Optimized Operation of Fluidized Catalytic Cracking Considering CO2 Fixation and Carbon Pricing

Author:

Mori Yusuke1,Okazaki Daisuke1,Mogi Gento1

Affiliation:

1. Department of Technology Management for Innovation, The University of Tokyo, Tokyo 113-8656, Japan

Abstract

Recently, Japan and the European Union have been experiencing declining petroleum demand owing to global initiatives aimed at reducing environmental impact by curtailing CO2 emissions. Consequently, alternative products and operational conditions should be developed to utilize the fluid catalytic cracking (FCC) unit. Using simulation software (Aspen Hysys), this study modeled a typical FCC unit and compared the simulation results with operational data to ensure reproducibility. Two new process models were developed to investigate two scenarios: (i) the slurry discharged from the FCC unit is utilized as a feedstock for the FCC process and (ii) the slurry and fraction obtained from the downstream absorber of the FCC unit are introduced into a delayed coker unit to facilitate carbon fixation. Within an optimum riser outlet temperature (ROT) of 520–530 °C, the yields of gasoline and liquefied petroleum gas increased up to 4%. For profit performance, although ROT of 535–545 °C yielded peak efficiency, the CO2 emissions increased by 70%. Thus, a ROT of 530–540 °C, coupled with a delayed coker unit, can maximize profitability. Furthermore, a correlation graph illustrated the relationship between CO2 emissions and profit for selecting optimal FCC operational conditions.

Funder

Mohammed bin Salman Center for Future Science and Technology for Saudi-Japan Vision 2030 at The University of Tokyo

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference28 articles.

1. (2023, April 07). Changes in Crude Oil Processing Capacity, Processing Volume, and Operating Ratio (as of 31 March 2023). Available online: https://www.eneos.co.jp/binran/document/data/pdf/27.pdf.

2. (2023, April 07). Agency for Natural Resources and Energy. Available online: https://www.meti.go.jp/committee/kenkyukai/sansei/kaseguchikara/pdf/010_s03_02_02_01.pdf.

3. (2023, April 11). Refinery Locations and Crude Oil Processing Capacity (as of 31 March 2022). Available online: https://www.paj.gr.jp/sites/default/files/2022-08/paj-8%E7%B2%BE%E8%A3%BD%E8%83%BD%E5%8A%9B%E4%B8%80%E8%A6%A7202204.pdf.

4. Akira, I. (2014). Petroleum Refining Process, Japan Petroleum Institute.

5. Kaes, G.L. (2011). A Practical Guide to Steady State Modeling of Petroleum Process, Kaes Consulting.

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