1.南京工业大学能源科学与工程学院可循环碳国际联合实验室,江苏 南京 211816
2.中国科学院大连化学物理研究所环境催化工程研究组,辽宁 大连 116023
大连兴环能源科技有限公司,辽宁 大连 116317
史星杉(1997—),男,硕士研究生,xingshan.shi@njtech.edu.cn
朴玮玲(1994—),女,硕士,助理研究员,piaoweiling@dicp.ac.cn
何松波(1981—),男,博士,研究员,songbohe@dicp.ac.cn
收稿:2026-03-30,
修回:2026-05-20,
录用:2026-05-21,
移动端阅览
史星杉, 李伏政, 李昕宇, 等. 聚丙烯废塑料热解制可再生燃料中试研究[J/OL]. 化工学报, 2026.
SHI Xingshan, LI Fuzheng, LI Xinyu, et al. Pilot-scale pyrolysis of waste polypropylene to produce plastic pyrolysis oil[J/OL]. CIESC Journal, 2026.
史星杉, 李伏政, 李昕宇, 等. 聚丙烯废塑料热解制可再生燃料中试研究[J/OL]. 化工学报, 2026. DOI: 10.11949/0438-1157.20260427.
SHI Xingshan, LI Fuzheng, LI Xinyu, et al. Pilot-scale pyrolysis of waste polypropylene to produce plastic pyrolysis oil[J/OL]. CIESC Journal, 2026. DOI: 10.11949/0438-1157.20260427.
聚丙烯废塑料热化学回收是缓解塑料污染与实现资源循环的关键。热解技术可将聚丙烯转化为液态塑料热解油,但实际废塑料产生的热解油杂质含量高、烯烃与芳烃富集,无法直接用作可持续燃料。本研究构建了“热解-精馏-加氢”的组合工艺,并验证了该技术路线的工程放大可行性与产物定向提质潜力。间歇式回转窑中试装置中聚丙烯废塑料热解实验结果表明,在600℃热解温度下,热解油收率约65 wt.%,固体收率约13 wt.%。然而,该热解油中氯、硅、磷等杂质含量严重超标。热解油常压精馏实验富集了碳数分布与航空煤油及轻柴油吻合的C
10
-C
13
馏分,收率约14.6 wt.%。然而,其中烯烃及甲基萘含量较高,分别为8.5 wt.%及14.2 wt.%。该馏分催化加氢实验结果表明,在350℃加氢温度和使用Ni-Mo/Y312催化剂条件下,液体收率高达96.5 wt.%以上,产物由棕红色变为无色透明,烯烃含量由85.3%显著降低至1.3wt.%,1-甲基萘和2-甲基萘脱除率分别达到90.3%和50.6%。本研究通过中试规模的“热解-精馏-加氢”全流程工艺验证,为进一步开发废塑料制备可持续燃料的产业化技术提供了工艺参数和放大依据。
Chemical recycling of waste polypropylene (PP) is an essential method f
or tackling plastic pollution and supporting a circular economy. Pyrolysis can transform this waste into liquid plastic pyrolysis oil
which
however
contains contaminants and is usually rich in olefins and aromatics
making it unsuitable for direct use as fuel. This work demonstrates a "pyrolysis-distillation-hydrogenation" process and assesses its scalability and potential for product upgrading. Pilot-scale pyrolysis of waste PP in a 3-m³ rotary kiln at 600℃ produced 65 wt.% oil and 13 wt.% solid residue. However
the derived plastic pyrolysis oil (PPO) contained extremely high levels of impurities
such as chlorine
silicon
and phosphorus. Consequently
the PPO was further distilled under atmospheric pressure
with particular emphasis on the concentrated C
10
-C
13
fraction
which has a carbon-number range similar to that of jet fuel and diesel. This target fraction yield was 14.6 wt.%
but it still had high levels of olefins (8.5 wt.%) and methylnaphthalenes (14.2 wt.%). Therefore
subsequent catalytic hydrogenation over a Ni-Mo/Y312 catalyst at 350℃ was performed to effectively upgrade this stream. This led to a change in the oil from reddish-brown to water-white
with a yield exceeding 96.5 wt.%
and a significant reduction in olefin content from 85.3% to 1.3 wt.%. Additionally
the removal rates for 1-methylnaphthalene and 2-methylnaphthalene were 90.3% and 50.6%. This pilot-scale validation of the "pyrolysis-distillation-hydrogenation" process provides essential parameter data and serves as a reference for scaling up
supporting the industrial implementation of chemical recycling of waste plastics.
Zeenat , Elahi A , Bukhari D A , et al . Plastics degradation by microbes: a sustainable approach [J ] . Journal of King Saud University - Science , 2021 , 33 ( 6 ): 101538 .
Anuar Sharuddin S D , Abnisa F , Wan Daud W M A , et al . A review on pyrolysis of plastic wastes [J ] . Energy Conversion and Management , 2016 , 115 : 308 - 326 .
Geyer R , Jambeck J R , Law K L . Production, use, and fate of all plastics ever made [J ] . Science Advances , 2017 , 3 ( 7 ): e1700782 .
