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首页> 外文期刊>Fuel >Pipe Reactor Gasification Studies Of A South African Bituminous Coal Blend. Part 1 -carbon And Volatile Matter Behaviour As Function Of Feed Coal Particle Size Reduction
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Pipe Reactor Gasification Studies Of A South African Bituminous Coal Blend. Part 1 -carbon And Volatile Matter Behaviour As Function Of Feed Coal Particle Size Reduction

机译:南非烟煤混合物的管道反应器气化研究。第1部分-碳和挥发性物质行为与进料煤粒度降低的关系

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The Sasol-Lurgi fixed-bed dry-bottom (FBDB) MKIV gasifiers are proven to be robust as far as acceptable coal properties are concerned, in particular its ability to accommodate a range of particle size distributions (PSD) fractions. Over the years, the findings from a number of studies conducted at Sasol have played a key role in the optimization of the Sasol-Lurgi gasifiers as far as the limited amount of coal preparation by crushing and screening is concerned. The continued optimization efforts by Sasol over many years have led to a robust and reliable gasification technology for coal conversion, and more improvements are envisaged for the near future. In this study, gasification profiles inside real coal beds were investigated experimentally using a pilot scale combustor unit (pipe reactor), where the top size of the coal blend was systematically reduced from 75 mm, 53 mm and 37.5 mm. The pilot scale combustor has an inside diameter of 400 mm, is approximately 3 m long and the combustion rate is controlled by regulating the oxygenitrogen ratio of the gas feed. Ash is not removed continuously, so the combustion front moves upwards through the coal bed with time, resulting in a temperature gradient across the bed. The combustion process can be stopped at any point in time by removing all of the oxygen from the feed gas (i.e. quenching with nitrogen). The combustor was constructed so that it can be tilted onto its side and opened up like a coffin to allow sample taking and visual inspection of the combustion profile. In this case, equivalent sized slices were taken across the length of the reactor bed contents and the samples were analysed for PSD, proximate analysis, ultimate analysis, Fisher assay and coal char CO_2 reactivity. This paper focuses on the coal property transformational behaviour (as characterized by the proximate analysis and Fischer tar results) through packed coal beds of different feed coal size distributions. The proximate analysis results showed clear reaction zone profiles to be occurring within the pipe reactor, i.e. drying, pyrolysis, reduction and combustion (ash bed) zones, in agreement with the SL-FBDB MKIV commercial-scale findings. It was found that a decrease in feed coal particle size resulted in better heat transfer across the particles with ensuing faster volatile matter and tar evolution.
机译:Sasol-Lurgi固定床干底(FBDB)MKIV气化炉经证实具有很强的鲁棒性,涉及到可接受的煤特性,尤其是其适应各种粒度分布(PSD)馏分的能力。多年来,就通过压碎和筛选制取的煤炭量有限而言,萨索尔(Sasol)进行的多项研究得出的结论在萨索尔-鲁奇(Sasol-Lurgi)气化炉的优化中发挥了关键作用。多年来,Sasol不断进行的优化工作已导致了用于煤炭转化的可靠可靠的气化技术,并计划在不久的将来进行更多改进。在这项研究中,使用中试规模的燃烧器装置(管式反应器)对真实煤层内的气化分布进行了实验研究,其中,混合煤的最大尺寸从75 mm,53 mm和37.5 mm系统地减小了。中试燃烧室的内径为400毫米,长约3 m,燃烧速率通过调节气体进料的氧气/氮气比来控制。灰烬不会被连续清除,因此燃烧前沿会随着时间的推移向上移动穿过煤层,从而导致整个煤层的温度梯度升高。通过从原料气中除去所有的氧气(即用氮气淬火),可以在任何时间点停止燃烧过程。燃烧器的构造使其可以倾斜到侧面,像棺材一样敞开,以便进行取样和目视检查燃烧曲线。在这种情况下,在反应器床内容物的整个长度上切取相同大小的切片,并对样品进行PSD,近程分析,最终分析,Fisher测定和煤焦CO_2反应性进行分析。本文着眼于通过不同进料煤粒度分布的填充煤床的煤质转化行为(以近邻分析和菲舍尔焦油分析为特征)。最接近的分析结果表明,与SL-FBDB MKIV商业规模的发现一致,在管式反应器内发生了清晰的反应区分布,即干燥,热解,还原和燃烧(灰床)区。发现进料煤颗粒尺寸的减小导致更好的跨颗粒的热传递,从而导致更快的挥发性物质和焦油逸出。

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