Steam Cracking in Dual Fluidized Beds - One Step Towards Complete Recyclability of Plastic Waste Using Thermochemical Conversion
Doktorsavhandling, 2024
The results show that the cracking severity achieved in a DFB steam cracker at temperatures between 700 and 825°C is suitable for the selective production of light olefins and monoaromatics.Within this operating window, pure polyolefin feedstocks yield up to 50% C2 C4 olefins and 20% BTXS. The yield of light olefins remains proportional to the polyolefin content of unsorted plastic wastes, regardless of the presence of other polymers. The nonpolyolefin materials in plastic waste, such as PET and cellulose, are selectively converted into aromatics and syngas. Although PET and cellulose contents also lead to significant coke formation, an uninterrupted steam cracking operation without intermittent decoking procedures is demonstrated. Silica sand, olivine, feldspar, and bauxite exhibit no significant catalytic activity in their natural state. In certain situations, olivine and bauxite develop catalytic activity. The accumulation of biomass ash in olivine enhances syngas production through the steam reforming of aromatic precursors. The accumulation of transition metal oxides within the bed material negatively impacts light olefin production. Using bauxite in a reduced oxidation state promotes hydrogenation reaction, thereby enhancing the production of light olefins.
The outcomes of this thesis demonstrate that a DFB steam cracker enables direct production of light olefins from plastic waste without the need for presorting procedures or catalysts. Most of the data presented in this work are obtained from experiments conducted at a scale relevant to the petrochemical industry, showcasing the scalability and technology readiness of the DFB steam cracking process.
Olefins
Plastic waste
Polyolefins
Steam cracking
Thermochemical recycling
Dual fluidized bed
Författare
Chahat Mandviwala
Chalmers, Rymd-, geo- och miljövetenskap, Energiteknik
Thermochemical conversion of polyethylene in a fluidized bed: Impact of transition metal-induced oxygen transport on product distribution
Journal of Analytical and Applied Pyrolysis,;Vol. 163(2022)
Artikel i vetenskaplig tidskrift
Unraveling the hydrocracking capabilities of fluidized bed systems operated with natural ores as bed materials
Journal of Analytical and Applied Pyrolysis,;Vol. 166(2022)
Artikel i vetenskaplig tidskrift
Fluidized bed steam cracking of rapeseed oil: exploring the direct production of the molecular building blocks for the plastics industry
Biomass Conversion and Biorefinery,;Vol. 13(2023)p. 14511-14522
Artikel i vetenskaplig tidskrift
Comparing bed materials for fluidized bed steam cracking of high-density polyethylene: Olivine, bauxite, silica-sand, and feldspar
Journal of Analytical and Applied Pyrolysis,;Vol. 173(2023)
Artikel i vetenskaplig tidskrift
Method development and evaluation of product gas mixture from a semi-industrial scale fluidized bed steam cracker with GC-VUV
Fuel Processing Technology,;Vol. 253(2024)
Artikel i vetenskaplig tidskrift
Effect of biomass ash on preventing aromatization of olefinic cracking products in dual fluidized bed systems
Fuel,;Vol. 338(2023)
Artikel i vetenskaplig tidskrift
Steam gasification as a viable solution for converting single-use medical items into chemical building blocks with high yields for the plastic industry
Resources, Conservation and Recycling,;Vol. 201(2024)
Artikel i vetenskaplig tidskrift
Steam cracking in a semi-industrial dual fluidized bed reactor: Tackling the challenges in thermochemical recycling of polyolefins
Utveckling av ångrackning av plast för en transformativ omställning av petrokemiska kluster
Borealis GmbH, 2020-01-01 -- 2024-12-31.
Energimyndigheten (49514-1), 2020-01-01 -- 2024-12-31.
Drivkrafter
Hållbar utveckling
Ämneskategorier
Energiteknik
Kemiska processer
Bioenergi
Styrkeområden
Energi
Infrastruktur
Chalmers kraftcentral
ISBN
978-91-8103-088-4
Doktorsavhandlingar vid Chalmers tekniska högskola. Ny serie: 5546
Utgivare
Chalmers
Lecture Hall HA4, Hörsalsvägen 4, Chalmers
Opponent: Dr. Osvalda Senneca, Research Director, Italian National Council of Research (CNR), Institute for Sustainable Energy and Mobility (STEMS), Napoli