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(p459) Determining fusibility of inertinite by comparison of matched coal and coke surfaces using imaging analysis methods

机译:(P459)通过使用成像分析方法比较匹配煤和焦炭表面的惯性素测定惯性

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During coking, for coals of suitable rank, the vitrinite, liptinite and some of the inertinite macerals are fusible and theminerals and remaining inertinite macerals do not fuse. The amount of fusible inertinite in a coal varies betweencoals extracted from differing coal basins/measures and even between coals from similar regions. Inertinitefusibility is related to reflectance, with low reflecting (fusible) inertinite being more reactive than high reflecting(infusible) inertinite. The amount and size of infusible inertinite particles impact on coke quality parameters (i.e.large inertinite, approximately +1.5mm, adversely affects coke quality).The reflectance threshold between fusible and infusible inertinites was investigated for four Australian coals byusing imaging methods on matching coal and coke surfaces obtained from two halves of individual coal lumps,where one half had been coked. The cokes were mapped using Pearson Coal Petrography's recently developedautomated coke characterisation method and the coal halves were mapped using CSIRO' Coal Grain Analysis(CGA) system. It was discovered that the threshold between fusible and infusible inertinite was not a fixed valuebetween lumps of the same coal. However, the reflectance range for the fusible inertinite (from the end of thevitrinite reflectance range to the beginning of the infusible inertinite reflectance range) stayed constant betweenlumps of the same coal. Thus, analysing each lump separately with the same fusible inertinite reflectance range butslightly differing reflectance thresholds enabled all components to be identified correctly.The CGA system was recently upgraded to enhance characterisation of coal particles so that it analysed individualparticles based on their own reflectance fingerprint. The fusible inertinite reflectance range for each coal which wasdetermined by the mapping of coal and coke halves this enabled the inertinite component within each particle to besplit between fusible and infusible inertinite. The system is also now able to determine the size of each fusible andinfusible structure within each particle.
机译:在焦化期间,对于合适等级的煤,蒸料,riptinite和一些惯性肌肉是可熔,主题,剩余的惯性肌肉不熔断。煤中熔种惯性量在不同煤盆/措施中提取的含量之间的含量变化,甚至在类似地区的煤之间。偶于困难性与反射率有关,低反射(可熔化)惯性比高反射(Infusible)Inertinite更具反应性。不禁用的惯性粒子对焦炭质量参数产生影响的量和大小(IELARGE Inertinite,约+ 1.5mm,对焦质量产生不利影响)。对既澳大利亚煤炭的既澳大利亚煤炭和匹配煤的成像方法都研究了可熔和不敏感的惰性惰性物质之间的反射率阈值从两半的单个煤块获得的焦炭表面,其中一半被焦化。焦炭使用Pearson煤岩岩绘制的最近研制的焦炭表征方法,使用Csiro'煤晶分析(CGA)系统映射煤。有人发现,可熔和不熔的惰性岩之间的阈值不是同一煤的固定值。然而,熔体惯性的反射率范围(从铁素反射率范围的末端到缺陷的惯性反射率范围的开始)保持恒定的相同煤之间的恒定。因此,分别用相同的熔体偏离反射率范围分析每个肿块,而不同的反射率阈值使能够正确识别的所有组分。最近升级以增强煤颗粒的表征,以便根据自己的反射指纹分析各个颗粒。通过煤和焦炭的映射为每种煤的熔体惯性反射率范围,这使得每种颗粒内的惯性成分使得熔体和不熔化的惰性素之间的侵蚀。该系统现在也能够确定每个粒子内的每个可熔和困难结构的尺寸。

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