循环比对氧化沟脱氮除磷效果及磷转化途径的影响

宋瑞静, 于静洁, 苏凡凯, 张燕, 郑剑锋, 孙力平. 循环比对氧化沟脱氮除磷效果及磷转化途径的影响[J]. 环境工程学报, 2014, 8(8): 3233-3240.
引用本文: 宋瑞静, 于静洁, 苏凡凯, 张燕, 郑剑锋, 孙力平. 循环比对氧化沟脱氮除磷效果及磷转化途径的影响[J]. 环境工程学报, 2014, 8(8): 3233-3240.
Song Ruijing, Yu Jingjie, Su Fankai, Zhang Yan, Zheng Jianfeng, Sun Liping. Effect of recirculation ratio on nutrient removal and phosphorus transformation in oxidation ditch[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3233-3240.
Citation: Song Ruijing, Yu Jingjie, Su Fankai, Zhang Yan, Zheng Jianfeng, Sun Liping. Effect of recirculation ratio on nutrient removal and phosphorus transformation in oxidation ditch[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3233-3240.

循环比对氧化沟脱氮除磷效果及磷转化途径的影响

  • 基金项目:

    国家自然科学基金资助项目(51108299)

    天津市自然科学基金资助项目(10JCYBJC05300)

    国家“水体污染控制与治理”科技重大专项(2012ZX07308002)

  • 中图分类号: X703

Effect of recirculation ratio on nutrient removal and phosphorus transformation in oxidation ditch

  • Fund Project:
  • 摘要: 在改良型氧化沟工艺的循环廊道内增设缓流板,以此改变循环廊道过流断面面积,进而调控循环比(循环廊道断面通过的循环流量和进水流量的比值)。利用胞内、胞外聚合物的分析及物料平衡的方法,研究了增设缓流板、调控循环比前后系统同步脱氮除磷效果和磷转化途径的变化及聚磷菌种含量的差别。结果表明,增设缓流板,循环比为27时,COD、NH4+、TN和TP的平均去除率分别为93.3%、87.1%、78.1%和96.0%,反硝化聚磷菌占总聚磷菌的比例为46.1%;而不设缓流板,循环比为241时,COD、NH4+、TN和TP的平均去除率分别为91.2%、82.7%、67.2%和86.4%,反硝化聚磷菌占总聚磷菌的比例为17.54%。综上可知,增设缓流板控制循环比,有助于提高反硝化聚磷菌的富集,有助于提高反硝化吸磷量,同时有助于提高氧化沟工艺的同步脱氮除磷效果。
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  • [1] 汤利华,黄明.氧化沟的循环比探讨.净水技术,2006,25(4):58-61 Tang L. H., Huang M. Discussion of circulation ration of oxidation ditch. Water Purification Technology, 2006, 25(4):58-61 (in Chinese)
    [2] 刘祖文,许建红, 许秦坤,等.改良微孔Carrousel氧化沟工艺脱氮除磷.水处理技术,2007,33(4): 42-45 Liu Z. W., Xu J. H., Xu Q. K., et al. Improved micro porous carrousel oxidation ditch process for phosphorous and nitrogen removal. Technology of Water Treatment, 2007, 33(4):42-45 (in Chinese)
    [3] 于静洁,邓宏,郑淑平,等.氧化沟工艺应用研究进展.工业水处理,2013,33(6):1-5 Yu J. J., Deng H., Zheng S. P., et al. Progress in the research and application of oxidation ditch. Industrial Water Treatment, 2013, 33(6):1-5 (in Chinese)
    [4] 国家环境保护总局.水和废水监测分析方法.北京:中国环境科学出版社,2002
    [5] 唐金花,许国仁,萧静,等.活性污泥胞外聚合物提取条件的优化.安徽农业科学,2012,40(6):3505-3507,3535 Tang J. H., Xu G. R., Xiao J., et al. Optimization of extraction conditions of extracellular polymeric substances from activated sludge. Agricultural Science and Technology, 2012, 40(6):3505-3507, 3535 (in Chinese)
    [6] 邹小玲,许柯,丁丽丽,等.不同状态下的同一污泥胞外聚合物提取方法研究.环境工程学报,2010,4(2):436-440 Zou X. L., Xu K., Ding L. L., et al. Study on extraction of extracellular polymeric substances from same sludge under different conditions. Chinese Journal of Environmental Engineering, 2010, 4(2): 436-440 (in Chinese)
    [7] 由阳.EBPR 系统中聚磷菌与聚糖菌的竞争和调控的基础研究. 哈尔滨:哈尔滨工业大学博士学位论文,2008 You Y. Basal research on the competition and control of PAO and GAO in EBPR system. Harbin:Doctor Dissertation of Harbin Institute of Technology,2008(in Chinese)
    [8] 解东. 倒置A2/O一体氧化沟工艺处理生活污水试验研究. 南昌:华东交通大学硕士学位论文,2010 Xie D. The experimental investigation on the inverted A2/O integrative oxidation ditch progress in domestic sewage treatment. Nanchang:Master Dissertation of East China Jiaotong University, 2010 (in Chinese)
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    [11] 黄满红,李咏梅,顾国维.A2O系统中碳、氮、磷的物料平衡分析.中国给水排水,2009,25(13):41-44 Huang M. H., Li Y. M., Gu G. W. Analysis on mass balance of carbon, nitrogen and phosphorus in A2/O process. China Water & Wastewater, 2009, 25(13):41-44 (in Chinese)
    [12] 徐伟锋. 生物脱氮除磷ASM2D模拟及机理研究.上海:同济大学博士学位论文,2006 Xu W. F. Research on ASM2D simulation and mechanism of biological nutrient removal. Shanghai:Doctor Dissertation of Tongji University,2006(in Chinese)
    [13] Wachtmeister A., Kuba T., Van Loosdrecht M. C. M., et al. A sludge characterization assay for aerobic and denitrifying phosphorus removing sludge. Water Research, 1997,31 (3):471-478
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出版历程
  • 收稿日期:  2014-03-22
  • 刊出日期:  2014-07-31
宋瑞静, 于静洁, 苏凡凯, 张燕, 郑剑锋, 孙力平. 循环比对氧化沟脱氮除磷效果及磷转化途径的影响[J]. 环境工程学报, 2014, 8(8): 3233-3240.
引用本文: 宋瑞静, 于静洁, 苏凡凯, 张燕, 郑剑锋, 孙力平. 循环比对氧化沟脱氮除磷效果及磷转化途径的影响[J]. 环境工程学报, 2014, 8(8): 3233-3240.
Song Ruijing, Yu Jingjie, Su Fankai, Zhang Yan, Zheng Jianfeng, Sun Liping. Effect of recirculation ratio on nutrient removal and phosphorus transformation in oxidation ditch[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3233-3240.
Citation: Song Ruijing, Yu Jingjie, Su Fankai, Zhang Yan, Zheng Jianfeng, Sun Liping. Effect of recirculation ratio on nutrient removal and phosphorus transformation in oxidation ditch[J]. Chinese Journal of Environmental Engineering, 2014, 8(8): 3233-3240.

