Thermal decomposition mechanism of some hydrocarbons by ReaxFF-based molecular dynamics and density functional theory study

被引:74
作者
Xin, Liyong [1 ]
Liu, Chao [1 ]
Liu, Yang [2 ]
Huo, Erguang [1 ]
Li, Qibin [1 ]
Wang, Xurong [1 ]
Cheng, Qinglin [2 ]
机构
[1] Chongqing Univ, Sch Energy & Power Engn, Key Lab Low Grade Energy Utilizat Technol & Syst, Minist Educ, Chongqing 400030, Peoples R China
[2] Northeast Petr Univ, Key Lab, Minist Educ Enhancing Oil & Gas Recovery Ratio, Daqing 163318, Peoples R China
基金
中国国家自然科学基金;
关键词
Hydrocarbons; ReaxFF; Density functional theory (DFT); Thermal decomposition; ORGANIC RANKINE-CYCLE; REACTIVE FORCE-FIELD; PYROLYSIS MECHANISM; WORKING FLUIDS; HFO-1336MZZ(Z); SIMULATIONS; HFO-1234YF; STABILITY; OXIDATION; TEMPERATURE;
D O I
10.1016/j.fuel.2020.117885
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
In order to investigate the decomposition mechanism of hydrocarbons, pyrolysis processes of 11 typical hydrocarbons (isobutane, isopentane, isohexane, n-butane, n-pentane, n-hexane, cyclobutane, cyclopentane, cyclohexane, benzene and toluene) are performed by using ReaxFF MD and DFT method. The results show that the initial pyrolysis reactions of these hydrocarbons can be divided into two types: homolytic cleavage of C-H bond and C-C bond. The bond dissociation energies of C-H bonds are higher than that of C-C bonds in these hydrocarbons except for toluene. The thermal decomposition rates of branched-chain hydrocarbons are faster than that of straight-chain hydrocarbons. The thermal decomposition rates of chain hydrocarbons gradually increase with the increases of C atom number. The main product molecules of hydrocarbon pyrolysis are H-2, CH4, C2H2 and C2H4. The apparent activation energies of 4 hydrocarbons (n-pentane, isohexane, neopentane and cyclopentane) pyrolysis are calculated by the kinetic analysis. In further reactions, CH3, C2H5 and H radicals are collided with hydrocarbons to undergo H-abstraction reactions. The energy barriers of H-abstraction reactions are calculated by DFT.
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页数:14
相关论文
共 46 条
[1]   Effect of dry hydrocarbons and critical point temperature on the efficiencies of organic Rankine cycle [J].
Aljundi, Isam H. .
RENEWABLE ENERGY, 2011, 36 (04) :1196-1202
[2]   Rapid screening of fluids for chemical stability in organic rankine cycle applications [J].
Andersen, WC ;
Bruno, TJ .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2005, 44 (15) :5560-5566
[3]   Reactive force field simulation studies on the combustion behavior of n-octanol [J].
Bharti, Anand ;
Banerjee, Tamal .
FUEL PROCESSING TECHNOLOGY, 2016, 152 :132-139
[4]   Thermal decomposition of HFO-1234yf through ReaxFF molecular dynamics simulation [J].
Cao, Yu ;
Liu, Chao ;
Zhang, Hao ;
Xu, Xiaoxiao ;
Li, Qibin .
APPLIED THERMAL ENGINEERING, 2017, 126 :330-338
[5]   Thermodynamic analysis of an organic Rankine cycle for waste heat recovery from gas turbines [J].
Carcasci, Carlo ;
Ferraro, Riccardo ;
Miliotti, Edoardo .
ENERGY, 2014, 65 :91-100
[6]   Comparison of thermal and catalytic cracking of 1-heptene from ReaxFF reactive molecular dynamics simulations [J].
Castro-Marcano, Fidel ;
van Duin, Adri C. T. .
COMBUSTION AND FLAME, 2013, 160 (04) :766-775
[7]   ReaxFF reactive force field for molecular dynamics simulations of hydrocarbon oxidation [J].
Chenoweth, Kimberly ;
van Duin, Adri C. T. ;
Goddard, William A., III .
JOURNAL OF PHYSICAL CHEMISTRY A, 2008, 112 (05) :1040-1053
[8]   Initiation Mechanisms and Kinetics of Pyrolysis and Combustion of JP-10 Hydrocarbon Jet Fuel [J].
Chenoweth, Kimberly ;
van Duin, Adri C. T. ;
Dasgupta, Siddharth ;
Goddard, William A., III .
JOURNAL OF PHYSICAL CHEMISTRY A, 2009, 113 (09) :1740-1746
[9]   Screening of hydrocarbons as supercritical ORCs working fluids by thermal stability [J].
Dai, Xiaoye ;
Shi, Lin ;
An, Qingsong ;
Qian, Weizhong .
ENERGY CONVERSION AND MANAGEMENT, 2016, 126 :632-637
[10]   Chemical kinetics method for evaluating the thermal stability of Organic Rankine Cycle working fluids [J].
Dai, Xiaoye ;
Shi, Lin ;
An, Qingsong ;
Qian, Weizhong .
APPLIED THERMAL ENGINEERING, 2016, 100 :708-713