Pyrolytic conversion of waste plastics to energy products: A review on yields, properties, and production costs

被引:34
|
作者
Faisal, F. [1 ]
Rasul, M. G. [1 ]
Jahirul, M., I [1 ]
Schaller, D. [2 ]
机构
[1] Cent Queensland Univ, Sch Engn & Technol, Fuel & Energy Res Grp, Rockhampton, Qld 4702, Australia
[2] Northern Oil Refineries Pty Ltd, 39 Guerassimoff Rd, Yarwun, Qld 4694, Australia
关键词
Waste plastics pyrolysis; Waste -to -energy technology; Pyrolytic oil yields; Distillation and hydrotreatment of WPPO; Automobile fuels; Techno-economic analysis; HIGH-DENSITY POLYETHYLENE; FLUIDIZED-BED PYROLYSIS; CONICAL SPOUTED BEDS; CATALYTIC DEGRADATION; COMBUSTION CHARACTERISTICS; FUEL-OIL; EMISSION CHARACTERISTICS; THERMAL-DEGRADATION; ENGINE PERFORMANCE; PROCESS PARAMETERS;
D O I
10.1016/j.scitotenv.2022.160721
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In recent years, about 370 million tonnes of waste plastic are generated annually with about 9 % recycled, 80 % landfilled and 11 % converted to energy. As recycling of waste plastics are quite expensive and labour-intensive, the focus has now been shifted towards converting waste plastics into energy products. Pyrolysis of waste plastic generates liquid oil (crude), gas, char and wax among which liquid oil is the most valuable product. In this review, emphasis has been given on the pyrolysis products yield from both thermal and catalytic pyrolysis and the factors that affect pyrol-ysis products yield. The use of homogenous catalysts, for example AlCl3, can significantly improve the quality of waste plastic pyrolytic oil (WPPO), reduce time and energy consumption of the process, and help remove the contaminants of waste plastic. This study also thoroughly reviewed physico-chemical properties of WPPO to understand their thermal stability, elemental composition, and functional groups. Although liquid oil exhibits comparable heating value with commercial fuel (diesel/petrol), for example higher heating value of Polypropylene (PP) and Polyethylene (PE) are 50 and 42 MJ/kg which is between 42 and 46 MJ/kg for commercial diesel the other properties depend on several pa-rameters such as plastic and pyrolysis reactor types, temperature, feed size, reaction time, heating rate and catalysts. A techno-economic analysis indicate that the liquid oil production cost could be about 0.6 USD/l if plant capacity is >= 175,000 million litres/year with a breakeven of 1 year. After-treatment of WPPO through distillation and hydrotreatment is recommended for improving the physio-chemical properties comparable to commercial fuel to use in automobile applications. This paper will be a valuable guide for stakeholders, and decision and policy makers for proper utilization of waste plastics.
引用
收藏
页数:22
相关论文
共 50 条
  • [41] Life cycle assessment on television production and recovery energy from televisions' waste plastics
    Ma, Xiao-Qian
    Li, Fei
    Li, Min
    Zhao, Zeng-Li
    Li, Hai-Bin
    Chen, Yong
    Zhongguo Suliao/China Plastics, 2003, 17 (07):
  • [42] Waste to energy conversion: Pyrolytic oil and biodiesel as a renewable fuel blends on diesel engine combustion, performance, and emissions
    Sonmez, Halil Ibrahim
    Okumus, Fatih
    Kaya, Cenk
    Aydin, Zafer
    Safa, Aykut
    Kokkulunk, Gorkem
    INTERNATIONAL JOURNAL OF GREEN ENERGY, 2022, 19 (12) : 1333 - 1344
  • [43] Co-pyrolysis of biomass and waste plastics for production of chemicals and liquid fuel: A review on the role of plastics and catalyst types
    Zulkafli, Aizatul Hikmah
    Hassan, Hamizura
    Ahmad, Mohd Azmier
    Din, Azam Taufik Mohd
    Wasli, Siti Maryam
    ARABIAN JOURNAL OF CHEMISTRY, 2023, 16 (01)
  • [44] Comparing energy crops for biogas production Yields, energy input and costs in cultivation using digestate and mineral fertilisation
    Gissen, Charlott
    Prade, Thomas
    Kreuger, Emma
    Nges, Ivo Achu
    Rosenqvist, Hakan
    Svensson, Sven-Erik
    Lantz, Mikael
    Mattsson, Jan Erik
    Borjesson, Pal
    Bjornsson, Louisa
    BIOMASS & BIOENERGY, 2014, 64 : 199 - 210
  • [45] Current technologies of biochemical conversion of food waste into biogas production: A review
    Vijayakumar, Pradeshwaran
    Ayyadurai, Saravanakumar
    Arunachalam, Kantha Deivi
    Mishra, Gaurav
    Chen, Wei-Hsin
    Juan, Joon Ching
    Naqvi, Salman Raza
    FUEL, 2022, 323
  • [46] Syngas production from thermochemical conversion of mixed food waste: A review
    Yadav, Sanjeev
    Katiyar, Priyanka
    Al Mesfer, Mohammed K.
    Danish, Mohd
    WILEY INTERDISCIPLINARY REVIEWS-ENERGY AND ENVIRONMENT, 2023, 12 (03)
  • [47] Thermochemical and biochemical conversion of agricultural waste for bioenergy production: an updated review
    Hafiz Muhammad Aamir Shahzad
    Zukhruf Asim
    Sher Jamal Khan
    Fares Almomani
    Khaled A. Mahmoud
    Muhammad Raza Ul Mustafa
    Kashif Rasool
    Discover Environment, 2 (1):
  • [48] Review: Opportunities for simultaneous energy/materials conversion of carbon dioxide and plastics in metallurgical processes
    Devasahayam, Sheila
    SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2019, 22
  • [49] Slow pyrolysis of rice straw: Analysis of products properties, carbon and energy yields
    Park, Jinje
    Lee, Yongwoon
    Ryu, Changkook
    Park, Young-Kwon
    BIORESOURCE TECHNOLOGY, 2014, 155 : 63 - 70
  • [50] Recycling of Solid Products of Municipal Waste Pyrolysis with Production of Energy Fuel
    Kulumbegov, R. V.
    Delitsyn, L. M.
    Popel', O. S.
    Karpov, A. I.
    Svechnikova, N. Yu.
    Ryabov, Yu. V.
    THERMAL ENGINEERING, 2024, 71 (11) : 979 - 990