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Dissolved oxygen microelectrode measurements to develop a more sophisticated intermittent aeration regime control strategy for biofilm-based CANON systems

机译:溶解氧微电极测量以开发基于生物膜的佳能系统的更复杂的间歇式通气制度控制策略

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摘要

Dissolved oxygen (DO) is an important parameter for regulation of "completely autotrophic nitrogen removal over nitrite" (CANON) systems, but effective strategies for regulating DO and the mechanisms of its effects remain unclear. Here, DO microelectrode and nitrite accumulation monitoring were to develop an intermittent aeration regime for a biofilm-CANON system with decreasing influent ammonia and temperature. With high ammonium concentration (185 +/- 31 mg N/L in the bioreactor) at 35 degrees C (Phase I) and 20-23 degrees C (Phase II), three repeats of 40/80 min aeration/non-aeration per reaction cycle enabled the biofilm-CANON to achieve optimal total nitrogen removal rates (TNRR) of 0.35 +/- 0.03 and 0.29 +/- 0.04 kg N/m(3)/d, respectively. The nitrite accumulation threshold at the end of each non-aeration period was 6 mg N/L. When the ammonium concentration was decreased to 35.6 +/- 4.5 mg N/L (in the bioreactor) at 20-23 degrees C (Phase III), five repeats of 8/32 min aeration/non-aeration per reaction cycle ensured a stable TNRR of 0.18 +/- 0.02 kg N/m(3)/d. Micro-profile measurements showed that the penetration of DO into the biofilms increased with decreasing temperature and ammonia, to 400, 600 and 1300 mu m in Phases I, II and III, respectively, at 0.6 mg O-2/L, confirming the need to reduce aeration time when temperature and influent ammonia decreased. High-throughput sequencing showed that nitrite oxidizing bacteria were 0.25% of total bacteria during the whole operation. Nitrosomonas-affiliated ammonium oxidizing bacteria (inhabiting both flocs and biofilms) and anammox bacteria Candidatus Kuenenia (mainly inhabiting the biofilms) were consistently the dominant functional bacteria. DO microelectrode provided comprehensive insights into the effects of decreasing temperature and influent ammonia on DO penetration and was valuable in the development of more sophisticated aeration regulation of biofilm-CANON systems.
机译:溶解氧(DO)是调节“完全自养氮除亚硝酸盐”(佳能)系统的重要参数,但调节的有效策略以及其效果的机制仍不清楚。这里,进行微电极和亚硝酸盐累积监测,用于开发生物膜 - 佳能系统的间歇式曝气制度,随着流入的氨和温度降低。在35℃(I相1)和20-23℃(II期)的高铵浓度(在生物反应器中的185 +/- 31mg n / l),每次40/80分钟的曝气/非曝气的三次重复反应循环使生物膜 - 佳能能够实现0.35 +/- 0.03和0.29 +/- 0.04kg N / m(3)/ d的最佳总氮除去速率(TNRR)。每个非曝气时间末端的亚硝酸盐累积阈值为6mg n / l。当铵浓度降至35.6 +/- 4.5mg n / l(在生物反应器中),在20-23℃(III期)时,每次反应循环的五个8/32分钟通气/非曝气的重复确保稳定0.18 +/- 0.02 kg n / m(3)/ d的TNRR。微型型材测量表明,在阶段I,II和III分别在0.6mg O-2 / L中,将DO渗透到生物膜中的渗透率增加到400,600和1300μm,以0.6mg O-2 / L,确认需要在温度和流动氨下降时减少曝气时间。高通量测序表明亚硝酸盐氧化细菌是&整个手术过程中细菌的0.25%。亚硝基胺酰胺氧化细菌(居住在絮状物和生物膜)和厌氧菌细菌念珠菌(主要居住在生物膜)中始终是主要的功能细菌。微电极进行综合了解降低温度和影响氨的渗透性的效果,对生物膜 - 佳能系统更复杂的曝气调节有价值。

著录项

  • 来源
    《Chemical engineering journal》 |2019年第2019期|共10页
  • 作者单位

    Tongji Univ Shanghai Inst Pollut Control &

    Ecol Secur State Key Lab Pollut Control &

    Resources Reuse Coll Environm Sci &

    Engn Siping Rd Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Inst Pollut Control &

    Ecol Secur State Key Lab Pollut Control &

    Resources Reuse Coll Environm Sci &

    Engn Siping Rd Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Inst Pollut Control &

    Ecol Secur State Key Lab Pollut Control &

    Resources Reuse Coll Environm Sci &

    Engn Siping Rd Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Inst Pollut Control &

    Ecol Secur State Key Lab Pollut Control &

    Resources Reuse Coll Environm Sci &

    Engn Siping Rd Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Inst Pollut Control &

    Ecol Secur State Key Lab Pollut Control &

    Resources Reuse Coll Environm Sci &

    Engn Siping Rd Shanghai 200092 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Nitrogen removal; Anammox; Biofilm; Dissolved oxygen control; Microelectrode;

    机译:氮去除;厌氧;生物膜;溶解氧控制;微电极;

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