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A data-driven model for maximization of methane production in a wastewater treatment plant
1Department of Mechanical and Industrial Engineering, The University of Iowa, Iowa City, IA 52242, USA. andrew-kusiak@uiowa.edu
Abstract:
A data-driven approach for maximization of methane production in a wastewater treatment plant is presented. Industrial data collected on a daily basis was used to build the model. Temperature, total solids, volatile solids, detention time and pH value were selected as parameters for the model construction. First, a prediction model of methane production was built by a multi-layer perceptron neural network. Then a particle swarm optimization algorithm was used to maximize methane production based on the model developed in this research. The model resulted in a 5.5% increase in methane production.
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