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Pyrolysis of high ash sewage sludge: Kinetics and thermodynamic analysis using Coats-Redfern method

机译:高灰污水污泥的热解:使用Coats-Redfern方法的动力学和热力学分析

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This study aims to investigate the thermo-kinetics of high-ash sewage sludge using thermogravimetric analysis. Sewage sludge was dried, pulverized and heated non-isothermally from 25 to 800 degrees C at different heating rates (5, 10 and 20 C/min) in N-2 atmosphere. TG and DTG results indicate that the sewage sludge pyrolysis may be divided into three stages. Coats-Redfern integral method was applied in the 2nd and 3rd stage to estimate the activation energy and pre-exponential factor from mass loss data using five major reaction mechanisms. The low-temperature stable components (LTSC) of the sewage sludge degraded in the temperature regime of 250-450 degrees C while high-temperature stable components (HTSC) decomposed in the temperature range of 450-700 degrees C. According to the results, first-order reaction model (F1) showed higher Ea with better R-2 for all heating rates. D3, N1, and S1 produced higher Ea at higher heating rates for LTSC pyrolysis and lower Ea with the increase of heating rates for HTSC pyrolysis. All models showed positive Delta H except F1.5. Among all models, Diffusion (D1, D2, D3) and phase interfacial models (S1, S2) showed higher Delta G as compared to reaction, nucleation, and power-law models in section I and section II. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本研究旨在利用热重分析法研究高灰污水污泥的热动力学。将污水污泥在N-2气氛中以不同的加热速率(5、10和20 C / min)干燥,粉碎并从25至800摄氏度进行非等温加热。 TG和DTG结果表明,污泥热解可分为三个阶段。在第二阶段和第三阶段应用Coats-Redfern积分方法,使用五种主要反应机理,根据质量损失数据估算活化能和指数前因子。污水污泥的低温稳定成分(LTSC)在250-450摄氏度的温度范围内降解,而高温稳定成分(HTSC)在450-700摄氏度的温度范围内分解。根据结果,一阶反应模型(F1)在所有加热速率下均显示出更高的Ea和更好的R-2。 D3,N1和S1在较高的加热速率下对LTSC热解产生较高的Ea,而随着HTSC热解加热率的升高产生较低的Ea。除F1.5外,所有模型均显示正DeltaH。在所有模型中,与第一部分和第二部分中的反应,成核和幂律模型相比,扩散(D1,D2,D3)和相界面模型(S1,S2)显示出更高的DeltaG。 (C)2018 Elsevier Ltd.保留所有权利。

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