protein-like's peaks value in Jialing River is higher than the values in the Yangtze River,and all the fluorescence peaks in the two Rivers' water body decrease more or less after the two Rivers join in Chun Tan sampling station;the protein-like peak is notably higher after the"5·12"Earthquake period time including May and June and high water period time,which mainly originated from terrestrial sources,but its intensities decreased observably while the water bodies of the two rivers joining together in the Chao Tianmen and Chun Tan's sampling station.
引文
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