Chemical Industry and Engineering Progress ›› 2025, Vol. 44 ›› Issue (6): 3579-3591.DOI: 10.16085/j.issn.1000-6613.2024-0638
• Resources and environmental engineering • Previous Articles
GAO Feng(
), WANG Chongyang(
), GAO Sheng(
), ZHANG Yahong, CHEN Tao, NIAN Zheng
Received:2024-04-16
Revised:2024-05-21
Online:2025-07-08
Published:2025-06-25
Contact:
WANG Chongyang, GAO Sheng
高峰(
), 王重阳(
), 高升(
), 张雅泓, 陈涛, 年正
通讯作者:
王重阳,高升
作者简介:高峰(1984-),博士,高级工程师,研究方向为污水生物脱氮过程模拟与强化。E-mail: xiaogao0859@126.com。
基金资助:CLC Number:
GAO Feng, WANG Chongyang, GAO Sheng, ZHANG Yahong, CHEN Tao, NIAN Zheng. Nitrous oxide production pathway and its regulation strategy in Anammox system[J]. Chemical Industry and Engineering Progress, 2025, 44(6): 3579-3591.
高峰, 王重阳, 高升, 张雅泓, 陈涛, 年正. Anammox系统的氧化亚氮产生途径及调控[J]. 化工进展, 2025, 44(6): 3579-3591.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2024-0638
| 温度/℃ | 进水TN浓度/mg·L-1 | N2O浓度/mg·L-1 | N2O积累速率/mg·L-1·min-1 | (N2O/ΔTN)/% |
|---|---|---|---|---|
| 20 | 80 | 0.380 | 0.002 | 0.46 |
| 120 | 0.811 | 0.003 | 0.68 | |
| 240 | 1.086 | 0.003 | 0.95 | |
| 25 | 80 | 0.444 | 0.003 | 0.59 |
| 120 | 0.854 | 0.004 | 0.91 | |
| 240 | 1.584 | 0.005 | 1.11 | |
| 35 | 80 | 0.500 | 0.012 | 0.85 |
| 120 | 1.563 | 0.019 | 1.43 | |
| 240 | 2.424 | 0.026 | 1.42 |
| 温度/℃ | 进水TN浓度/mg·L-1 | N2O浓度/mg·L-1 | N2O积累速率/mg·L-1·min-1 | (N2O/ΔTN)/% |
|---|---|---|---|---|
| 20 | 80 | 0.380 | 0.002 | 0.46 |
| 120 | 0.811 | 0.003 | 0.68 | |
| 240 | 1.086 | 0.003 | 0.95 | |
| 25 | 80 | 0.444 | 0.003 | 0.59 |
| 120 | 0.854 | 0.004 | 0.91 | |
| 240 | 1.584 | 0.005 | 1.11 | |
| 35 | 80 | 0.500 | 0.012 | 0.85 |
| 120 | 1.563 | 0.019 | 1.43 | |
| 240 | 2.424 | 0.026 | 1.42 |
| 工艺类型 | 曝气速率/mL·min-1 | N2O产量控制策略 | N2O产生速率 | (N2O/TN)/% | 参考文献 |
|---|---|---|---|---|---|
| PN-A-UASB | — | 以出水水质为约束条件,采用连续曝气法,曝气时间不大于60min | 0.050g/(L·d) (在高曝气强度下) | 2.5 | [ |
0.029g/(L·d) (在低曝气强度下) | 1.0 | ||||
| PN-A-SBR | — | 缩短每周期工艺运行时间,将时间由480min减少至160min,并调节曝气装置启停为每周期2次 | 0.23mg/(g·h) | 1.1 | [ |
| 从1250降低至417 | 在不影响氨氧化反应的同时,将短程硝化的DO浓度控制在1.2mg/L以下,以抑制NOB活性 | — | 0.016~0.44 | [ | |
| 从1500降低至300 | 为处理厌氧消化液,将曝气时间控制在10~30min | — | 0.95 | [ | |
| 从50降低至30 | 采用高效的曝气装置,以增大曝气扩散系数,使其系数值不低于11.4h-1 | 0.003g/(L·d) | 0.39~0.59 | [ | |
| 150 | 联用低曝气速率(150mL/min)和间歇式投加NO2-,以提高AnAOB活性 | 0.98 | [ | ||
| 段式PN-A | 从650降低至100 | 联用低曝气速率和低进水氮负荷 | — | 4.0(PN段),0.1(A段) | [ |
| 工艺类型 | 曝气速率/mL·min-1 | N2O产量控制策略 | N2O产生速率 | (N2O/TN)/% | 参考文献 |
|---|---|---|---|---|---|
| PN-A-UASB | — | 以出水水质为约束条件,采用连续曝气法,曝气时间不大于60min | 0.050g/(L·d) (在高曝气强度下) | 2.5 | [ |
0.029g/(L·d) (在低曝气强度下) | 1.0 | ||||
| PN-A-SBR | — | 缩短每周期工艺运行时间,将时间由480min减少至160min,并调节曝气装置启停为每周期2次 | 0.23mg/(g·h) | 1.1 | [ |
| 从1250降低至417 | 在不影响氨氧化反应的同时,将短程硝化的DO浓度控制在1.2mg/L以下,以抑制NOB活性 | — | 0.016~0.44 | [ | |
| 从1500降低至300 | 为处理厌氧消化液,将曝气时间控制在10~30min | — | 0.95 | [ | |
| 从50降低至30 | 采用高效的曝气装置,以增大曝气扩散系数,使其系数值不低于11.4h-1 | 0.003g/(L·d) | 0.39~0.59 | [ | |
| 150 | 联用低曝气速率(150mL/min)和间歇式投加NO2-,以提高AnAOB活性 | 0.98 | [ | ||
| 段式PN-A | 从650降低至100 | 联用低曝气速率和低进水氮负荷 | — | 4.0(PN段),0.1(A段) | [ |
| 反应过程动力学 | 反应速率方程 |
|---|---|
| 包含NH2OH的自养菌好氧生长 | |
| 自养反硝化型AOB生长 | |
| 内源性反硝化型异养菌生长 | |
| 反硝化中N2O还原为N2过程 |
| 反应过程动力学 | 反应速率方程 |
|---|---|
| 包含NH2OH的自养菌好氧生长 | |
| 自养反硝化型AOB生长 | |
| 内源性反硝化型异养菌生长 | |
| 反硝化中N2O还原为N2过程 |
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