首页> 外文期刊>Energy & fuels >Influence of the Staged-Air Declination Angle on Flow-Field Deflection in a Down-Fired Pulverized-Coal 300 MW_e Utility Boiler with Direct-Flow Split Burners
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Influence of the Staged-Air Declination Angle on Flow-Field Deflection in a Down-Fired Pulverized-Coal 300 MW_e Utility Boiler with Direct-Flow Split Burners

机译:分流空气的偏角对带有直流分流燃烧器的向下燃烧粉煤300 MW_e电站锅炉中流场偏转的影响

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摘要

Cold airflow experiments were conducted within a small-scale furnace of a down-fired pulverized-coal 300 MW_c utility boiler. With focus on the large combustion difference between the zones near the front and rear walls in down-fired pulverized-coal boilers, we investigate the aerodynamic field at different staged-air declination angles of 0°, 15°, 30°, 45°, and 55°. For declination angles of 0°, 15°, and 30°, a deflected flow field appeared in the lower furnace, with downward airflow velocities near the rear wall decaying more rapidly than velocities near the front wall. In addition to the downward airflow reach into the lower furnace, the turbulence intensity and longitudinal-velocity components at certain cross sections were lower near the rear wall than near the front wall. Through an increase of the declination angle from 0° to 30°, the flow-field deflection diminished, which was accompanied by a slower decay in the downward airflow near the rear wall and an increase in the reach (as measured by the dimensionless depth) of the downward airflow near the rear wall as well as longitudinal-velocity components within the associated cross section. Those near the front wall changed only slightly. For larger angles of 45° and 55°, the deflected flow field disappeared. Turbulence intensities in the staged-air zones near the front and rear walls increased steadily as the declination angle increased from 0° to 55°. The optimal setting for staged air would necessitate a declination angle of 45°.
机译:在一个向下燃烧的粉煤300 MW_c电站锅炉的小型炉中进行了冷气流实验。着眼于向下燃烧的粉煤锅炉的前壁和后壁附近区域之间的较大燃烧差异,我们研究了在0°,15°,30°,45°的不同分级空气偏角下的空气动力场,和55°。对于0°,15°和30°的偏角,在下部炉膛中会出现偏转的流场,后壁附近的向下气流速度比前壁附近的速度衰减更快。除了向下的气流进入下部炉外,后壁附近的某些横截面的湍流强度和纵向速度分量也比前壁附近的低。通过将偏角从0°增加到30°,流场偏斜减小,同时伴随着后壁附近向下气流的缓慢衰减和作用距离的增加(按无量纲深度测量)后壁附近的向下气流以及相关横截面内的纵向速度分量的变化。前壁附近的那些仅发生了轻微变化。对于45°和55°较大的角度,偏转的流场消失了。随着偏角从0°增大到55°,前后壁附近的分级空气区域中的湍流强度稳定增加。分级空气的最佳设置将需要45°的偏角。

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  • 来源
    《Energy & fuels》 |2010年第maraaapr期|p.1603-1610|共8页
  • 作者单位

    School of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

    rnSchool of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

    rnSchool of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

    rnSchool of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

    rnSchool of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

    rnSchool of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

    rnSchool of Energy Science and Engineering, Harbin Institute of Technology, 92 West Dazhi Street, Harbin 150001,People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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