Comparison between HPSEC-OCD and F-EEMs for assessing DBPs formation in water
Euis Nurul Hidayah1, Yung-Chen Chou1, Hsuan-Hsien Yeh1
1a Department of Environmental Engineering , National Cheng Kung University , Tainan , Taiwan.
Summary
Potassium permanganate preoxidation breaks down natural organic matter into smaller molecules, aiding removal during water treatment. This helps identify organic precursors for disinfection by-products, improving treatment strategies.
Area of Science:
- Environmental Chemistry
- Water Treatment Technologies
- Analytical Chemistry
Background:
- Natural organic matter (NOM) in source water influences the formation of disinfection by-products (DBPs).
- Potassium permanganate (KMnO4) preoxidation is a common water treatment step.
- Characterizing NOM is crucial for effective DBP control.
Purpose of the Study:
- To characterize NOM in source and treated water after KMnO4 preoxidation and coagulation.
- To identify the main organic fractions responsible for DBP formation.
- To develop predictive models for DBP formation potential.
Main Methods:
- High-performance size exclusion chromatography with organic carbon detection (HPSEC-OCD).
- Fluorescence excitation-emission matrices (F-EEMs) with parallel factor (PARAFAC) analysis.
- Analysis of bulk parameters like dissolved organic carbon (DOC) and UV254 absorbance.
Main Results:
- KMnO4 preoxidation decreased high molecular weight organics and increased low molecular weight organics.
- Coagulation partially removed both original and KMnO4-generated organic matter.
- Humic substances were identified as the primary organic composition.
- Predictive models for trihalomethane (THM) and haloacetic acid (HAA) formation potential were more accurate using HPSEC-OCD data than PARAFAC data.
Conclusions:
- HPSEC-OCD and F-EEMs with PARAFAC are effective for NOM characterization.
- KMnO4 preoxidation alters NOM characteristics, impacting its removal and DBP formation potential.
- Predictive models based on HPSEC-OCD fractions offer a valuable tool for identifying DBP precursors and optimizing water treatment for DBP control.
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