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Thermal performance analysis and synergistic effect on co-pyrolysis of coal and sugarcane bagasse blends pretreated by trihexyltetradecylphosphonium chloride

机译:三氧乙二醇氯化鏻预处理煤与甘蔗甘蔗蔗糖共混物的热性能分析及协同作用

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This paper aims to investigate the thermochemical behavior and synergistic effects of low-rank coal, and sugarcane bagasse (SCB) blends after pretreatment by trihexyltetradecylphosphonium chloride ([P-66614] [Cl]). Three samples of coal and SCB blends, C75B25, C50B50, and C25B75, in ratios 3:1, 1:1, and 1:3 by weight, respectively, were prepared and pretreated with [P-66614] [Cl] at 150 degrees C for 3 h. Hereafter, they were subjected to thermogravimetric analysis (TGA) under an inert atmosphere at a fixed heating rate of 20 degrees C. Thermal performance and synergistic effects were evaluated and compared by reactivity, kinetic, and thermodynamic analysis. Ten different models related to four reaction mechanisms were applied to evaluate kinetic and thermodynamic parameters. During pretreatment, [P-66614] [Cl] was completely absorbed in blends and individual fuels. TGA results showed that IL treatment altered the thermal profiles of the blends at 350-500 degrees C. [P-66614] [Cl] treatment caused an increase in total weight loss of 7.15%, 2.81%, and 1.62% for C75B25, C501350, and C25B75, respectively. Peak temperatures for C75B25, C50B50, and C25B75 changed from 356, 365, and 374 degrees C to 472, 459, and 485 degrees C, respectively, after IL treatment, indicating thermal stability. The relative mean reactivity (Rm) for C75B25 increased (8.78 to 14.94%min(-1)degrees C-1), whereas for C50B50 and C25B75 (16.1 and 20.15%min(-1)degrees C-1 to 14.84 and 13.61%min(-1)degrees C-1) decreased after [P-66614] [Cl] treatment, implying synergistic effects. Among the reaction models, R-2 values in excess of 0.80 were obtained for all the samples, with activation energy of C75B25, C50B50, C25B75, C75B25 + [P-66614] [Cl], C50B50 + [P-66614] [Cl], and C25B75 [P-66614] [Cl] in the range of 12.48-51.17 kJ/mol, 12.53-46.07 kJ/mol, 10.85-45.40 kJ/mol, 8.11-35.50 kJ/mol, 6.9-33.59 kJ/mol, 6.65-41.32 kJ/mol, respectively. Entropy values suggested increased depolymerization of fuel structure due to IL treatment. Low synergy was detected in untreated as compared to IL treated blends. [P-66614] [Cl] treatment seemed to have a more significant effect on samples having higher carbon content as compared to SCB. This study could be useful in modeling and designing co-thermochemical conversion processes for coal and SCB blends after low-cost [P-66614] [Cl] pretreatment.
机译:本文旨在探讨低级煤的热化学行为和协同作用,并在三氧基二亚膦鏻预处理后的甘蔗蛋白(SCB)混合物([P-66614] [Cl])。制备三种煤和SCB共混物,C75B25,C50B50和C25B75,分别以比例为3:1,1:1和1:3,并用150度用[P-66614] [CL]预处理c 3小时。以下,在20摄氏度的固定加热速率下,它们在惰性气氛下进行热重分析(TGA)。通过反应性,动力学和热力学分析评估热性能和协同效应。应用了与四种反应机制相关的十种不同的模型来评估动力学和热力学参数。在预处理期间,[p-66614] [Cl]完全被共混物和单独的燃料吸收。 TGA结果表明,IL处理在350-500℃下改变了混合物的热谱。[P-66614] [CL]处理引起的总重量损失为7.15%,2.81%,1.62%,C501350和C25B75分别。 C75B25,C50B50和C25B75的峰值温度从II处理后的356,365和374℃变为472,459和485摄氏度,表明热稳定性。 C75b25的相对平均反应性(RM)增加(8.78至14.94%min(-1)℃c-1),而C50b50和C25b75(16.1和20.15%min(-1)℃-1至14.84和13.61% min(-1)℃c-1)在[p-66614]处理后降低,暗示协同效应。在反应模型中,对于所有样品,获得过量为0.80的R-2值,C75b25,C50b50,c25b75,c75b25 + [p-6614] [cl],C50b50 + [p-66614] [C1]的活化能]和C25B75 [P-66614] [CL]的范围为12.48-51.17 kJ / mol,12.53-46.07 kJ / mol,10.85-45.40 kJ / mol,8.11-35.50 kJ / mol,6.9-33.59 kj / mol ,分别为6.65-41.32 kJ / mol。熵值建议由于IL处理引起的燃料结构的降解量增加。与IL处理的混合物相比,在未经处理中检测到低协同作用。 [P-66614] [Cl]治疗似乎对与SCB相比具有较高碳含量的样品具有更大的影响。该研究可用于在低成本后进行建模和设计煤和SCB混合物的共热转化方法[P-66614]预处理。

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