Kinetics of Thermolysis of a Low-Temperature Tar in the Presence of a Catalyzer Agent with Deposited Metals

S. Tyanakh, M. Baikenov, A.M. Gulmaliev, Fengyun Ma, G. Musina, T. Khamitova, A. Bolatbay
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Abstract

The thermal decomposition of low-temperature coal tar (LTCT) obtained from the coals of Shubarkol Komir JSC of the Republic of Qazaqstan in the presence of nanocatalysts with metal oxides (iron, cobalt and nickel) supported on microsilicate was studied for the first time. Microsilicate acts as a carrier and catalyst. Microsilicate is a product of the Karaganda silicon plant of “Tau-Ken.temir” LLP. The main chemical com-ponent of the original microsilicate is silicon oxide. The individual and chemical phase composition of the microsilicate was determined using X-ray spectral analysis. The particle size of the initial microsilicate and the mixture of microsilicate with metal oxide catalysts (nickel, cobalt, and iron) was determined using a nanosizer. Stages of thermal decomposition of LTCT and a mixture of LTCT with catalysts under conditions of programmed heating up to 640 °С in a nitrogen atmosphere have been established. On the basis of thermogravimetric analysis, the kinetic parameters (activation energy, mass loss rate, and pre-exponential fac-tor) of LTCT pyrolysis and mixture with added catalysts were determined. The modelless integral isoconversion Ozawa–Flynn–Wall method was used to determine the kinetic parameters. The values of the activation energy for the thermal destruction of the LTCT in the absence and presence of the nanocatalyst ranged from 54.04 to 297.5 kJ/mol. A kinetic compensation effect was revealed, probably due to the multi-component composition of the LTCT and the influence of added catalysts to the LTCT. The thermogravimetry method showed a high effect of the supported catalysts on the thermal degradation of LTCT. This method was used to determine the values of the activation energy and the pre-exponential degra-dation factor for the LTCT and the mixture with catalysts at different heating rates, which allows a detailed interpretation of the thermal analysis data. The obtained results of the kinetics of decomposition of LTCT can be used to create a database for mathematical modeling of the process of processing this type of raw material.
金属沉淀催化剂存在下低温焦油热裂解动力学研究
本文首次研究了微硅酸盐负载金属氧化物(铁、钴和镍)纳米催化剂对哈萨克斯坦Shubarkol Komir JSC煤中低温煤焦油(LTCT)的热分解作用。微硅酸盐作为载体和催化剂。微硅酸盐是“陶肯”卡拉干达硅厂的产品。temir”。原始微硅酸盐的主要化学成分是氧化硅。用x射线光谱法测定了微硅酸盐的单体组成和化学相组成。初始微硅酸盐和微硅酸盐与金属氧化物催化剂(镍、钴和铁)的混合物的粒径用纳米粒度仪测定。在氮气气氛中,程序升温至640°С,建立了LTCT和LTCT与催化剂混合的热分解阶段。在热重分析的基础上,确定了添加催化剂的LTCT热解及其混合物的动力学参数(活化能、质量损失率和指前因子)。采用无模型积分等转换Ozawa-Flynn-Wall法确定动力学参数。在纳米催化剂存在和不存在的情况下,LTCT的热破坏活化能在54.04 ~ 297.5 kJ/mol之间。由于LTCT的多组分组成和添加的催化剂对LTCT的影响,发现了一种动力学补偿效应。热重分析结果表明,负载型催化剂对LTCT的热降解效果显著。该方法用于确定LTCT和催化剂混合物在不同加热速率下的活化能和指数前降解因子的值,从而可以详细解释热分析数据。所得的LTCT分解动力学结果可用于建立加工这类原料过程的数学建模数据库。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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