Pyrolysis of petroleum sludge under non-isothermal conditions: Thermal decomposition behavior, kinetics, thermodynamics, and evolved gas analysis

被引:37
作者
Ozsin, Gamzenur [1 ]
Apaydin-Varol, Esin [2 ]
Kilic, Murat [2 ]
Putun, Ayse E. [3 ]
Putun, Ersan [4 ]
机构
[1] Bilecik Seyh Edebali Univ, Chem Engn Dept, TR-11230 Bilecik, Turkey
[2] Eskisehir Tech Univ, Chem Engn Dept, TR-26555 Eskisehir, Turkey
[3] Anadolu Univ, Chem Engn Dept, TR-26555 Eskisehir, Turkey
[4] Anadolu Univ, Mat Sci & Engn Dept, TR-26555 Eskisehir, Turkey
关键词
Petroleum sludge; Pyrolysis; Kinetics; Thermodynamics; TGA; FT-IR; OIL SLUDGE; CO-PYROLYSIS; EMULSIFIED WATER; WASTE; ADDITIVES; RECOVERY; RESIDUE; GASIFICATION; PARAMETERS; PRODUCTS;
D O I
10.1016/j.fuel.2021.120980
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Pyrolysis of petroleum sludge is considered as a promising way for energy production from solid waste of petroleum refineries and the ability to predict the thermal decomposition behavior of such processes is necessary for modeling, optimization, and control of the pyrolysis reactors. Therefore, this work focused on developing and applying a systematic methodology for the calculation of kinetics and thermodynamics of the oil sludge pyrolysis and investigation of evolved gases. Thermograms at different heating rates demonstrated that the pyrolysis reactions could be considered under three zones; i) moisture and low molecular weight hydrocarbon volatilization, ii) active pyrolysis, and iii) high-temperature carbonization. During active pyrolysis, two decomposition stages were obtained by deconvolution using the Asym2sig function, which indicated the occurrence of multiple reactions. The average activation energies, calculated by the iso-conversional models, ranged in 106.3-112.7 kJ. mol- 1 and 200.9-207.6 kJ.mol-1 for the first and second pyrolysis stages, respectively. Flynn-Wall-Ozawa and Friedman models showed the best consistency between the experimental and predicted values. The average preexponential factors were estimated as 9.79 x 106 s-1 and 1.91 x 1012 s-1 for these subsequent sub-stages. Furthermore, enthalpy, Gibbs free energy, and entropy changes were estimated together with monitoring emission profiles of the released gases from the sludge during pyrolysis by coupling TGA with an FT-IR spectrometer. The reported kinetic, thermodynamic parameters and findings on evolved gases can expand the use of this residue in refinery applications, consisting of a great attempt toward its valorization.
引用
收藏
页数:12
相关论文
共 75 条
[1]   Exploiting the intrinsic hydrocarbon-degrading microbial capacities in oil tank bottom sludge and waste soil for sludge bioremediation [J].
Adetutu, E. M. ;
Bird, C. ;
Kadali, K. K. ;
Bueti, A. ;
Shahsavari, E. ;
Taha, M. ;
Patil, S. ;
Sheppard, P. J. ;
Makadia, T. ;
Simons, K. L. ;
Ball, A. S. .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2015, 12 (04) :1427-1436
[2]   A modified DAEM: To study the bioenergy potential of invasive Staghorn Sumac through pyrolysis, ANN, TGA, kinetic modeling, FTIR and GC-MS analysis [J].
Ahmad, Muhammad Sajjad ;
Liu, Hui ;
Alhumade, Hesham ;
Tahir, Muddasar Hussain ;
Cakman, Gulce ;
Yildiz, Agah ;
Ceylan, Selim ;
Elkamel, Ali ;
Shen, Boxiong .
ENERGY CONVERSION AND MANAGEMENT, 2020, 221
[3]  
Akahira T., 1971, RES REPORT CHIBA I T, V16, P22
[4]   Determination of activation energy of pyrolysis of carton packaging wastes and its pure components using thermogravimetry [J].
Alvarenga, Larissa M. ;
Xavier, Thiago P. ;
Barrozo, Marcos Antonio S. ;
Bacelos, Marcelo S. ;
Lira, Taisa S. .
WASTE MANAGEMENT, 2016, 53 :68-75
[5]  
Barzegar R., 2019, J ENERGY INST
[6]   TGA and kinetic study of different torrefaction conditions of wood biomass under air and oxy-fuel combustion atmospheres [J].
Barzegar, Ramin ;
Yozgatligil, Ahmet ;
Olgun, Hayati ;
Atimtay, Aysel T. .
JOURNAL OF THE ENERGY INSTITUTE, 2020, 93 (03) :889-898
[7]   Pyrolysis characteristics of excavated waste material processed into refuse derived fuel [J].
Bosmans, Anouk ;
De Dobbelaere, Christopher ;
Helsen, Lieve .
FUEL, 2014, 122 :198-205
[8]   TGA pyrolysis and gasification of combustible municipal solid waste [J].
Chen, Shen ;
Meng, Aihong ;
Long, Yanqiu ;
Zhou, Hui ;
Li, Qinghai ;
Zhang, Yanguo .
JOURNAL OF THE ENERGY INSTITUTE, 2015, 88 (03) :332-343
[9]   Preparation of LiZnPO4•H2O via a novel modified method and its non-isothermal kinetics and thermodynamics of thermal decomposition [J].
Chen, Zhipeng ;
Chai, Qian ;
Liao, Sen ;
He, Yu ;
Wu, Wenwei ;
Li, Bin .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2012, 108 (03) :1235-1242
[10]   Progress in thermal analysis studies on the pyrolysis process of oil sludge [J].
Cheng, Shuo ;
Chang, Fengmin ;
Zhang, Feng ;
Huang, Tixiao ;
Yoshikawa, Kunio ;
Zhang, Hongtao .
THERMOCHIMICA ACTA, 2018, 663 :125-136