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Effect of Coal Chemistry on Carbonization Behaviour and Association with Coke Characteristics

机译:煤化学性质对碳化行为及其与焦炭特性的关系

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摘要

Thermoplastic behaviour of coal plays a critical role on developing high coke quality attributes including strength which are critical for efficient blast furnace operation. Effect of coal plasticity on the evolution of coke microstructure is complex and particularly limited in relation to role of coal mineral chemistry. This study reports an experimental investigation relating to coal phase transformations during controlled carbonization as a function of coal ash and mineral composition using a range of analytical tools including FTIR, GC/MS, XRD, SEM and Optical microscopy. The chemical nature and magnitude of various carbonization products were related to the microstructure and the mechanical strength their cokes. The study identified the significance of coal mineral chemistry on plasticity as well as coke microstructure and mechanical strength. A number of microstructure parameters were combined to develop a combination microstructural parameter, and related to coke tensile strength as well as plastic range of parent coals. Under the tested conditions, up to 5 wt. % of kaolinite addition in coal is found to improve the fluidity, which could be associated with the increase of CHAr/CHAl ratio as well as decrease in CH3/CH2 ratio of the residual char. The proportion of C=O/C=C bonds affected the plastic range. The study further showed that elevated kaolinite level in coal suppresses the evolution of low molecular compounds in tar phase and decrease the fluidity. Kaolinite addition in coal showed a significant effect on altering tar composition particularly phenol and benzene content especially at lower temperatures. Increasing presence of kaolinite levels in coal increased coke tensile strength but did not show a similar level of improvement in case of conventional coke tumbling strength. The effect of kaolinite presence on coal pyrolysis behaviour was also influenced by particle size such that finer particle size promoted fluidity while coarse particles improve the release of hydroaromatic methylene compounds. Coarser kaolinite leads to improve coke microstructure as well as mechanical strength. The study has implications for coal blending practice for improving coke quality such that future studies may focus in clarifying the role of other coal minerals and their associations on their thermoplastic behaviour.
机译:煤的热塑性行为在开发高焦炭质量属性(包括强度)方面起着至关重要的作用,而强度对高效高炉操作至关重要。煤可塑性对焦炭微观结构演变的影响是复杂的,在煤矿物化学的作用方面特别有限。这项研究报告了一项实验研究,涉及使用一系列分析工具(包括FTIR,GC / MS,XRD,SEM和光学显微镜)对受控碳化过程中煤相转变与煤灰和矿物成分的关系。各种碳化产物的化学性质和大小与其焦炭的微观结构和机械强度有关。该研究确定了煤矿物化学对可塑性以及焦炭的微观结构和机械强度的重要意义。组合了许多微结构参数以开发出组合的微结构参数,这些参数与焦炭抗张强度以及母煤的塑性范围有关。在测试条件下,最高5 wt。发现煤中添加高岭石的百分比提高了流动性,这可能与CHAr / CHAl比的增加以及残余碳的CH3 / CH2比的降低有关。 C = O / C = C键的比例影响塑性范围。研究进一步表明,煤中高岭石含量的升高抑制了焦油相中低分子化合物的生成并降低了流动性。煤中添加高岭石对改变焦油成分,特别是降低苯酚和苯的含量具有显着影响,尤其是在较低温度下。煤中高岭土含量的增加增加了焦炭的抗张强度,但在常规焦炭翻滚强度的情况下却未显示出类似的改善水平。高岭石的存在对煤热解行为的影响也受到粒度的影响,使得更细的粒度促进了流动性,而粗颗粒则改善了氢芳族亚甲基化合物的释放。粗粒高岭石可改善焦炭的微观结构以及机械强度。该研究对改善焦炭质量的掺混煤实践具有重要意义,因此未来的研究可能会集中于阐明其他煤矿物的作用及其与热塑性行为的关系。

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