LAPSE:2023.24664
Published Article
LAPSE:2023.24664
Batch and Semi-Continuous Anaerobic Digestion of Industrial Solid Citrus Waste for the Production of Bioenergy
Erik Samuel Rosas-Mendoza, Andrea Alvarado-Vallejo, Norma Alejandra Vallejo-Cantú, Raúl Snell-Castro, Sergio Martínez-Hernández, Alejandro Alvarado-Lassman
March 28, 2023
Abstract
The aim of this paper is to describe a study of the anaerobic digestion of industrial citrus solid waste (ISCW) in both batch and semi-continuous modes for the production of bioenergy without the elimination of D-limonene. The study was conducted at the pilot plant level in an anaerobic reactor with a working volume of 220 L under mesophilic conditions of 35 ± 2 °C. Cattle manure (CM) was used as the inoculum. Three batches were studied. The first batch had a CM/ISCW ratio of 90/10, and Batches 2 and 3 had CM/ISCW ratios of 80/20 and 70/30, respectively. In the semi-continuous mode an OLR of approximately 8 g total chemical oxygen demand (COD)/Ld (4.43 gVS/Ld) was used. The results showed that 49%, 44%, and 60% of volatile solids were removed in the batch mode, and 35% was removed in the semi-continuous mode. In the batch mode, 0.322, 0.382, and 0.316 LCH4 were obtained at STP/gVSremoved. A total of 24.4 L/d (34% methane) was measured in the semi-continuous mode. Bioenergy potentials of 3.97, 5.66, and 8.79 kWh were obtained for the respective batches, and 0.09 kWh was calculated in the semi-continuous mode. The citrus industry could produce 37 GWh per season. A ton of processed oranges has a bioenergy potential of 162 kWh, which is equivalent to 49 kWh of available electricity ($3.90).
Keywords
anaerobic digestion, bioenergy potential, cattle manure, citrus industry, industrial solid citrus waste
Suggested Citation
Rosas-Mendoza ES, Alvarado-Vallejo A, Vallejo-Cantú NA, Snell-Castro R, Martínez-Hernández S, Alvarado-Lassman A. Batch and Semi-Continuous Anaerobic Digestion of Industrial Solid Citrus Waste for the Production of Bioenergy. (2023). LAPSE:2023.24664
Author Affiliations
Rosas-Mendoza ES: CONACYT-Tecnológico Nacional de México, Instituto Tecnológico de Orizaba, Av. Oriente 9, 852. Col., Emiliano Zapata, Orizaba C.P. 94320, Mexico [ORCID]
Alvarado-Vallejo A: División de Estudios de Posgrado e Investigación, Tecnológico Nacional de México, Instituto Tecnológico de Orizaba, Av. Oriente 9, 852. Col., Emiliano Zapata, Orizaba C.P. 94320, Mexico
Vallejo-Cantú NA: División de Estudios de Posgrado e Investigación, Tecnológico Nacional de México, Instituto Tecnológico de Orizaba, Av. Oriente 9, 852. Col., Emiliano Zapata, Orizaba C.P. 94320, Mexico
Snell-Castro R: Departamento de Ingeniería Química, CUCEI-Universidad de Guadalajara, Blvd. Marcelino García Barragán 1421, Guadalajara C.P. 44430, Mexico
Martínez-Hernández S: Instituto de Biotecnología y Ecología Aplicada, Universidad Veracruzana, Avenida de las Culturas Veracruzanas 101, Col., Emiliano Zapata, Xalapa C.P. 91090, Mexico
Alvarado-Lassman A: División de Estudios de Posgrado e Investigación, Tecnológico Nacional de México, Instituto Tecnológico de Orizaba, Av. Oriente 9, 852. Col., Emiliano Zapata, Orizaba C.P. 94320, Mexico [ORCID]
Journal Name
Processes
Volume
9
Issue
4
First Page
648
Year
2021
Publication Date
2021-04-08
ISSN
2227-9717
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PII: pr9040648, Publication Type: Journal Article
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LAPSE:2023.24664
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https://doi.org/10.3390/pr9040648
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