Ehrig R J . Plastics recycling - products and processes [J ] . International Journal of Materials Research , 1993 , 84 ( 3 ): 220 .
Chang S H . Plastic waste as pyrolysis feedstock for plastic oil production: a review [J ] . Science of the Total Environment , 2023 , 877 : 162719 .
Thiounn T , Smith R C . Advances and approaches for chemical recycling of plastic waste [J ] . Journal of Polymer Science , 2020 , 58 ( 10 ): 1347 - 1364 .
Ignatyev I A , Thielemans W , Vander Beke B . Recycling of polymers: a review [J ] . ChemSusChem , 2014 , 7 ( 6 ): 1579 - 1593 .
Schyns Z O G , Shaver M P . Mechanical recycling of packaging plastics: a review [J ] . Macromolecular Rapid Communications , 2021 , 42 ( 3 ): 2000415 .
Lopez G , Artetxe M , Amutio M , et al . Thermochemical routes for the valorization of waste polyolefinic plastics to produce fuels and chemicals. A review [J ] . Renewable and Sustainable Energy Reviews , 2017 , 73 : 346 - 368 .
Al-Salem S M , Antelava A , Constantinou A , et al . A review on thermal and catalytic pyrolysis of plastic solid waste (PSW) [J ] . Journal of Environmental Management , 2017 , 197 : 177 - 198 .
Kusenberg M , Eschenbacher A , Djokic M R , et al . Opportunities and challenges for the application of post-consumer plastic waste pyrolysis oils as steam cracker feedstocks: To decontaminate or not to decontaminate? [J ] . Waste Management , 2022 , 138 : 83 - 115 .
Roosen M , Mys N , Kusenberg M , et al . Detailed analysis of the composition of selected plastic packaging waste products and its implications for mechanical and thermochemical recycling [J ] . Environmental Science & Technology , 2020 , 54 ( 20 ): 13282 - 13293 .
Dao Thi H , Djokic M R , Van Geem K M . Detailed group-type characterization of plastic-waste pyrolysis oils: by comprehensive two-dimensional gas chromatography including linear, branched, and di-olefins [J ] . Separations , 2021 , 8 ( 7 ): 103 .
Mangesh V L , Perumal T , Subramanian S , et al . Clean energy from plastic: production of hydroprocessed waste polypropylene pyrolysis oil utilizing a Ni–Mo/laponite catalyst [J ] . Energy & Fuels , 2020 , 34 ( 7 ): 8824 - 8836 .
Radhakrishnan H , Mohammed A A B A , Coffman I , et al . Influence of functional additives, fillers, and pigments on thermal and catalytic pyrolysis of polyethylene for waste plastic upcycling [J ] . Green Chemistry , 2025 , 27 ( 20 ): 5861 - 5882 .
Abbas-Abadi M S , Haghighi M N , Yeganeh H , et al . Evaluation of pyrolysis process parameters on polypropylene degradation products [J ] . Journal of Analytical and Applied Pyrolysis , 2014 , 109 : 272 - 277 .
Qureshi M S , Oasmaa A , Pihkola H , et al . Pyrolysis of plastic waste: Opportunities and challenges [J ] . Journal of Analytical and Applied Pyrolysis , 2020 , 152 : 104804 .
Dogu O , Pelucchi M , Van de Vijver R , et al . The chemistry of chemical recycling of solid plastic waste via pyrolysis and gasification: State-of-the-art, challenges, and future directions [J ] . Progress in Energy and Combustion Science , 2021 , 84 : 100901 .
Campuzano F , Brown R C , Martínez J D . Auger reactors for pyrolysis of biomass and wastes [J ] . Renewable and Sustainable Energy Reviews , 2019 , 102 : 372 - 409 .
Chen D Z , Yin L J , Wang H , et al . Pyrolysis technologies for municipal solid waste: a review [J ] . Waste Management , 2014 , 34 ( 12 ): 2466 - 2486 .
Mani M , Nagarajan G , Sampath S . Characterisation and effect of using waste plastic oil and diesel fuel blends in compression ignition engine [J ] . Energy , 2011 , 36 ( 1 ): 212 - 219 .
Dobó Z , Kecsmár G , Nagy G , et al . Characterization of gasoline-like transportation fuels obtained by distillation of pyrolysis oils from plastic waste mixtures [J ] . Energy & Fuels , 2021 , 35 ( 3 ): 2347 - 2356 .
Thunman H , Berdugo Vilches T , Seemann M , et al . Circular use of plastics-transformation of existing petrochemical clusters into thermochemical recycling plants with 100% plastics recovery [J ] . Sustainable Materials and Technologies , 2019 , 22 : e00124 .
Ragaert K , Delva L , Van Geem K . Mechanical and chemical recycling of solid plastic waste [J ] . Waste Management , 2017 , 69 : 24 - 58 .
Yoon B S , Kim C , Park G J , et al . Upgrading waste plastic pyrolysis oil via hydrotreating over sulfur-treated Ni-Mo/Al 2 O 3 catalysts [J ] . Fuel , 2024 , 369 : 131688 .
