Pressure Swing Adsorption Plant for the Recovery and Production of Biohydrogen: Optimization and Control

Author:

Brizuela-Mendoza Jorge A.1ORCID,Sorcia-Vázquez Felipe D. J.2ORCID,Rumbo-Morales Jesse Y.2ORCID,Ortiz-Torres Gerardo2ORCID,Torres-Cantero Carlos Alberto34ORCID,Juárez Mario A.5ORCID,Zatarain Omar2ORCID,Ramos-Martinez Moises2ORCID,Sarmiento-Bustos Estela6,Rodríguez-Cerda Julio C.2,Mixteco-Sánchez Juan Carlos7ORCID,Buenabad-Arias Hector Miguel6ORCID

Affiliation:

1. Centro Universitario del Sur, Universidad de Guadalajara, Av. Enrique Arreola Silva No. 883, Ciudad Guzmán 49000, Mexico

2. Centro Universitario de los Valles, Universidad de Guadalajara, Carretera Guadalajara-Ameca Km. 45.5, Ameca 46600, Mexico

3. Tecnológico Nacional de México Campus Colima, Av. Tecnológico # 1, Col. Liberación, Villa de Álvarez 28976, Mexico

4. Facultad de Ingeniería Mecánica y Eléctrica, Universidad de Colima, Carretera Colima—Coquimatlan Km. 9, Valle de las Huertas, Coquimatlán 28400, Mexico

5. TecNM/ITS Irapuato, Irapuato 36821, Mexico

6. División Académica de Mecánica Industrial, Universidad Tecnológica Emiliano Zapata del Estado de Morelos, Av. Universidad Tecnológica No. 1, Col. Palo Escrito, Emiliano Zapata 62760, Mexico

7. Department of Natural and Exact Sciences, University of Guadalajara, Guadalajara 44100, Mexico

Abstract

New biofuels are in demand and necessary to address the climate problems caused by the gases generated by fossil fuels. Biohydrogen, which is a clean biofuel with great potential in terms of energy capacity, is currently impacting our world. However, to produce biohydrogen, it is necessary to implement novel processes, such as Pressure Swing Adsorption (PSA), which raise the purity of biohydrogen to 99.99% and obtain a recovery above 50% using lower energy efficiency. This paper presents a PSA plant to produce biohydrogen and obtain a biofuel meeting international criteria. It focuses on implementing controllers on the PSA plant to maintain the desired purity stable and attenuate disturbances that affect the productivity, recovery, and energy efficiency generated by the biohydrogen-producing PSA plant. Several rigorous tests were carried out to observe the purity behavior in the face of changes in trajectories and combined perturbations by considering a discrete observer-based LQR controller compared with a discrete PID control system. The PSA process controller is designed from a simplified model, evaluating its performance on the real nonlinear plant considering perturbations using specialized software. The results are compared with a conventional PID controller, giving rise to a significant contribution related to a biohydrogen purity stable (above 0.99 in molar fraction) in the presence of disturbances and achieving a recovery of 55% to 60% using an energy efficiency of 0.99% to 7.25%.

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

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