Selective catalytic conversion of model olefin and diolefin compounds of waste plastic pyrolysis oil: Insights for light olefin production and coke minimization

被引:6
作者
Goshayeshi, Bahman [1 ,2 ]
Theofanidis, Stavros Alexandros [2 ,3 ]
Abbas-Abadi, Mehrdad Seifali [1 ]
Mahmoudi, Ehsan [2 ,4 ]
Akin, Oguzhan [1 ]
Varghese, Robin John [1 ]
Lemonidou, Angeliki [2 ,5 ]
Van Geem, Kevin M. [1 ]
机构
[1] Univ Ghent, Fac Engn & Architecture, Dept Mat Textiles & Chem Engn, Lab Chem Technol LCT, Technol Pk 125, B-9052 Zwijnaarde, Belgium
[2] Aristotle Univ Thessaloniki, Dept Chem Engn, Lab Petrochem Technol LPT, Univ Campus, Thessaloniki 54124, Greece
[3] AristEng Sarl, 77 Rue Merl, L-2146 Luxembourg, Luxembourg
[4] Katholieke Univ Leuven, Ctr Membrane Separat Adsorpt Catalysis & Spect Sus, B-3001 Leuven, Belgium
[5] Chem Proc & Energy Resources Inst, Ctr Res & Technol Hellas, CPERI, CERTH, Thessaloniki 57001, Greece
基金
欧洲研究理事会;
关键词
Pyrolysis oil; Polyolefins; HZSM-5; Model compounds; alpha-olefins; Diolefins; SKELETAL ISOMERIZATION; CRACKING; ZSM-5; HZSM-5; TEMPERATURE; PERFORMANCE; CYCLIZATION; KINETICS; ZEOLITE; ACIDITY;
D O I
10.1016/j.cej.2024.156987
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The primary challenges in ex-situ catalytic pyrolysis of plastic waste to produce light olefins lie in the selective conversion of larger olefins and diolefins downstream of the pyrolyzer. Hence, the catalytic cracking mechanism of plastic pyrolysis oil was explored using an alpha-olefin (1-decene) and a diolefin (1,9-decadiene) model compounds over an HZSM-5 zeolite-based catalyst in a fixed-bed reactor. Key objectives were to elucidate the reaction pathways for light olefin production, aromatization, and coke formation in catalytic cracking of larger olefins and diolefins. The investigation explored the impact of HZSM-5 steam treatment severity, contact time (similar to 58-226 ms), and reaction temperature (250-450 degrees C) on product yields. The severity of steam treatment was found to increase the 1-decene isomerization rate while decreasing the cracking rate and conversion of 1-decene to C3-4 light olefins. In the catalytic cracking of 1-decene, major product types included olefins (linear and nonlinear) and a few naphthenes, while in the case of 1,9-decadiene catalytic cracking, non-linear olefins were absent, with abundant naphthenes followed by lighter diolefins and C3-5 linear olefins. Temperature and contact time variations revealed that the catalytic cracking of 1-decene initiated with double bond rearrangement isomerization, progressing to skeletal isomerization, and intensified cracking reactions producing light C3-4 olefins. Conversely, in the catalytic cracking of 1,9-decadiene, cyclization was the primary reaction pathway, followed by beta-scission, resulting in lighter conjugated dienes and light linear olefins. Thermal gravimetric analysis (TGA) of spent catalysts confirmed a higher coke amount generated during 1,9-decadiene cracking compared to 1-decene cracking, indicating that diene compounds serve as precursors for significant coke formation in plastic pyrolysis oil. These insights provide valuable understanding for catalytic upgrading of pyrolysis oil from polyolefin pyrolysis.
引用
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页数:16
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