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Polyethylene high-pressure pyrolysis: Better product distribution and process mechanism analysis
Cheng, Leilei1,2,3,4; Gu, Jing1,2,3; Wang, Yazhuo1,2,3; Zhang, Jun1,2,3; Yuan, Haoran1,2,3; Chen, Yong1,2,3
2020-04-01
发表期刊CHEMICAL ENGINEERING JOURNAL
ISSN1385-8947
卷号385页码:11
通讯作者Yuan, Haoran(yuanhr@ms.giec.ac.cn)
摘要Pyrolysis is currently an effective way to recycle plastics. High-pressure conditions can change the pyrolysis product component distribution, but the microscopic mechanism has not been well elucidated. To explore the relationship of product distribution versus pressure and explain the microscopic mechanism of polyethylene high-pressure pyrolysis, experiments under a large initial pressure range from 1 bar to 51 bar at initial temperatures of 330-380 degrees C were carried out in an autoclave. In the process of polyethylene high-pressure pyrolysis, the temperature within the reactor exceeded the set temperature by 100 degrees C at a rate of 150 degrees C/min. The thermal runaway phenomenon was caused by the polymerization of concentrated olefins in liquid form, which was initiated by hydrocarbon radicals. As the pressure increased, the reaction peak temperature was risen and more small molecules were produced. Under an initial temperature of 340 degrees C and high-pressure conditions, polyethylene was completely converted into liquid and gas products. The experimental results also revealed that high-pressure conditions led to the production of aromatic compounds and isoparaffins, as well as more cycloalkanes and fewer olefins in the liquid product, making the product characteristics closer to the fuel standard. Finally, this paper proposes the radical microscopic mechanisms of polyethylene thermal degradation under atmospheric-pressure and high-pressure conditions.
关键词Polyethylene High-pressure pyrolysis Microscopic mechanism Radical
DOI10.1016/j.cej.2019.123866
关键词[WOS]CATALYTIC FLASH PYROLYSIS ; THERMAL/CATALYTIC CRACKING ; PLASTIC WASTE ; HYDROCARBONS ; DEGRADATION ; MICROPLASTICS ; EVOLUTION ; RECOVERY ; OLEFINS ; REACTOR
收录类别SCI
语种英语
资助项目National Key Research and Development Program of China[2018YFC1901200] ; National Natural Science Foundation of China[51606202] ; Key Special Project for Introduced Talents Team of Southern Marine Science and Engineering Guangdong Laboratory (Guangzhou)[GML2019ZD0101] ; Science and Technology Planning Project of Guangzhou[201904010351] ; Innovation Academy of South China Sea Ecology and Environmental Engineering, Chinese Academy of Sciences[ISEE2018YB04]
WOS研究方向Engineering
项目资助者National Key Research and Development Program of China ; National Natural Science Foundation of China ; Key Special Project for Introduced Talents Team of Southern Marine Science and Engineering Guangdong Laboratory (Guangzhou) ; Science and Technology Planning Project of Guangzhou ; Innovation Academy of South China Sea Ecology and Environmental Engineering, Chinese Academy of Sciences
WOS类目Engineering, Environmental ; Engineering, Chemical
WOS记录号WOS:000507465200117
出版者ELSEVIER SCIENCE SA
引用统计
被引频次:61[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://ir.giec.ac.cn/handle/344007/26335
专题中国科学院广州能源研究所
通讯作者Yuan, Haoran
作者单位1.Chinese Acad Sci, Guangzhou Inst Energy Convers, Guangzhou 510640, Peoples R China
2.CAS Key Lab Renewable Energy, Guangzhou 510640, Peoples R China
3.Guangdong Prov Key Lab New & Renewable Energy Res, Guangzhou 510640, Peoples R China
4.Univ Chinese Acad Sci, Beijing 100049, Peoples R China
第一作者单位中国科学院广州能源研究所
推荐引用方式
GB/T 7714
Cheng, Leilei,Gu, Jing,Wang, Yazhuo,et al. Polyethylene high-pressure pyrolysis: Better product distribution and process mechanism analysis[J]. CHEMICAL ENGINEERING JOURNAL,2020,385:11.
APA Cheng, Leilei,Gu, Jing,Wang, Yazhuo,Zhang, Jun,Yuan, Haoran,&Chen, Yong.(2020).Polyethylene high-pressure pyrolysis: Better product distribution and process mechanism analysis.CHEMICAL ENGINEERING JOURNAL,385,11.
MLA Cheng, Leilei,et al."Polyethylene high-pressure pyrolysis: Better product distribution and process mechanism analysis".CHEMICAL ENGINEERING JOURNAL 385(2020):11.
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