NOx Reduction of Non-Premixed Flames by Combination of Burner and Furnaces
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概要
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This study proposes an idea of NOx reduction and high efficiency combustion by combination of burner and furnace. This is basically attributed to the use of entrainment of burnt gases to flame in furnace. The entrainment of burnt gases leads the dilution of flame and the recovery of heat to be exhausted. The phenomena are strongly related to the geometry of burner and furnace. The temperature, concentration, and flow field characteristics were investigated for piloted propane non-premixed flames in the cylindrical furnaces in terms of NOx emission. The effects of the furnace inner diameter, <I>D</I><SUB>1</SUB>, air inlet velocity difference, <I>ΔU</I><SUB>a</SUB>, and global equivalence ratio,<I>φ</I>, on NOx emission were investigated. Moreover, two kinds of materials: Pyrex glass and stainless steel were used as the furnace wall to evaluate the radiation effect through the comparison of the flame characteristics. The emission index of NOx, EINOx, decreases roughly with the increase of above parameters. This decrease is observed to be a consequence of dilution by the burnt gases and flame stretch. The dilution is attributed to the recirculation structure, which is formed at the bottom of the furnace. The flame stretch is related to the velocity difference, which is introduced by multiple air inlets. The EINOx of confined non-premixed flame is scaled by the parameter <I>D</I><SUB>1</SUB>U<SUB>F</SUB><I>ΔU</I><SUB>a</SUB>, which is proportional to <I>Re</I>,<I>cDa</I><SUP>-1</SUP>. Here, <I>U</I><SUB>F</SUB> is the fuel velocity, <I>Re</I>,<I>c</I> is the furnace Reynolds number reflecting the turbulence in the furnace, and <I>Da</I> is the Damköhler number reflecting the flame stretch. The parameter <I>D</I><SUB>1</SUB>U<SUB>F</SUB><I>ΔU</I><SUB>a</SUB> is related linearly to the volume flow rate entrained in to the flame. Thus, this study verified that the EINOx of confined non-premixed flame is dominated primarily from the entrainment of burnt gases by the recirculation vortex and secondarily by the turbulence at the flame boundary, which is generated by the air velocity difference. In addition, it is found that under present experimental conditions, the radiation effect on the EINOx is small and constant with respect to the parameters. Thus, this idea has a potential for practical applications.
著者
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Noda Susumu
Department Of Electrical Engineering Kyoto University
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NADA Yuzuru
Department of Mechanical and Aerospace Engineering, Tokyo Institute of Technology
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Ito Takahiro
Department Of Aeronautics And Astronautics University Of Tokyo
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ITO Takahiro
Department of Energy Engineering and Science, Nagoya University
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SOMARATHNE Kapuruge
Department of Mechanical Engineering, Toyohashi University of Technology
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PARWATHA I
Department of Mechanical Engineering, Toyohashi University of Technology
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OGURI Shoichiro
Department of Mechanical Engineering, Toyohashi University of Technology
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NODA Susumu
Department of Mechanical Engineering, Toyohashi University of Technology
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Noda Susumu
Department of Electric Science and Engineering, Kyoto University
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NADA Yuzuru
Department of Energy System, The University of Tokushima
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