4.5 Article

Prediction of the Long-Term Effect of Iron on Methane Yield in an Anaerobic Membrane Bioreactor Using Bayesian Network Meta-Analysis

期刊

MEMBRANES
卷 11, 期 2, 页码 -

出版社

MDPI
DOI: 10.3390/membranes11020100

关键词

methanogenic yield; ferric; anaerobic membrane reactor; Bayesian network meta-analysis; food processing wastewater

资金

  1. National Key Research and Development Program of China [2016YFD0501405, 2016YFE0118500]
  2. Major Science and Technology Program for Water Pollution Control and Treatment of China [2017ZX07102-002, 2018ZX07105-001]
  3. National Natural Science Fund [21677161]
  4. State Key Joint Laboratory of Environment Simulation and Pollution Control (Research Center for Eco-environmental Sciences, Chinese Academy of Sciences) [19Z02ESPCR]
  5. China Scholarship Council [201904910106]

向作者/读者索取更多资源

A method for predicting the long-term effects of ferric on methane production accuracy was developed and tested in an anaerobic membrane bioreactor treating food processing wastewater. The results showed that ferric could enhance methane production by using different analysis methods, particularly Fe2.25.
A method for predicting the long-term effects of ferric on methane production was developed in an anaerobic membrane bioreactor treating food processing wastewater to provide management tools for maximizing methane recovery using ferric based on a batch test. The results demonstrated the accuracy of the predictions for both batch and long-term continuous operations using a Bayesian network meta-analysis based on the Gompertz model. The prediction bias of methane production for batch and continuous operations was minimized, from 11 similar to 19% to less than 0.5%. A biochemical methane potential-based Bayesian network meta-analysis suggested a maximum 2.55% +/- 0.42% enhancement for Fe2.25. An anaerobic membrane bioreactor improved the methane yield by 2.27% and loading rate by 4.57% for Fe2.25, operating in the sequenced batch mode. The method allowed for a predictable methane yield enhancement based on the biochemical methane potential. Ferric enhanced the biochemical methane potential in batch tests and the methane yield in a continuously operated reactor by a maximum of 8.20% and 7.61% for Fe2.25, respectively. Copper demonstrated a higher methane (18.91%) and sludge yield (17.22%) in batch but faded in the continuous operation (0.32% of methane yield). The enhancement was primarily due to changing the kinetic patterns for the last period, i.e., increasing the second methane production peak (k(71)), bringing forward the second peak (lambda(7), lambda(8)), and prolonging the second period (k(62)). The dual exponential function demonstrated a better fit in the last three stages (after the first peak), which implied that syntrophic methanogenesis with a ferric shuttle played a primary role in the last three methane production periods, in which long-term effects were sustained, as the Bayesian network meta-analysis predicted.

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