4.8 Article

Inflow rate-driven changes in the composition and dynamics of chromophoric dissolved organic matter in a large drinking water lake

期刊

WATER RESEARCH
卷 100, 期 -, 页码 211-221

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.watres.2016.05.021

关键词

Chromophoric dissolved organic matter (CDOM); Inflow rate; Drinking water; Parallel factor analysis (PARAFAC); Lake Qiandao

资金

  1. National Natural Science Foundation of China [41325001, 41230744, 41271355, 41501532]
  2. Social Development Program of Hanzhou [20140533B11]
  3. Swedish Research Council for Environment, Agricultural Sciences and Spatial Planning (FORMAS grant) [2013-1214]
  4. MARS project (Managing Aquatic ecosystems and water Resources under multiple Stress) [603378]
  5. 'CLEAR' (a Villum Kann Centre of Excellence project)
  6. PROGNOS (Predicting in-lake RespOnses to chanGe using Near real time MOdelS - Water Joint Programme Initiative)

向作者/读者索取更多资源

Drinking water lakes are threatened globally and therefore in need of protection. To date, few studies have been carried out to investigate how the composition and dynamics of chromophoric dissolved organic matter (CDOM) in drinking water lakes are influenced by inflow rate. Such CDOM can lead to unpleasant taste and odor of the water and produce undesirable disinfection byproducts during drinking water treatment. We studied the drinking water Lake Qiandao, China, and found that the concentrations of suspended particulate matter (SPM) in the lake increased significantly with inflow rate (p < 0.001). Similarly, close relationships between inflow rate and the CDOM absorption coefficient at 350 nm a(350) and with terrestrial humic-like fluorescence C3 and a negative relationship between inflow rate and the first principal component (PC1) scores, which, in turn, were negatively related to the concentrations and relative molecular size of CDOM (p < 0.001), i.e. the concentration and molecular size of CDOM entering the lake increased proportionately with inflow rate. Furthermore, stable isotopes (delta D and delta O-18) were depleted in the upstream river mouth relative to downstream remaining lake regions, substantiating that riverine CDOM entering the lake was probably driven by inflow rate. This was further underpinned by remarkably higher mean chlorophyll-a and in situ measured terrestrial CDOM fluorescence (365/480 nm) and apparent oxygen utilization (AOU), and notably lower mean PC1 and CDOM spectral slope (S275-295) recorded in the upstream river mouth than in the downstream main lake area. Strong negative correlations between inflow rate and a(250):a(365), S275-295, and the spectral slope ratio (S-R) implied that CDOM input to the lake in rainy period was dominated by larger organic molecules with a more humic-like character. Rainy period, especially rainstorm events, therefore poses a risk to drinking water safety and requires higher removal efficiency of CDOM during drinking water treatment processes. (C) 2016 Elsevier Ltd. All rights reserved.

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