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Alleviating gas/particle flow deflection and asymmetric combustion in a 600 MWe supercritical down-fired boiler by expanding its furnace throat space

机译:通过扩大其炉子喉部空间,减轻600 MWE超临界筒式锅炉中的气体/颗粒流动偏转和不对称燃烧

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摘要

Cold-modeling gas/particle flow experiments and numerical simulations on coal combustion were performed for evaluating the furnace throat effect on the flow-field deflection and asymmetric combustion in a 600 MWe supercritical down-fired boiler. At the furnace design setting (C-w = 0.529), a severely deflected gas/particle flow field appears, corresponding to a badly asymmetric combustion pattern with poor burnout and high NOx emissions. Shrinking the furnace throat from C-w = 0.529 to C-w = 0.500 apparently aggravates both the experimental and simulated flow-field deflection and meanwhile deteriorates asymmetric combustion. In contrast, expanding the furnace throat space to C-w = 0.558 improves greatly the above problems and the flow-field symmetries are generally acceptable, accompanied by improved burnout rate and lowered NOx emissions. Findings in this work suggest that new down-fired boiler designs should be equipped with a larger furnace throat space under the circumstances with a short upper furnace aggravating the asymmetric upper furnace configuration effect. (C) 2017 Elsevier Ltd. All rights reserved.
机译:进行冷型气体/粒子流动实验和煤燃烧的数值模拟,用于评估600 MWE超临界下射锅炉流场偏转和不对称燃烧的炉子喉部效果。在炉子设计环境(C-W = 0.529),出现严重偏转的气体/粒子流场,对应于具有差的燃烧和高度排放不良的严重不对称的燃烧模式。从C-W = 0.529缩小炉子喉部至C-W = 0.500显然加剧了实验和模拟的流场偏转,同时劣化不对称燃烧。相反,将炉子喉空间扩展到C-W = 0.558,大大提高了上述问题,并且流场对称通常是可接受的,伴随着改进的烧坏率和降低的NOx排放。在这项工作中的调查结果表明,新的下烧锅炉设计应在具有短的上炉加剧不对称的上炉配置效果的情况下配备更大的炉子喉部空间。 (c)2017 Elsevier Ltd.保留所有权利。

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