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用于冶金焦炭生产中与非炼焦煤配合使用的基于工业副产品的聚合物添加剂的合成及其在流动性发展中分子机理的联合密度泛函理论评估。

Synthesis of an industrial by-product-based polymeric additive for use with non-coking coal in metallurgical coke making and a combined density functional theory assessment of its molecular mechanism in fluidity development.

作者信息

Ghorai Soumitra, Sen Kaushik, Nag Debjani, Dash Pratik Swarup

机构信息

Research & Development Division, Tata Steel, Jamshedpur 831007, India.

出版信息

Soft Matter. 2021 Apr 21;17(15):4122-4132. doi: 10.1039/d0sm02206c.

Abstract

Recently, the utilization of inferior grade coal for the production of fuel-based materials, i.e., metallurgical coke, is an exciting research area in the industrial sector because of the limited reserves of prime coking coal worldwide. In the steel industry, coal tar is the most abundant and sustainable cost-effective by-product, which is a source of an adequate amount of aromatic components such as phenol or its derivative with polycyclic aromatic hydrocarbons. Therefore, for the first time, we developed a novel organic polymeric additive through a cross-linking polymerization technique using a coal-tar precursor and paraformaldehyde monomer with a glycol-tetraline-based plasticizing agent and explored its application for use as inferior coal in metallurgical coke production. Our synthesized polymer was a homogeneous flowable liquid material; the synthesis process was simple, easily scalable with a high production yield (∼90%), and economical. The interaction of the polymeric additive with the coal matrix was investigated via TGA and H2 evolution study to understand the role of the polymer in coal carbonization. The polymeric additive has significantly improved the crucible swelling number (CSN), fluidity, and plastic layer thickness property of coal. In this connection, we also performed a computational study to rationalize the mechanism of action of the polymeric additive. Exploration of the reaction features through density functional theory calculations offered significant insight into the role of the polymer in assisting coal fluidity development. Addition of the polymer prominently enhanced the coke strength after reaction (CSR) of a non-coking coal enriched blend during carbonization. This study discloses new prospects in the steel industry for the sustainable and bulk scale synthesis of a coal tar-based polymeric additive for the profitable production of metallurgical coke.

摘要

近年来,由于全球优质炼焦煤储量有限,利用劣质煤生产燃料基材料(即冶金焦炭)成为工业领域一个令人兴奋的研究方向。在钢铁行业,煤焦油是产量最高且可持续的高性价比副产品,它是大量芳香族成分的来源,如苯酚或其带有多环芳烃的衍生物。因此,我们首次通过交联聚合技术,使用煤焦油前驱体、多聚甲醛单体以及基于乙二醇 - 四氢化萘的增塑剂,开发了一种新型有机聚合物添加剂,并探索了其在冶金焦炭生产中作为劣质煤的应用。我们合成的聚合物是一种均匀的可流动液体材料;合成过程简单,易于扩大规模,产率高(约90%)且经济实惠。通过热重分析(TGA)和氢气析出研究,研究了聚合物添加剂与煤基质的相互作用,以了解聚合物在煤碳化过程中的作用。该聚合物添加剂显著改善了煤的坩埚膨胀序数(CSN)、流动性和塑性层厚度性能。在此方面,我们还进行了一项计算研究,以阐明聚合物添加剂的作用机制。通过密度泛函理论计算探索反应特征,为聚合物在促进煤流动性发展中的作用提供了重要见解。在碳化过程中,添加该聚合物显著提高了非炼焦煤富集 blend 的反应后焦炭强度(CSR)。本研究揭示了钢铁行业在可持续大规模合成基于煤焦油的聚合物添加剂以实现冶金焦炭盈利生产方面的新前景。

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