4.7 Article

Process simulation and optimization for enhanced biophotolytic hydrogen production from green algae using the sulfur deprivation method

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 46, Issue 27, Pages 14096-14108

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.01.115

Keywords

Green algae; Hydrogen; Sulfur controlled; Simulation; Optimization; Logistic regression

Funding

  1. Baha and Walid Bassatne Endowment Research Fund
  2. University Research Board (URB) at the American University of Beirut

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This study investigates the enhanced hydrogen production from microalgae through a biophotolytic cyclic process using the sulfur deprivation method, optimizing reaction conditions to improve hydrogen yield and efficiency, leading to significant improvements in the process.
This article explores the modeling, simulation and optimization of a biophotolytic cyclic process for enhanced hydrogen production from microalgae, employing the sulfur deprivation method. To achieve sulfur deprivation, each process cycle contained two temporally separated steps of sulfur-controlled algae growth and sulfur-deprived anaerobic hydrogen production. Reaction kinetics were modeled via an empirical logistic model. Reaction times, sulfate concentrations, and medium pH levels of each cycle were controlled to optimize the rate and yield of hydrogen production. Consequently, 65% and 23% improved values were obtained, respectively, with a smaller total process time (-11%), higher ratio of algae growth to-hydrogen production time (29% vs. 21%), buffered pH (7.8), controlled sulfate injection and intermediary algae concentrations. Two-and 15-times higher hydrogen yields were obtained for 2-and 12-times lower initial algae concentrations. The proposed method is a significant tool for the design and optimization of a process for enhanced hydrogen production from microalgae. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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