DocumentCode :
3301443
Title :
Modeling and simulation of the microalgae derived hydrogen process in compact photobioreactors
Author :
Vargas, J.V.C. ; Mitchell, D.A. ; Mariano, A.B. ; Correa, D.O. ; Ordonez, J.C.
Author_Institution :
Sustainable Energy R&D Center, Fed. Univ. of Parana, Curitiba, Brazil
fYear :
2013
fDate :
1-2 Aug. 2013
Firstpage :
184
Lastpage :
191
Abstract :
A general transient mathematical model for managing microalgae derived hydrogen production, with temperature dependence of the cultivation medium is developed. For that, the simplified physical model combines principles of classical thermodynamics, mass, species and heat transfer, resulting in a system of differential equations which are discretized in space using a three-dimensional cell-centered finite volume scheme. A Michaelis-Menten type expression is proposed for modeling the rate of H2 production with dependence on O2 inhibition. Tridimensional simulations are performed in order to determine the mass fractions distributions inside a compact photobioreactor (PBR), under different operating conditions. A relatively coarse mesh was used (6048 volume elements) to obtain converged results for a large compact PBR computational domain (5m × 2m × 8m). The largest computational time required for obtaining results was 560 s, i.e., less than 10 min. The numerical results for microalgal growth are validated by direct comparison to experimental measurements. Hydrogen production simulations are conducted to demonstrate PBR intermittent operation (aerobic and anaerobic stages) feasibility and adequate species evolution trends in an indirect biophotolysis approach. Therefore, after experimental validation for a particular H2 production system, it is reasonable to state that the model could be used as an efficient tool for PBR systems thermal design, control and optimization for maximum H2 production.
Keywords :
biofuel; bioreactors; finite volume methods; hydrogen production; Michaelis Menten type expression; biophotolysis approach; compact photobioreactors; cultivation medium; differential equations; heat transfer; hydrogen production; mass fractions distributions; microalgae derived hydrogen process; microalgal growth; relatively coarse mesh; temperature dependence; thermodynamics; three dimensional cell centered finite volume scheme; Algae; Biological system modeling; Biomass; Electron tubes; Hydrogen; Mathematical model; Production; Chlamydomonas reinhardtii; Scenedesmus sp.; early stage design tool; photobioreactor architecture;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Technologies for Sustainability (SusTech), 2013 1st IEEE Conference on
Conference_Location :
Portland, OR
Type :
conf
DOI :
10.1109/SusTech.2013.6617318
Filename :
6617318
Link To Document :
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