循环比对氧化沟脱氮除磷效果及磷转化途径的影响

  • 1.  天津城建大学环境与市政工程学院, 天津 300384
  • 2.  天津市水质科学与技术重点实验室, 天津 300384
  • 3.  成都军区建筑设计院昆明分院, 昆明 650200
  • 4.  天津城建大学国有资产管理处, 天津 300384
基金项目:

国家自然科学基金资助项目(51108299)

天津市自然科学基金资助项目(10JCYBJC05300)

国家“水体污染控制与治理”科技重大专项(2012ZX07308002)

摘要: 在改良型氧化沟工艺的循环廊道内增设缓流板,以此改变循环廊道过流断面面积,进而调控循环比(循环廊道断面通过的循环流量和进水流量的比值)。利用胞内、胞外聚合物的分析及物料平衡的方法,研究了增设缓流板、调控循环比前后系统同步脱氮除磷效果和磷转化途径的变化及聚磷菌种含量的差别。结果表明,增设缓流板,循环比为27时,COD、NH4+、TN和TP的平均去除率分别为93.3%、87.1%、78.1%和96.0%,反硝化聚磷菌占总聚磷菌的比例为46.1%;而不设缓流板,循环比为241时,COD、NH4+、TN和TP的平均去除率分别为91.2%、82.7%、67.2%和86.4%,反硝化聚磷菌占总聚磷菌的比例为17.54%。综上可知,增设缓流板控制循环比,有助于提高反硝化聚磷菌的富集,有助于提高反硝化吸磷量,同时有助于提高氧化沟工艺的同步脱氮除磷效果。

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