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Advances in reduction of NO_x and N_2O emission formation in an oxy-fired fluidized bed boiler
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  • 英文篇名:Advances in reduction of NO_x and N_2O emission formation in an oxy-fired fluidized bed boiler
  • 作者:Khalid ; El ; Sheikh ; Mohammad ; Jakir ; Hossain ; Khan ; Mahar ; Diana ; Hamid ; Siddhartha ; Shrestha ; Brahim ; Si ; Ali ; G.A.Ryabov ; Lya ; A.Dolgushin ; Mohd ; Azlan ; Hussain ; Tatiana ; V.Bukharkina ; Elena ; A.Gorelova
  • 英文作者:Khalid El Sheikh;Mohammad Jakir Hossain Khan;Mahar Diana Hamid;Siddhartha Shrestha;Brahim Si Ali;G.A.Ryabov;Lya A.Dolgushin;Mohd Azlan Hussain;Tatiana V.Bukharkina;Elena A.Gorelova;Dmitry Mendeleev University of Chemical Technology of Russia;Department of Chemical Engineering, Faculty of Engineering, University of Malaya;Laboratory for Simulation and Modelling of Particulate Systems, Department of Chemical Engineering, Monash University;All-Russian Thermal Engineering Institute, VTI;
  • 英文关键词:Oxy-fuel combustion;;Fluidized bed technology;;Biomass blend;;Primary/secondary measures;;NO_x emission
  • 中文刊名:ZHGC
  • 英文刊名:中国化学工程学报(英文版)
  • 机构:Dmitry Mendeleev University of Chemical Technology of Russia;Department of Chemical Engineering, Faculty of Engineering, University of Malaya;Laboratory for Simulation and Modelling of Particulate Systems, Department of Chemical Engineering, Monash University;All-Russian Thermal Engineering Institute, VTI;
  • 出版日期:2019-02-15
  • 出版单位:Chinese Journal of Chemical Engineering
  • 年:2019
  • 期:v.27
  • 基金:Supported by the University of Malaya,Ministry of Education Malaysia under the grant FP064-2015A(FRGS);; IPPP grant number:PG101-2015B
  • 语种:英文;
  • 页:ZHGC201902023
  • 页数:18
  • CN:02
  • ISSN:11-3270/TQ
  • 分类号:199-216
摘要
Fossil fuel combustion is one of the major means to meet the mounting global energy demand. However, the increasing NO_x and N_2 O emissions arising from fossil fuel combustion process have hazardous effects. Thus, mitigating these gases is vital to attain a sustainable environment. Interestingly, oxy-fuel combustion in fluidized bed for carbon capture and minimized NO_x emissions is strongly sustainable compare to the other approaches. It was assessed that NO_x formation and fuel-N conversion have significant limitation under oxy-fluidized bed compared to air mode and the mechanism of NO_x formation is still deficient and requires further development. In addition, this review paper discussed the potential of primary measure as low emission process with others supplementary techniques for feasible NO_x reduction. The influences of combustion mode, operating parameters, and reduction techniques such as flue gas recirculation, oxygen staging, biomass co-firing, catalyst, influence of fluidized bed design and structure, decoupling combustion and their merges are respectively evaluated. Findings show that significant minimization of NO_x emission can be achieved through combination of primary and secondary reduction techniques.
        Fossil fuel combustion is one of the major means to meet the mounting global energy demand. However, the increasing NO_x and N_2 O emissions arising from fossil fuel combustion process have hazardous effects. Thus, mitigating these gases is vital to attain a sustainable environment. Interestingly, oxy-fuel combustion in fluidized bed for carbon capture and minimized NO_x emissions is strongly sustainable compare to the other approaches. It was assessed that NO_x formation and fuel-N conversion have significant limitation under oxy-fluidized bed compared to air mode and the mechanism of NO_x formation is still deficient and requires further development. In addition, this review paper discussed the potential of primary measure as low emission process with others supplementary techniques for feasible NO_x reduction. The influences of combustion mode, operating parameters, and reduction techniques such as flue gas recirculation, oxygen staging, biomass co-firing, catalyst, influence of fluidized bed design and structure, decoupling combustion and their merges are respectively evaluated. Findings show that significant minimization of NO_x emission can be achieved through combination of primary and secondary reduction techniques.
引文
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