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Updated: May 15, 2025

Coupling Carbon Capture from a Power Plant with Semi-automated Open Raceway Ponds for Microalgae Cultivation
Published on: August 14, 2020
Intelligent predictive modeling for the optimization of advanced algal photobioreactors in greenhouse gas capture and
Mark Gino K Galang1, Junhui Chen2, Kirk Cobb2
1Sanitary Environmental Engineering Division (SEED), Department of Civil Engineering, University of Salerno, Via Giovanni Paolo II 132, 84084, Fisciano, SA, Italy; Center for Biorefining and Department of Bioproducts and Biosystems Engineering, University of Minnesota, 1390 Eckles Avenue, St. Paul, MN, 55112, USA.
Abstract:
Approximately 76 % of global greenhouse gas emissions are attributed to carbon dioxide (CO2), highlighting the need for effective mitigation strategies. In this context, smart photobioreactors (PBRs) utilizing microalgae have been identified as a promising carbon capture technology. Moreover, developing advanced predictive models can enhance biomass production, optimize carbon sequestration, and improve the sustainability of PBR systems. This study investigated the performance of different data-based machine learning prediction models for CO2 removal efficiency (RE) and Chlorella vulgaris growth under a smart PBR system. A 13-15-2 feed-forward backpropagation neural network (FFBP NN) and a 7-component partial least squares (PLS) were developed to predict multiple response variables. Results showed that FFBP NN was the optimum model by demonstrating superior performance (R2: ≥0.933 CO2 RE, ≥0.980 C. vulgaris growth; Root Mean Square Error: ≤4.730 % for CO2 RE, ≤37.80 mg L-1 for C. vulgaris growth) compared to PLS model due to its capacity to process larger datasets and ability to deal with the high variations. Meanwhile, PLS only relied on collinearity, but it could reveal variable importance and interactions. For instance, pH and inlet pressure highly affected CO2 RE, while nitrogenous compounds and phosphorus were highly related to algal growth. The dual focus of the intelligent models highlights an original concept in both reducing greenhouse gas emissions to promote environmental sustainability and advancing a circular economy through the production of algal biomass.
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