Continuous fluorescence excitation-emission matrix monitoring of river organic matter

被引:116
作者
Carstea, Elfrida M. [1 ]
Baker, Andy [2 ]
Bieroza, Magdalena [3 ]
Reynolds, Darren [4 ]
机构
[1] Natl Inst R&D Optoelect, RO-077125 Magurele, Romania
[2] Univ New S Wales, Connected Waters Initiat, Water Res Lab, Manly Vale, NSW 2093, Australia
[3] Univ Bristol, Dept Civil Engn, Bristol BS8 1TR, Avon, England
[4] Univ W England, Bristol BS16 1QY, Avon, England
关键词
Fluorescence spectroscopy; Water quality monitoring; Dissolved organic matter; IN-SITU; SPECTRA; VARIABILITY; TOOL; CALIBRATION; EFFICIENCY; REMOVAL; SYSTEMS; CARBON; WASTE;
D O I
10.1016/j.watres.2010.06.036
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Real-time fluorescence monitoring has been mostly performed in marine systems, with little progress being made in the application of fluorescence excitation emission matrix (EEM) spectroscopy, especially for freshwater monitoring. This paper presents a two weeks experiment where real-time fluorescence EEM data have been obtained for Bourn Brook, Birmingham, UK, using an in-situ fibre-optic probe. Fluorescence EEMs were measured every 3 min for two weeks, with control 'grab' samples every hour analyzed for fluorescence EEMs as well as pH, conductivity and dissolved organic carbon. Comparison of real-time and control samples showed an excellent agreement, with no evidence of fibre-optic probe fouling. EEMs of different character were identified using self-organizing maps, which demonstrated seven clusters of fluorescence EEMs which related to the intensity of fluorescence and relative intensities of peak T-1 and T-2 vs. peak C and peak A fluorescence. Fluorescence intensity of peaks A and C were observed to increase with rainfall, and a diesel pollution event was detected through an increase in T-2 fluorescence. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:5356 / 5366
页数:11
相关论文
共 37 条
[31]   FINGERPRINTING PETROLEUM CONTAMINATION USING SYNCHRONOUS SCANNING FLUORESCENCE SPECTROSCOPY [J].
PHARR, DY ;
MCKENZIE, JK ;
HICKMAN, AB .
GROUND WATER, 1992, 30 (04) :484-489
[32]   The differentiation of biodegradable and non-biodegradable dissolved organic matter in wastewaters using fluorescence spectroscopy [J].
Reynolds, DM .
JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2002, 77 (08) :965-972
[33]   Rapid and direct determination of wastewater BOD values using a fluorescence technique [J].
Reynolds, DM ;
Ahmad, SR .
WATER RESEARCH, 1997, 31 (08) :2012-2018
[34]   Classification of two-dimensional fluorescence spectra using self-organizing maps [J].
Rhee, JI ;
Lee, KI ;
Kim, CK ;
Yim, YS ;
Chung, SW ;
Wei, JQ ;
Bellgardt, KH .
BIOCHEMICAL ENGINEERING JOURNAL, 2005, 22 (02) :135-144
[35]   Application of multi-way models to the time-resolved fluorescence of polycyclic aromatic hydrocarbons mixtures in water [J].
Selli, E ;
Zaccaria, C ;
Sena, F ;
Tomasi, G ;
Bidoglio, G .
WATER RESEARCH, 2004, 38 (09) :2269-2276
[36]   THE USE OF IN SITU AND AIRBORNE FLUORESCENCE MEASUREMENTS TO DETERMINE UV ABSORPTION COEFFICIENTS AND DOC CONCENTRATIONS IN SURFACE WATERS [J].
VODACEK, A ;
HOGE, FE ;
SWIFT, RN ;
YUNGEL, JK ;
PELTZER, ET ;
BLOUGH, NV .
LIMNOLOGY AND OCEANOGRAPHY, 1995, 40 (02) :411-415
[37]   Photodegradation of natural organic matter from diverse freshwater sources [J].
Winter, Anna R. ;
Fish, Terry Anne E. ;
Playle, Richard C. ;
Smith, D. Scott ;
Curtis, P. Jefferson .
AQUATIC TOXICOLOGY, 2007, 84 (02) :215-222