In this article, an internal-reforming solid oxide fuel cell gas turbine (IRSOFCeGT) hybrid system is modeled and analyzed from thermal (energy and exergy), economic, and environmental points of view. The model is validated using available data in the literature. Utilizing the genetic algorithm optimization technique, multi-objective optimization of modeled system is carried out and the optimal values of system design parameters are obtained. In the multi-objective optimization procedure, the exergy efficiency and the total cost rate of the system (including the capital and maintenance costs, operational cost (fuel cost), and social cost of air pollution for CO, NO x , and CO 2 ) are considered as objective functions. A sensitivity analysis is also performed in order to study the effect of variations of the fuel unit cost on the Pareto optimal solutions and their corresponding design parameters. The optimization results indicate that the final optimum design chosen from the Pareto front results in exergy efficiency of 65.60% while it leads to total cost of 3.28 million US$ year. It is also demonstrated that the payback time of the chosen design is 6.14 years.

Thermal-economic-environmental analysis and multi-objective optimization of an internal-reforming solid oxide fuel cell-gas turbine hybrid system

NAJAFI, BEHZAD;RINALDI, FABIO;
2012-01-01

Abstract

In this article, an internal-reforming solid oxide fuel cell gas turbine (IRSOFCeGT) hybrid system is modeled and analyzed from thermal (energy and exergy), economic, and environmental points of view. The model is validated using available data in the literature. Utilizing the genetic algorithm optimization technique, multi-objective optimization of modeled system is carried out and the optimal values of system design parameters are obtained. In the multi-objective optimization procedure, the exergy efficiency and the total cost rate of the system (including the capital and maintenance costs, operational cost (fuel cost), and social cost of air pollution for CO, NO x , and CO 2 ) are considered as objective functions. A sensitivity analysis is also performed in order to study the effect of variations of the fuel unit cost on the Pareto optimal solutions and their corresponding design parameters. The optimization results indicate that the final optimum design chosen from the Pareto front results in exergy efficiency of 65.60% while it leads to total cost of 3.28 million US$ year. It is also demonstrated that the payback time of the chosen design is 6.14 years.
2012
Solid oxide fuel cell; Gas turbine; Exergy; Economic; Environmental; Multi-objective optimization
File in questo prodotto:
File Dimensione Formato  
Thermal-economic-environmental analysis and multi-objective optimization of an internal-reforming solide oxide fuel cell-gas turbine hybrid system.pdf

Accesso riservato

: Publisher’s version
Dimensione 876.95 kB
Formato Adobe PDF
876.95 kB Adobe PDF   Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/691279
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 178
  • ???jsp.display-item.citation.isi??? 159
social impact