Back to Search Start Over

Multi-Parameter Compensation Method for Accurate In Situ Fluorescent Dissolved Organic Matter Monitoring and Properties Characterization

Authors :
Rodney Anthony Stewart
John Awad
Steve Bird
Edoardo Bertone
Kelvin O'Halloran
Guilherme F. de Oliveira
Aleicia Holland
de Oliveira, Guilherme F
Bertone, Edoardo
Stewart, Rodney A
Awad, John
Holland, Aleicia
O'Halloran, Kelvin
Bird, Steve
Source :
Water, Vol 10, Iss 9, p 1146 (2018), Water, Volume 10, Issue 9
Publication Year :
2018
Publisher :
MDPI AG, 2018.

Abstract

The recent deployment of fluorescent dissolved organic matter (fDOM) probes in dam catchments and drinking water treatment plants (DWTP) for water quality monitoring purposes has resulted in the production of a large amount of data that requires scientific evaluation. This study introduces a comprehensive, transferable methodological framework for scientists and water professionals to model fluorescence site-specific quenching on fDOM probe readings caused by temperature, suspended particles, and the inner filter effect (IFE) and applies it to an Australian subtropical reservoir. The findings revealed that quenching due to turbidity and IFE effects were best predicted by threshold autoregressive models. Raw fDOM probe measurements were validated as being more reliable if they were systematically compensated using the proposed procedure. The developed fDOM compensation procedure must consider the instrument features (i.e., wavelength broadband and responsiveness) and site-specific conditions (i.e., DOM characteristics and suspended particles). A finding of particular interest was that the compensated normalized fDOM readings had a high correlation with the low (&lt<br />500 Da) molecular weight fraction of the DOM, which is more recalcitrant to removal by coagulation. As a consequence, there is potential to use compensated fDOM probe readings to provide real-time, in situ information on DOM properties in freshwater systems, which will enable water treatment plant operators to optimize the coagulation process.

Details

Language :
English
ISSN :
20734441
Volume :
10
Issue :
9
Database :
OpenAIRE
Journal :
Water
Accession number :
edsair.doi.dedup.....ce35a5359834061c9f3cd67d628ee9cd