Formation of disinfection byproducts from accumulated soluble products of oleaginous microalga after chlorination

被引:0
作者
Yu Liu
Qiao Zhang
Yu Hong
机构
[1] Beijing Forestry University,Beijing Key Laboratory for Source Control Technology of Water Pollution
来源
Frontiers of Environmental Science & Engineering | 2017年 / 11卷
关键词
sp. HQ; Chlorination; Disinfection byproducts; Fluorescence spectroscopy; Soluble algal products;
D O I
暂无
中图分类号
学科分类号
摘要
When microalgae are simultaneously applied for wastewater treatment and lipid production, soluble algal products (SAP) should be paid much attention, as they are important precursors for formation of disinfection byproducts (DBPs), which have potential risks for human health. Chlorella sp. HQ is an oleaginous microalga that can generate SAP during growth, especially in the exponential phase. This study investigated the contribution of SAP from Chlorella sp. HQ to DBP formation after chlorination. The predominant DBP precursors from SAP were identified with the 3D excitation-emission matrix fluorescence. After chlorination, a significant reduction was observed in the fluorescence intensity of five specific fluorescence regions, particularly aromatic proteins and soluble microbial by-product-like regions, accompanied with slight shifting of the peak. The produced DBPs were demonstrated to include trihalomethanes and haloacetic acids. As the algal cultivation time was extended in wastewater, the accumulated SAP strengthened the formation of DBPs. The trend for DBP formation was as follows: chloroform>dichloroacetic acid>trichloroacetic acid.
引用
收藏
相关论文
共 116 条
[1]  
Wang W D(2010)Effects of fulvic acid and humic acid on aluminum speciation in drinking water Journal of Environmental Sciences (China) 22 211-217
[2]  
Yang H W(2015)Water quality, agriculture and food safety in China: current situation, trends, interdependencies, and management Integrative Agriculture 14 2365-2379
[3]  
Wang X C(2016)Changes of microbial composition during wastewater reclamation and distribution systems revealed by highthroughput sequencing analyses Frontiers of Environmental Science & Engineering 10 539-547
[4]  
Jiang J(2016)Algal biofilm reactors for integrated wastewater treatment and biofuel production: a review Chemical Engineering Journal 287 466-473
[5]  
Zhu W P(2015)A novel algal biofilm membrane photobioreactor for attached microalgae growth and nutrients removal from secondary effluent Bioresource Technology 179 8-12
[6]  
Zhang X N(2015)Baltic Sea microalgae transform cement flue gas into valuable biomass Algal Research 11 227-233
[7]  
Guo Q P(2014)Strategic enhancement of algal biomass, nutrient uptake and lipid through statistical optimization of nutrient supplementation in coupling Bioresource Technology 171 71-79
[8]  
Shen X X(2015)-like microalgae cultivation and municipal wastewater treatment Applied Energy 155 585-598
[9]  
Yu S W(2016)Microalgal biofuel revisited: an informatics-based analysis of developments to date and future prospects Frontiers of Environmental Science & Engineering 10 522-530
[10]  
Qiu G Y(2014)Effect of ultraviolet irradiation and chlorination on ampicillin-resistant Water Resources & Industry 6 36-50