活性污泥法处理高钙废水中污泥特性的变化

樊艳丽, 孔秀琴, 牛佳雪. 活性污泥法处理高钙废水中污泥特性的变化[J]. 环境工程学报, 2014, 8(9): 3670-3674.
引用本文: 樊艳丽, 孔秀琴, 牛佳雪. 活性污泥法处理高钙废水中污泥特性的变化[J]. 环境工程学报, 2014, 8(9): 3670-3674.
Fan Yanli, Kong Xiuqin, Niu Jiaxue. Change of sludge characteristics in high cacium wastewater by activated sludge process[J]. Chinese Journal of Environmental Engineering, 2014, 8(9): 3670-3674.
Citation: Fan Yanli, Kong Xiuqin, Niu Jiaxue. Change of sludge characteristics in high cacium wastewater by activated sludge process[J]. Chinese Journal of Environmental Engineering, 2014, 8(9): 3670-3674.

活性污泥法处理高钙废水中污泥特性的变化

  • 基金项目:

    国家自然科学基金资助项目(51268034)

  • 中图分类号: X703.1

Change of sludge characteristics in high cacium wastewater by activated sludge process

  • Fund Project:
  • 摘要: 通过单级SBR法处理模拟高钙废水,研究了活性污泥法处理高钙废水的过程中钙离子对COD,MLVSS,MLSS,SVI,污泥增长速率,污泥形态结构及生物相的影响,揭示活性污泥法处理高钙废水的过程中污泥量巨大的原因。采用逐步增加钙离子浓度的方法,检测到在污泥培养期([Ca2+]=0 mg/L),COD去除率为98.1%,MLVSS和MLSS稳定在4 900~5 500 mg/L,污泥增长速率为67 mg/(L·d),SVI为55~60 mL/g;在驯化处理期([Ca2+]=120~2 400 mg/L),COD去除率降至87.37%,MLVSS降至2 500 mg/L,MLSS增加至19 300 mg/L,污泥增长速率为212.31 mg/(L·d),SVI降至25 mL/g;在冲击期([Ca2+]=4 000 mg/L),COD去除率降至69.23%,MLVSS降至1 600 mg/L,MLSS迅速增加至24 200 mg/L,污泥增长速率为816.67 mg/(L·d),SVI降至14 mL/g。经显微镜观察发现,污泥絮体由松散变得密实,生物相由钟虫等指示性微生物变为不适应环境的胞囊结构。结果表明,随Ca2+浓度的增加,COD去除率下降,MLSS迅速增加,MLVSS和SVI急剧缩小,说明活性污泥中的活性微生物逐渐减少,而无机物组分逐渐增多;钙离子的加入促使系统碳酸平衡向右移动,使离子状态的钙大部分转化为难降解的碳酸盐,并附着于污泥絮体上,污泥绒粒被压缩,使污泥颗粒密实度及MLSS迅速增加,导致污泥排放量巨大。
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    [7] 贾菲菲,李多松,张曼,等.我国含盐废水生物处理的研究进展.能源环境保护,2011,26(3):20-22 Jia Feifei, Li Duosong, Zhang Man, et al. The progress of study on biological treatment of salt containing wastewater.Energy Environmental Protection,2011,26(3):20-22(in Chinese)
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  • 收稿日期:  2013-09-18
  • 刊出日期:  2014-09-04
樊艳丽, 孔秀琴, 牛佳雪. 活性污泥法处理高钙废水中污泥特性的变化[J]. 环境工程学报, 2014, 8(9): 3670-3674.
引用本文: 樊艳丽, 孔秀琴, 牛佳雪. 活性污泥法处理高钙废水中污泥特性的变化[J]. 环境工程学报, 2014, 8(9): 3670-3674.
Fan Yanli, Kong Xiuqin, Niu Jiaxue. Change of sludge characteristics in high cacium wastewater by activated sludge process[J]. Chinese Journal of Environmental Engineering, 2014, 8(9): 3670-3674.
Citation: Fan Yanli, Kong Xiuqin, Niu Jiaxue. Change of sludge characteristics in high cacium wastewater by activated sludge process[J]. Chinese Journal of Environmental Engineering, 2014, 8(9): 3670-3674.

活性污泥法处理高钙废水中污泥特性的变化

  • 1. 兰州理工大学石油化工学院环境工程系, 兰州 730050
基金项目:

国家自然科学基金资助项目(51268034)

摘要: 通过单级SBR法处理模拟高钙废水,研究了活性污泥法处理高钙废水的过程中钙离子对COD,MLVSS,MLSS,SVI,污泥增长速率,污泥形态结构及生物相的影响,揭示活性污泥法处理高钙废水的过程中污泥量巨大的原因。采用逐步增加钙离子浓度的方法,检测到在污泥培养期([Ca2+]=0 mg/L),COD去除率为98.1%,MLVSS和MLSS稳定在4 900~5 500 mg/L,污泥增长速率为67 mg/(L·d),SVI为55~60 mL/g;在驯化处理期([Ca2+]=120~2 400 mg/L),COD去除率降至87.37%,MLVSS降至2 500 mg/L,MLSS增加至19 300 mg/L,污泥增长速率为212.31 mg/(L·d),SVI降至25 mL/g;在冲击期([Ca2+]=4 000 mg/L),COD去除率降至69.23%,MLVSS降至1 600 mg/L,MLSS迅速增加至24 200 mg/L,污泥增长速率为816.67 mg/(L·d),SVI降至14 mL/g。经显微镜观察发现,污泥絮体由松散变得密实,生物相由钟虫等指示性微生物变为不适应环境的胞囊结构。结果表明,随Ca2+浓度的增加,COD去除率下降,MLSS迅速增加,MLVSS和SVI急剧缩小,说明活性污泥中的活性微生物逐渐减少,而无机物组分逐渐增多;钙离子的加入促使系统碳酸平衡向右移动,使离子状态的钙大部分转化为难降解的碳酸盐,并附着于污泥絮体上,污泥绒粒被压缩,使污泥颗粒密实度及MLSS迅速增加,导致污泥排放量巨大。

English Abstract

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