Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition
Abstract Sewer system is an important source of methane formation and emission. Although some models were developed to predict methane production in sewers, the impact of microorganism amount was indicated indirectly. Here, seven laboratory scale sewers with varied wall-shear stresses were establish...
Main Authors: | , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
SpringerOpen
2018-03-01
|
Series: | AMB Express |
Subjects: | |
Online Access: | http://link.springer.com/article/10.1186/s13568-018-0559-6 |
id |
doaj-ccd43c782e594f848cd07c9ca9754757 |
---|---|
record_format |
Article |
spelling |
doaj-ccd43c782e594f848cd07c9ca97547572020-11-24T21:39:11ZengSpringerOpenAMB Express2191-08552018-03-018111010.1186/s13568-018-0559-6Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic conditionJingwei Xu0Qiang He1Hong Li2Chun Yang3Yinliang Wang4Hainan Ai5Chongqing Huantou Environmental Big Data Service & Environmental Engineering Co. LtdKey Laboratory of the Three Gorges Reservoir Region’s Eco-Environment, Ministry of Education, Chongqing UniversityKey Laboratory of the Three Gorges Reservoir Region’s Eco-Environment, Ministry of Education, Chongqing UniversityKey Laboratory of the Three Gorges Reservoir Region’s Eco-Environment, Ministry of Education, Chongqing UniversityTransportation Design & Research Sub-Institute, Southwest Municipal Engineering Design & Research Institute of ChinaKey Laboratory of the Three Gorges Reservoir Region’s Eco-Environment, Ministry of Education, Chongqing UniversityAbstract Sewer system is an important source of methane formation and emission. Although some models were developed to predict methane production in sewers, the impact of microorganism amount was indicated indirectly. Here, seven laboratory scale sewers with varied wall-shear stresses were established. The biofilm thickness, microorganism amount, DO distribution, microorganism community in the biofilms and methane production in the sewers were measured. Based on experimental data, an empirical model was developed to directly describe the relationship between methane production, microorganism amount and wall-shear stress. The results showed that DO concentration decreased significantly along the biofilm depth under varied wall-shear stress, and the DO reduction rate was positively related to the intensity of wall-shear stress. The dominant archaea species in mature biofilms were similar whereas the proportions showed remarkable differences. The abundance of Methanospirillum in biofilms cultured at 2.0 Pa wall-shear stress was 53.08% more than that at 1.29 Pa. The maximum methane production rate, 2.04 mg/L wastewater day, was obtained when the wall-shear stress kept at 1.45 Pa, which was 1.2-fold higher than the minimum in sewer at 0.5 Pa. The R2 value of the established model was 0.95, the difference between the measurement and simulation was in the rage of 1.5–13.0%.http://link.springer.com/article/10.1186/s13568-018-0559-6SewersWall-shear stressMethane productionMicroorganismModel |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jingwei Xu Qiang He Hong Li Chun Yang Yinliang Wang Hainan Ai |
spellingShingle |
Jingwei Xu Qiang He Hong Li Chun Yang Yinliang Wang Hainan Ai Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition AMB Express Sewers Wall-shear stress Methane production Microorganism Model |
author_facet |
Jingwei Xu Qiang He Hong Li Chun Yang Yinliang Wang Hainan Ai |
author_sort |
Jingwei Xu |
title |
Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition |
title_short |
Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition |
title_full |
Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition |
title_fullStr |
Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition |
title_full_unstemmed |
Modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition |
title_sort |
modeling of methane formation in gravity sewer system: the impact of microorganism and hydraulic condition |
publisher |
SpringerOpen |
series |
AMB Express |
issn |
2191-0855 |
publishDate |
2018-03-01 |
description |
Abstract Sewer system is an important source of methane formation and emission. Although some models were developed to predict methane production in sewers, the impact of microorganism amount was indicated indirectly. Here, seven laboratory scale sewers with varied wall-shear stresses were established. The biofilm thickness, microorganism amount, DO distribution, microorganism community in the biofilms and methane production in the sewers were measured. Based on experimental data, an empirical model was developed to directly describe the relationship between methane production, microorganism amount and wall-shear stress. The results showed that DO concentration decreased significantly along the biofilm depth under varied wall-shear stress, and the DO reduction rate was positively related to the intensity of wall-shear stress. The dominant archaea species in mature biofilms were similar whereas the proportions showed remarkable differences. The abundance of Methanospirillum in biofilms cultured at 2.0 Pa wall-shear stress was 53.08% more than that at 1.29 Pa. The maximum methane production rate, 2.04 mg/L wastewater day, was obtained when the wall-shear stress kept at 1.45 Pa, which was 1.2-fold higher than the minimum in sewer at 0.5 Pa. The R2 value of the established model was 0.95, the difference between the measurement and simulation was in the rage of 1.5–13.0%. |
topic |
Sewers Wall-shear stress Methane production Microorganism Model |
url |
http://link.springer.com/article/10.1186/s13568-018-0559-6 |
work_keys_str_mv |
AT jingweixu modelingofmethaneformationingravitysewersystemtheimpactofmicroorganismandhydrauliccondition AT qianghe modelingofmethaneformationingravitysewersystemtheimpactofmicroorganismandhydrauliccondition AT hongli modelingofmethaneformationingravitysewersystemtheimpactofmicroorganismandhydrauliccondition AT chunyang modelingofmethaneformationingravitysewersystemtheimpactofmicroorganismandhydrauliccondition AT yinliangwang modelingofmethaneformationingravitysewersystemtheimpactofmicroorganismandhydrauliccondition AT hainanai modelingofmethaneformationingravitysewersystemtheimpactofmicroorganismandhydrauliccondition |
_version_ |
1725932107134402560 |