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Advanced Biomass Fuel Characterization Based on Tests with a Specially Designed Lab-Scale Reactor

机译:基于专门设计的实验室规模反应堆进行测试的高级生物质燃料表征

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摘要

To examine relevant combustion characteristics of biomass fuels in grate combustion systems, a specially designed lab-scale reactor was developed. On the basis of tests performed with this reactor, information regarding the biomass decomposition behavior, the release of NO_x precursor species, the release of ash-forming elements, and first indications concerning ash melting can be evaluated. Within the scope of several projects, the lab-scale reactor system as well as the subsequent evaluation routines have been optimized and tests with a considerable number of different biomass fuels have been performed. These tests comprised a wide variation of different fuels, including conventional wood fuels (beech, spruce, and softwood pellets), bark, wood from short rotation coppice (SRC) (poplar and willow), waste wood, torrefied softwood, agricultural biomass (straw, Misanthus, maize cobs, and grass pellets), and peat and sewage sludge. The results from the lab-scale reactor tests show that the thermal decomposition behavior and the combustion behavior of different biomass fuels vary considerably. With regard to NO_x precursors (NH_3, HCN, NO, N_2O, and NO_2), NH_3 and, for chemically untreated wood fuels, also HCN represent the dominant nitrogen species. The conversion rate from N in the fuel to N in NO_x precursors varies between 20 and 95% depending upon the fuel and generally decreases with an increasing N content of the fuel These results gained from the lab-scale reactor tests can be used to derive NO_x precursor release models for subsequent computational fluid dynamics (CFD) NO_x post-processing. The release of ash-forming vapors also considerably depends upon the fuel used. In general, more than 91% of Cl, more than 71% of S, 1-51% of K, and 1-50% of Na are released to the gas phase. From these data, the potential for aerosol emissions can be estimated, which varies between 18 mg/Nm~3 (softwood pellets) and 320 mg/ Nm~3 (straw) (dry flue gas at 13% O_2). Moreover, these results also provide first indications regarding the deposit formation risks associated with a certain biomass fuel. In addition, a good correlation between visually determined ash sintering tendencies and the sintering temperatures of the different fuels (according to OENORM CEN/TS 15370-1) could be observed.
机译:为了检查炉排燃烧系统中生物质燃料的相关燃烧特性,开发了专门设计的实验室规模的反应堆。基于用该反应器进行的测试,可以评估有关生物量分解行为,NO_x前体物质释放,形成灰分的元素以及有关灰分熔化的第一指征的信息。在几个项目的范围内,实验室规模的反应器系统以及随后的评估程序已得到优化,并已使用大量不同的生物质燃料进行了测试。这些测试包括各种不同的燃料,包括常规的木质燃料(山毛榉,云杉和针叶木颗粒),树皮,短旋转小灌木林(SRC)的木材(杨木和柳木),废木,焙干的软木,农业生物质(稻草) ,Misanthus,玉米芯和草屑)以及泥炭和污水污泥。实验室规模的反应堆测试结果表明,不同生物质燃料的热分解行为和燃烧行为差异很大。对于NO_x前体(NH_3,HCN,NO,N_2O和NO_2),NH_3以及对于未经化学处理的木质燃料,HCN也是主要的氮物种。从燃料中的N到NO_x前体中的N的转化率在20%到95%之间变化,具体取决于燃料,并且随着燃料中N含量的增加而降低。从实验室规模的反应堆测试中获得的这些结果可用于得出NO_x用于后续计算流体动力学(CFD)NO_x后处理的前体释放模型。形成灰分的蒸气的释放还很大程度上取决于所使用的燃料。通常,超过91%的Cl,超过71%的S,1-51%的K和1-50%的Na被释放到气相中。根据这些数据,可以估算出潜在的气溶胶排放潜力,介于18 mg / Nm〜3(软木颗粒)和320 mg / Nm〜3(秸秆)(13%O_2的干烟气)之间。此外,这些结果还提供了与某种生物质燃料相关的沉积物形成风险的初步迹象。此外,可以观察到在视觉上确定的灰分烧结趋势与不同燃料的烧结温度之间的良好关联(根据OENORM CEN / TS 15370-1)。

著录项

  • 来源
    《Energy & fuels 》 |2013年第sepaaocta期| 5691-5698| 共8页
  • 作者单位

    IOENERGY 2020+ GmbH, Inffeldgasse 21b, 8010 Graz, Austria,BIOS BIOENERGIESYSTEME GmbH, Inffeldgasse 21b, 8010 Graz, Austria,Institute for Process and Particle Engineering, Graz University of Technology, Inffeldgasse 13, 8010 Graz, Austria;

    IOENERGY 2020+ GmbH, Inffeldgasse 21b, 8010 Graz, Austria,BIOS BIOENERGIESYSTEME GmbH, Inffeldgasse 21b, 8010 Graz, Austria;

    IOENERGY 2020+ GmbH, Inffeldgasse 21b, 8010 Graz, Austria,Institute for Process and Particle Engineering, Graz University of Technology, Inffeldgasse 13, 8010 Graz, Austria;

    IOENERGY 2020+ GmbH, Inffeldgasse 21b, 8010 Graz, Austria,Institute for Process and Particle Engineering, Graz University of Technology, Inffeldgasse 13, 8010 Graz, Austria;

    IOENERGY 2020+ GmbH, Inffeldgasse 21b, 8010 Graz, Austria,BIOS BIOENERGIESYSTEME GmbH, Inffeldgasse 21b, 8010 Graz, Austria,Institute for Process and Particle Engineering, Graz University of Technology, Inffeldgasse 13, 8010 Graz, Austria;

  • 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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