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Article

Solar Drying of Greenhouse Crop Residues for Energy Valorization: Modeling and Determination of Optimal Conditions

by
Maria Guadalupe Pinna-Hernández
1,2,*,
Francisco Gabriel Acien Fernández
1,2,
José Gabriel López Segura
3 and
José Luis Casas López
1,2
1
Solar Energy Research Centre (CIESOL), Joint Centre University of Almería-CIEMAT, 04120 Almería, Spain
2
Department of Chemical Engineering, University of Almería, Carretera de Sacramento s/n, La Cañada de San Urbano, 04120 Almería, Spain
3
IFAPA Research Center, La Cañada, 04120 Almería, Spain
*
Author to whom correspondence should be addressed.
Agronomy 2020, 10(12), 2001; https://doi.org/10.3390/agronomy10122001
Submission received: 24 November 2020 / Revised: 16 December 2020 / Accepted: 17 December 2020 / Published: 19 December 2020
(This article belongs to the Special Issue Characteristics and Technology in Mediterranean Agriculture)

Abstract

Large amounts of crop residue are produced annually in areas such as Almeria (Spain). These residues have elevated moisture and ash contents, and are also very heterogeneous, which hinders their reutilization. With the aim of facilitating biomass utilization in energy recovery-related processes, a model for solar drying was developed. Experiments were performed inside a greenhouse with tomato and pepper residues, following two strategies (hung or stacked residues). The influence of temperature and relative humidity on the residues’ equilibrium moisture was also studied. The results were that a model allowed for determination of the equilibrium moisture as a function of ambient conditions (temperature and relative humidity), with the model’s characteristic parameters being different for each crop residue. Regarding the drying process, the results conform to first-order kinetics, with the values of the kinetic constants varying as a function of the crop residues and their arrangement. The variation in equilibrium moisture as a function of the annual variation in ambient conditions (temperature and relative humidity) in Almería means that it would only be possible to dry crop residues inside greenhouse below a moisture level of 0.43 kgwater/kgdrysolids (30% water content) from April to November.
Keywords: solar drying kinetics; greenhouse crop residue; energy recovery; pre-treatment; natural drying; energy sustainability solar drying kinetics; greenhouse crop residue; energy recovery; pre-treatment; natural drying; energy sustainability

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MDPI and ACS Style

Pinna-Hernández, M.G.; Fernández, F.G.A.; Segura, J.G.L.; López, J.L.C. Solar Drying of Greenhouse Crop Residues for Energy Valorization: Modeling and Determination of Optimal Conditions. Agronomy 2020, 10, 2001. https://doi.org/10.3390/agronomy10122001

AMA Style

Pinna-Hernández MG, Fernández FGA, Segura JGL, López JLC. Solar Drying of Greenhouse Crop Residues for Energy Valorization: Modeling and Determination of Optimal Conditions. Agronomy. 2020; 10(12):2001. https://doi.org/10.3390/agronomy10122001

Chicago/Turabian Style

Pinna-Hernández, Maria Guadalupe, Francisco Gabriel Acien Fernández, José Gabriel López Segura, and José Luis Casas López. 2020. "Solar Drying of Greenhouse Crop Residues for Energy Valorization: Modeling and Determination of Optimal Conditions" Agronomy 10, no. 12: 2001. https://doi.org/10.3390/agronomy10122001

APA Style

Pinna-Hernández, M. G., Fernández, F. G. A., Segura, J. G. L., & López, J. L. C. (2020). Solar Drying of Greenhouse Crop Residues for Energy Valorization: Modeling and Determination of Optimal Conditions. Agronomy, 10(12), 2001. https://doi.org/10.3390/agronomy10122001

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