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Combustion Irreversibilities: Numerical Simulation and Analysis

Combustion Irreversibilities: Numerical Simulation and Analysis
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摘要 An exergy analysis was performed considering the combustion of methane and agro-industrial residues produced in Portugal (forest residues and vines pruning). Regarding that the irreversibilities of a thermodynamic process are path dependent, the combustion process was considering as resulting from different hypothetical paths each one characterized by four main sub-processes: reactant mixing, fuel oxidation, internal thermal energy exchange (heat transfer), and product mixing. The exergetic efficiency was computed using a zero dimensional model developed by using a Visual Basic home code. It was concluded that the exergy losses were mainly due to the internal thermal energy exchange sub-process. The exergy losses from this sub-process are higher when the reactants are preheated up to the ignition temperature without previous fuel oxidation. On the other hand, the global exergy destruction can be minored increasing the pressure, the reactants temperature and the oxygen content on the oxidant stream. This methodology allows the identification of the phenomena and processes that have larger exergy losses, the understanding of why these losses occur and how the exergy changes with the parameters associated to each system which is crucial to implement the syngas combustion from biomass products as a competitive technology. An exergy analysis was performed considering the combustion of methane and agro-industrial residues produced in Portugal (forest residues and vines pruning). Regarding that the irreversibilities of a thermodynamic process are path dependent, the combustion process was considering as resulting from different hypothetical paths each one characterized by four main sub-processes: reactant mixing, fuel oxidation, internal thermal energy exchange (heat transfer), and product mixing. The exergetic efficiency was computed using a zero dimensional model de- veloped by using a Visual Basic home code. It was concluded that the exergy losses were mainly due to the inter- nal thermal energy exchange sub-process. The exergy losses from this sub-process are higher when the reactants are preheated up to the ignition temperature without previous fuel oxidation. On the other hand, the global exergy destruction can be minored increasing the pressure, the reactants temperature and the oxygen content on the oxi- dant stream. This methodology allows the identification of the phenomena and processes that have larger exergy losses, the understanding of why these losses occur and how the exergy changes with the parameters associated to each system which is crucial to implement the syngas combustion from biomass products as a competitive tech- nology.
出处 《Journal of Thermal Science》 SCIE EI CAS CSCD 2012年第4期377-383,共7页 热科学学报(英文版)
基金 the Portuguese Foundation for Science and Technology (FCT) for the given support to the grant SFRH/BPD/71686 the project PTDC/AAC-AMB/103119/2008
关键词 燃烧过程 不可逆性 数值模拟 农产品加工业 高科技生物产品 热力学过程 Basic 火用分析 Exergy, Combustion paths, Combustion sub-processes, Exergetic efficiency, Visual Basic, Syngas
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参考文献15

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