Pyrolysis kinetics and thermodynamic parameters of plastic grocery bag based on thermogravimetric data using iso-conversional methods

被引:0
作者
D. Saha
A. Sinha
S. Pattanayak
B. Roy
机构
[1] National Institute of Technology Mizoram,Department of Mechanical Engineering
来源
International Journal of Environmental Science and Technology | 2022年 / 19卷
关键词
Activation energy; Environmental pollution; Plastic waste; Pre-exponential factor; Waste recycling;
D O I
暂无
中图分类号
学科分类号
摘要
The enormous growth in the consumption of plastic grocery bags and their non-biodegradability nature has become a serious cause of waste generation. In the context of the disposal of plastic, pyrolysis is a promising technique that addresses the energy crisis issue too. Therefore, in this work, pyrolysis kinetics and thermodynamic parameters of plastic grocery bags were investigated using different iso-conversional methods (Starink, Kissinger–Akahira–Sunose, Ozawa–Wall–Flynn, and Friedman methods) based on thermogravimetric analysis data at multiple heating rates (10, 20, 30, and 40 K/min). The pyrolysis of plastic grocery bags followed a single-step degradation process. The average activation energy values were found to be 133.21, 133.80, 139.12, and 192.08 kJ/mol from Starink, Kissinger–Akahira–Sunose, Ozawa–Wall–Flynn, and Friedman methods, respectively. The average values of the pre-exponential factor (using Kissinger’s equation) varied in between 7.14 × 108 and 1.47 × 1013 min−1. From the generalized master plot, it has been observed that the one-dimensional diffusion model is the most suitable one to describe the pyrolysis process. The trends of the thermodynamic parameters reveal the ease of reaction of the plastic grocery bag, as well as it is approaching the thermodynamic equilibrium state during the pyrolysis process. This investigation on the pyrolysis kinetics and thermodynamic parameters would be a reference in designing and scaling the reactor for the treatment of plastic grocery bags.
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页码:391 / 406
页数:15
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共 217 条
[1]  
Aboulkas A(2010)Thermal degradation behaviors of polyethylene and polypropylene. Part I: pyrolysis kinetics and mechanisms Energy Convers Manag 51 1363-1369
[2]  
El Harfi K(2020)Policies to reduce single-use plastic marine pollution in West Africa Marine Policy 116 103928-31
[3]  
El Bouadili A(1971)Method of determining activation deterioration constant of electrical insulating materials Res Rep China Inst Technol (Sci Technol) 16 22-1606
[4]  
Adam I(2010)Kinetic study of high density polyethylene (HDPE) pyrolysis Chem Eng Res Des 88 1599-322
[5]  
Walker TR(2019)Pyrolysis kinetics of biomass wastes using iso-conversional methods and the distributed activation energy model Bioresour Technol 76 309-160
[6]  
Bezerra JC(2017)Review of physicochemical properties and analytical characterization of lignocellulosic biomass Renew Sustain Energy Rev 115 153-149
[7]  
Clayton A(2013)Kinetics of thermal degradation applied to biocomposites with TPS, PCL and sisal fibers by non-isothermal procedures J Therm Anal Calorim 57 135-97
[8]  
Akahira T(1997)The thermal degradation kinetics of polypropylene: Part III—thermogravimetric analyses Polym Degrad Stab 166 81-202
[9]  
Sunose T(2018)Effective utilization of waste plastic oil in a direct injection diesel engine using high carbon alcohols as oxygenated additives for cleaner emissions Energy Convers Manag 654 191-31
[10]  
Al-Salem SM(2017)Thermal degradation kinetics of plastics and model selection Thermochim Acta 51 22-852