Modelling and multi-objective optimization for simulation of hydrogen production using a photosynthetic consortium

被引:5
|
作者
Hernandez-Melchor, Dulce J. [2 ]
Camacho-Perez, Beni [3 ]
Rios-Leal, Elvira [4 ]
Alarcon-Bonilla, Jesus [3 ]
Lopez-Perez, Pablo A. [1 ]
机构
[1] Univ Autonoma Estado Hidalgo, Escuela Super Apan, Carretera Apan Calpulalpan Km 8, Apan 43920, Hgo, Mexico
[2] Colegio Postgrad, Campus Montecillo, Texcoco 56230, Estado De Mexic, Mexico
[3] Univ Tecnol Tecamac, Quimicobiol A5, Carretera Fed Mexico Pachuca Km 37-5, Tecamac 55740, Estado De Mexic, Mexico
[4] CINVESTAV, IPN, Dept Biotecnol & Bioingn, Mexico City 2508, DF, Mexico
关键词
algae; consortia; cysteine; genetic algorithm; BIOHYDROGEN PRODUCTION; STATISTICAL OPTIMIZATION; MICROALGAE; FERMENTATION; ENERGY; CULTURES; NETWORK; GLUCOSE; GROWTH; OXYGEN;
D O I
10.1515/ijcre-2020-0019
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This study was aimed at finding the optimal conditions for hydrogen production based on statistical experiments and using a simulation approach. A Plackett-Burman design and steepest ascent were used to screen the key factors to obtain the best hydrogen concentration. According to the regression analysis, cysteine, acetate, and aeration had the best effect. The optimal conditions, using the method of steepest ascent, were aeration (0.125 L/min), acetate (200 mg/L), cysteine (498 mg/L). Once this was determined, an experiment with more than two factors was considered. The combinations: acetate + cysteine without aeration and cysteine without aeration increased hydrogen concentration. These last two criteria were used to validate the dynamic model based on unstructured kinetics. Biomass, nitrogen, acetate, and hydrogen concentrations were monitored. The proposed model was used to perform the multi-objective optimization for various desired combinations. The simultaneous optimization for a minimum ratio of cysteine-acetate improved the concentration of hydrogen to 20 mg/L. Biomass optimized the concentration of hydrogen to 11.5 mg/L. The simultaneous optimization of reaction time (RT) and cysteine improved hydrogen concentration to 28.19 mg/L. The experimental hydrogen production was 11.4 mg/L at 24 h under discontinuous operation. Finally, the proposed model and the optimization methodology calculated a higher hydrogen concentration than the experimental data.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Hybrid approach in a production line for multi-objective simulation optimization
    Belgin, Onder
    JOURNAL OF THE FACULTY OF ENGINEERING AND ARCHITECTURE OF GAZI UNIVERSITY, 2019, 34 (04): : 1847 - 1859
  • [2] Simulation and multi-objective optimization of an integrated process for hydrogen production from refinery off-gas
    Wang, Dongliang
    Feng, Xiao
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (29) : 12968 - 12976
  • [3] Multi-objective optimization of monoclonal antibody production in bioreactor
    Kumar, Deepak
    Gangwar, Neelesh
    Rathore, Anurag S.
    Ramteke, Manojkumar
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2022, 180
  • [4] Optimization of Biodiesel Production Using Multi-Objective Genetic Algorithm
    Goharimanesh, Masoud
    Lashkaripour, Ali
    Akbari, Aliakbar
    JOURNAL OF APPLIED SCIENCE AND ENGINEERING, 2016, 19 (02): : 117 - 124
  • [5] Multi-objective optimization of industrial hydrogen plants
    Rajesh, JK
    Gupta, SK
    Rangaiah, GP
    Ray, AK
    CHEMICAL ENGINEERING SCIENCE, 2001, 56 (03) : 999 - 1010
  • [6] A multi-objective optimization of the integrated copper-chlorine cycle for hydrogen production
    Razi, Faran
    Dincer, Ibrahim
    Gabriel, Kamiel
    COMPUTERS & CHEMICAL ENGINEERING, 2020, 140
  • [7] Multi-objective optimization of an ocean thermal energy conversion system for hydrogen production
    Ahmadi, Pouria
    Dincer, Ibrahim
    Rosen, Marc A.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (24) : 7601 - 7608
  • [8] Multi-objective optimization of production system with staggered production
    Wu, Chia-Huang
    Yang, Dong-Yuh
    Huang, Chung-Ling
    INTERNATIONAL JOURNAL OF PRODUCTION RESEARCH, 2024, 62 (23) : 8276 - 8298
  • [9] Multi-objective optimization of an integrated gasification combined cycle for hydrogen and electricity production
    Al-Zareer, Maan
    Dincer, Ibrahim
    Rosen, Marc A.
    COMPUTERS & CHEMICAL ENGINEERING, 2018, 117 : 256 - 267
  • [10] Hydrogen storage capability optimization based on multi-objective function for decision of hydrogen production and utilization
    Jamil, Harun
    Naqvi, Syed Shehryar Ali
    Kim, Do Hyeun
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 95 : 1095 - 1110