杨德凤 , 何沛 , 王树青 . 原油氯含量分析方法的研究及应用 [J ] . 石油炼制与化工 , 2010 , 41 ( 4 ): 31 - 35 .
Yang D F , He P , Wang S Q . A study and application of analytical methods for measuring chlorine content in crude oils [J ] . Petroleum Processing and Petrochemicals , 2010 , 41 ( 4 ): 31 - 35 .
林世雄 . 石油炼制工程 [M ] . 3版 . 北京 : 石油工业出版社 , 2000 .
Lin S X . Petroleum refining engineering [M ] . 3rd ed . Beijing : Petroleum Industry Press , 2000 .
侯芙生 . 中国炼油技术 [M ] . 3版 . 北京 : 中国石化出版社 , 2011 .
Hou F S . China refining technology [M ] . 3rd ed . Beijing : China Petrochemical Press , 2011 .
沈本贤 . 石油炼制工艺学 [M ] . 北京 : 中国石化出版社 , 2009 .
Shen B X . Petroleum refining technology [M ] . Beijing : China Petrochemical Press , 2009 .
Harussani M M , Sapuan S M , Rashid U , et al . Pyrolysis of polypropylene plastic waste into carbonaceous char: Priority of plastic waste management amidst COVID-19 pandemic [J ] . Science of the Total Environment , 2022 , 803 : 149911 .
Bahlouli H A , Alghamdi R , Manos G . Plastic catalytic pyrolysis and coke characterization: exploring reactivation energy dynamics of spent USY-zeolite catalyst for polyolefin recycling [J ] . Industrial & Engineering Chemistry Research , 2026 , 65 ( 10 ): 5306 - 5321 .
Muhammad I , Manos G . Catalytic copyrolysis of heavy oil with polypropylene [J ] . ACS Sustainable Chemistry & Engineering , 2022 , 10 ( 48 ): 15824 - 15837 .
Kusenberg M , Roosen M , Zayoud A , et al . Assessing the feasibility of chemical recycling via steam cracking of untreated plastic waste pyrolysis oils: Feedstock impurities, product yields and coke formation [J ] . Waste Management , 2022 , 141 : 104 - 114 .
Palos R , Gutiérrez A , Vela F J , et al . Waste refinery: the valorization of waste plastics and end-of-life tires in refinery units. a review [J ] . Energy & Fuels , 2021 , 35 ( 5 ): 3529 - 3557 .
Bezergianni S , Dimitriadis A , Faussone G C , et al . Alternative diesel from waste plastics [J ] . Energies , 2017 , 10 ( 11 ): 1750 .
Qian Y , Qiu Y , Zhang Y H , et al . Effects of different aromatics blended with diesel on combustion and emission characteristics with a common rail diesel engine [J ] . Applied Thermal Engineering , 2017 , 125 : 1530 - 1538 .
Park J I , Lee J K , Miyawaki J , et al . Hydro-conversion of 1-methyl naphthalene into (alkyl)benzenes over alumina-coated USY zeolite-supported NiMoS catalysts [J ] . Fuel , 2011 , 90 ( 1 ): 182 - 189 .
Cho E H , Kim K D , Yoon B S , et al . Efficient synthesis of nickel-molybdenum/USY-zeolite catalyst for eliminating impurities (N, S, and Cl) in the waste plastic pyrolysis oil: dispersion effect of active sites by surfactant-assisted melt-infiltration [J ] . Catalysts , 2023 , 13 ( 12 ): 1476 .
Díaz E , Rapado-Gallego P , Prieto I , et al . 1-methylnaphthalene hydrogenation over supported precious metal catalysts: a kinetic study for deciphering the roles of the metal and support [J ] . Industrial & Engineering Chemistry Research , 2025 , 64 ( 19 ): 9640 - 9649 .
Girgis M J , Gates B C . Reactivities, reaction networks, and kinetics in high-pressure catalytic hydroprocessing [J ] . Industrial & Engineering Chemistry Research , 1991 , 30 ( 9 ): 2021 - 2058 .
Yu Q M , Khandelwal B . Impact of aromatic hydrocarbons on emissions in a custom-built high-pressure combustor [J ] . Energies , 2024 , 17 ( 16 ): 3939 .
Luo T , Zhou W G , Wang Y P , et al . Integrating microwave pyrolysis and hydrotreating for converting low-density polyethylene into jet fuel [J ] . Renewable Energy , 2024 , 236 : 121432 .
Plaola Y , Leangsiri W , Pongsiriyakul K , et al . Catalytic hydrotreating of crude pongamia pinnata oil to bio-hydrogenated diesel over sulfided NiMo catalyst [J ] . Energies , 2022 , 15 ( 4 ): 1547 .
Hao Q Q , Yang Z L , Wu B C , et al . Study on the deactivation of Ni-based catalyst in the hydrotreating process of waste plastic pyrolysis oil [J ] . Journal of Analytical and Applied Pyrolysis , 2022 , 168 : 105789 .
0
浏览量
4
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010102001995号