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Low-NOx Modification of a Heavy Fuel Oil Swirl Burner Based on Semi-Industrial Scale Experimental Tests

机译:基于半工业规模实验测试的重油旋流燃烧器的低NOx改性

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摘要

A proposed swirl burner was modified from a burner used in a 300 MWe oil-fueled power plant In particular, burner construction, including expanded nozzles, swirl numbers, and air ratios were changed. Then, experimental tests were carried out in a semi-industrial test rig with a horizontal cylindrical furnace with a single-swirl burner. The thermal input of the furnace was 9 MW. The species concentrations of O_2, CO, and NOx in the flue gas were measured. NOx emission with the original burner was 320 ppm (3 vol % O_2). However, NOx emission decreased to 19S ppm (3 vol % O_2) with the proposed burner during optimal operation. Through a series of adjusting experiments, a 35-39% abatement of the NOx emission from the single-burner test could be maintained when the original burner was replaced by the proposed one. NOx emission measured from a full-scale industrial furnace is approximately 341 ppm (3 vol % O_2) under ordinary operating conditions. The predicted NOx concentration from the industrial furnace could achieve 207.S ppm (3 vol % O_2) employing the proposed swirl burner under optimal operating conditions. The flow fields (including the recirculation zone and turbulent intensity) downstream of the two burners were compared on the basis of the numerical results. A CCD image system was applied to capture the flame structure downstream of the burner. A mushroom-shaped flame structure was observed with the proposed burner, whereas a fan-shaped diffusion flame was observed with the original burner. A strengthened division in the flame was formed at the burner outlet with the proposed burner. Temperatures ranged from 1184 to 2114 ℃ downstream of the burner, which was determined through the two-color pyrometry method for each burner. The minimum temperature of the reference section was reduced by 154 ℃, and the average temperature was reduced by 76.9 ℃ when the proposed burner was applied. The proportion of the temperature region higher than 1500 ℃ in the reference section was calculated. The initial proportion was 94.96%, which was reduced to 80.91% when the proposed burner was applied. This represents a decrease of 14.05% through the modification.
机译:拟议的旋流燃烧器是从300 MWe燃油发电厂中使用的燃烧器改造而来的。特别是,改变了燃烧器的结构,包括喷嘴的扩大,旋流数和空气比。然后,在具有单涡流燃烧器的卧式圆柱形炉的半工业试验台上进行了实验测试。炉子的热输入为9MW。测量了烟气中O_2,CO和NOx的物种浓度。原始燃烧器的NOx排放量为320 ppm(3 vol%O_2)。但是,在最佳运行期间,使用建议的燃烧器,NOx排放降低到19S ppm(3 vol%O_2)。通过一系列调整实验,当用建议的燃烧器代替原始燃烧器时,可以保持单燃烧器测试的NOx排放量减少35-39%。在常规操作条件下,从大型工业炉测得的NOx排放量约为341 ppm(3 vol%O_2)。使用拟议的旋流燃烧器,在最佳操作条件下,来自工业炉的预测NOx浓度可达到207.S ppm(3 vol%O_2)。根据数值结果比较了两个燃烧器下游的流场(包括再循环区和湍流强度)。 CCD图像系统用于捕获燃烧器下游的火焰结构。提出的燃烧器观察到蘑菇形火焰结构,而原始燃烧器观察到扇形扩散火焰。所提出的燃烧器在燃烧器出口处形成了加强的火焰分隔。燃烧器下游的温度范围为1184至2114℃,这是通过每个燃烧器的双色高温法确定的。使用建议的燃烧器时,参考区域的最低温度降低了154℃,平均温度降低了76.9℃。计算参考区域中高于1500℃的温度区域的比例。初始比例为94.96%,使用建议的燃烧器时,初始比例降低为80.91%。通过修改,这减少了14.05%。

著录项

  • 来源
    《Energy & fuels》 |2013年第sepaaocta期|5029-5035|共7页
  • 作者单位

    Zhejiang University, Institute for Thermal Power Engineering, State Key Laboratory of Clean Energy Utilization, Hangzhou, 310027, P. R. China;

    Zhejiang University, Institute for Thermal Power Engineering, State Key Laboratory of Clean Energy Utilization, Hangzhou, 310027, P. R. China;

    Zhejiang University, Institute for Thermal Power Engineering, State Key Laboratory of Clean Energy Utilization, Hangzhou, 310027, P. R. China;

    Zhejiang University, Institute for Thermal Power Engineering, State Key Laboratory of Clean Energy Utilization, Hangzhou, 310027, P. R. China;

    Zhejiang University, Institute for Thermal Power Engineering, State Key Laboratory of Clean Energy Utilization, Hangzhou, 310027, P. R. 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);
  • 原文格式 PDF
  • 正文语种 eng
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