Thermal Characteristics, Kinetic Models, and Volatile Constituents during the Energy Conversion of Bituminous SARA Fractions in Air

被引:9
作者
Xia, Wenjing [1 ]
Xu, Tao [1 ]
机构
[1] Nanjing Forestry Univ, Coll Civil Engn, Nanjing 210037, Jiangsu, Peoples R China
来源
ACS OMEGA | 2020年 / 5卷 / 33期
基金
中国国家自然科学基金;
关键词
HEAVY CRUDE-OIL; ASPHALT BINDER; PHYSICOCHEMICAL PROPERTIES; COMBUSTION PROPERTIES; PYROLYSIS PROPERTIES; TG-MS; OXIDATION; COMPONENTS;
D O I
10.1021/acsomega.0c02023
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
To understand the thermal characteristics, nonisothermal kinetic models, and volatile constituents during the energy conversion of bituminous materials at the fraction level, differential scanning calorimetry-mass spectrometry tests were performed on bituminous four fractions, including saturates, aromatics, resins, and asphaltenes (SARA). Then, three-dimensional (3D) nonisothermal kinetic models of SARA fractions were established and volatile constituents of SARA fractions were discussed. Results indicate that when the heating rate is increased, the decomposition temperature ranges in each stage increase and the initial decomposition, peak, and burn-out temperatures of each SARA fraction all shift to high temperatures. Also, the whole energy conversion processes of SARA fractions are mainly exothermic reactions. Additionally, the energy conversion mechanism in each stage of saturates and aromatics accords with different nonisothermal kinetic models. However, the energy conversion mechanisms of resins and asphaltenes are similar and both accord with the 3D diffusion models. Further, the established nonisothermal kinetic models in each decomposition stage of SARA fractions are feasible to describe the energy conversion processes of SARA fractions. The released small molecular volatiles from saturates and aromatics increase when the heating rate is increased, but the macromolecular volatiles are decreased. The opposite is true for resins, but all volatiles emitted from asphaltenes are increased. Finally, the heating rate has little influence on the constituents of emitted gaseous products from SARA fractions but shows an effect on the release amount of volatiles from SARA fractions. The main common volatiles of SARA fractions are CO2, H2O, methanol, hydrazine, propyne, acetaldehyde, and propane. This study contributes to further reveal the energy conversion mechanisms of bituminous materials.
引用
收藏
页码:20831 / 20841
页数:11
相关论文
共 38 条
[1]  
Claudy P., 1992, FUEL SCI TECHN INT, V10, P735, DOI [10.1080/08843759208916019, DOI 10.1080/08843759208916019]
[2]   Inhibiting effect of Layered Double Hydroxides on the emissions of volatile organic compounds from bituminous materials [J].
Cui, Peiqiang ;
Wu, Shaopeng ;
Xiao, Yue ;
Wan, Miao ;
Cui, Peide .
JOURNAL OF CLEANER PRODUCTION, 2015, 108 :987-991
[3]   Chemical-Reaction Mechanisms That Govern Oxidation Rates During In-Situ Combustion and High-Pressure Air Injection [J].
Freitag, N. P. .
SPE RESERVOIR EVALUATION & ENGINEERING, 2016, 19 (04) :645-654
[4]   Low-temperature oxidation of oils in terms of SARA fractions: Why simple reaction models don't work [J].
Freitag, NP ;
Verkoczy, B .
JOURNAL OF CANADIAN PETROLEUM TECHNOLOGY, 2005, 44 (03) :54-61
[5]   Molecular dynamics investigation of interfacial adhesion between oxidised bitumen and mineral surfaces [J].
Gao, Yangming ;
Zhang, Yuqing ;
Yang, Yang ;
Zhang, Junhui ;
Gu, Fan .
APPLIED SURFACE SCIENCE, 2019, 479 :449-462
[6]   Structural performance and sustainability assessment of cold central-plant and in-place recycled asphalt pavements: A case study [J].
Gu, Fan ;
Ma, Wangyu ;
West, Randy C. ;
Taylor, Adam J. ;
Zhang, Yuqing .
JOURNAL OF CLEANER PRODUCTION, 2019, 208 :1513-1523
[7]   In situ catalytic upgrading of heavy crude oil through low-temperature oxidation [J].
Jia, Hu ;
Liu, Peng-Gang ;
Pu, Wan-Fen ;
Ma, Xian-Ping ;
Zhang, Jie ;
Gan, Lu .
PETROLEUM SCIENCE, 2016, 13 (03) :476-488
[8]   A review of pyrolysis, aquathermolysis, and oxidation of Athabasca bitumen [J].
Kapadia, Punitkumar R. ;
Kallos, Michael S. ;
Gates, Ian D. .
FUEL PROCESSING TECHNOLOGY, 2015, 131 :270-289
[9]  
Kiang YH, 2018, FUEL PROPERTY ESTIMATION AND COMBUSTION PROCESS CHARACTERIZATION: CONVENTIONAL FUELS, BIOMASS, BIOCARBON, WASTE FUELS, REFUSE DERIVED FUEL, AND OTHER ALTERNATIVE FUELS, P41, DOI 10.1016/B978-0-12-813473-3.00003-9
[10]   Clay concentration and heating rate effect on crude oil combustion by thermogravimetry [J].
Kok, Mustafa Versan .
FUEL PROCESSING TECHNOLOGY, 2012, 96 :134-139