Current Status of Enhanced Oil Recovery Projects Using Carbon Dioxide (EOR CO2) in Croatia †
Abstract
:1. Introduction
2. Carbon Capture, Utilization, and Storage (CCUS)
2.1. Global Review of CCUS
- By 2030, the total annual CCUS capacity should be at least 80 million tons per year (Mtpa). A CO2 transport network should connect major industrial emitters to storage sites in the North Sea and in the Mediterranean Sea.
- By 2040, all major point sources of carbon emissions in the EU should have access to CO2 cross-border transport and storage infrastructure. Total annual storage capacity should reach at least 300 Mtpa with the addition of 100 Mtpa of atmospheric and biogenic CO2 removal and permanent storage.
- By 2050, the total annual storage capacity should be at least 500 Mtpa and 200 Mtpa of CO2 from atmosphere (direct air capture—DAC) and biomass combustion.
2.2. Thermodynamic Constraints of CCUS
3. CCUS in Croatia
3.1. The EOR Project in Northern Croatia
3.2. Future CCUS Projects in Croatia
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Crippa, M.; Guizzardi, D.; Pagani, F.; Banja, M.; Muntean, M.; Schaaf, E.; Becker, W.; Monforti-Ferrario, F.; Quadrelli, R.; Martin, A.R.; et al. GHG Emissions of All World Countries—2023; Publications Office of the European Union: Luxembourg, 2023; Available online: https://op.europa.eu/en/publication-detail/-/publication/0cde0e23-5057-11ee-9220-01aa75ed71a1/language-en (accessed on 1 July 2024).
- International Energy Agency (IEA). CO2 Emissions in 2022, IEA Publications, France. 2023. Available online: https://iea.blob.core.windows.net/assets/3c8fa115-35c4-4474-b237-1b00424c8844/CO2Emissionsin2022.pdf (accessed on 1 June 2024).
- International Energy Agency (IEA). CO2 Emissions in 2023, IEA Publications, France. 2023. Available online: https://iea.blob.core.windows.net/assets/33e2badc-b839-4c18-84ce-f6387b3c008f/CO2Emissionsin2023.pdf (accessed on 1 June 2024).
- Climate Action Tracker. Climate Action Tracker. 2030 Emissions Gap: CAT Projections and Resulting Emissions Gap in Meeting the 1.5 °C Paris Agreement Goal. December 2023. Available online: https://climateactiontracker.org/global/cat-emissions-gaps/ (accessed on 1 June 2024).
- European Energy Agency (EEA). Total Net Greenhouse Gas Emission Trends and Projections in Europe. 2023. Available online: https://www.eea.europa.eu/en/analysis/indicators/total-greenhouse-gas-emission-trends (accessed on 1 June 2024).
- European Commission. European Climate Law. 2021. Available online: https://climate.ec.europa.eu/eu-action/european-climate-law_en (accessed on 1 June 2024).
- Wang, L.; Tian, Y.; Yu, X.; Wang, C.; Yao, B.; Wang, S.; Winterfeld, P.H.; Wang, X.; Yang, Z.; Wang, Y.; et al. Advances in Improved/Enhanced Oil Recovery Technologies for Tight and Shale Reservoirs. Fuel 2017, 210, 425–445. [Google Scholar] [CrossRef]
- CCUS Vision Working Group. A Vision for Carbon Capture, Utilisation and Storage in the EU. 2023. Available online: https://cdn.catf.us/wp-content/uploads/2023/05/31163741/ccus-europe-vision-report.pdf (accessed on 1 June 2024).
- Global CCS Institute. The Global Status Report of CCS 2023, Melbourne, Australia. 2023. Available online: https://www.globalccsinstitute.com/wp-content/uploads/2024/01/Global-Status-of-CCS-Report-1.pdf (accessed on 1 June 2024).
- CCS Project Database (MIT). LaBarge Fact Sheet: Carbon Dioxide Capture and Storage Project. Available online: https://sequestration.mit.edu/tools/projects/la_barge.html (accessed on 7 August 2024).
- Petrobras. Petrobras Santos Basin Pre-Salt Oil Field CCUS, CSLF 2023 Technical Group Mid-Year Meeting, June 2023, Poland. Available online: https://www.energy.gov/sites/default/files/2023-07/6a.%20CCUS%20at%20Petrobras%20-%20CSLF%20meeting%202023%20_%20final%20version%20PDF.pdf (accessed on 7 August 2024).
- Formigli, J. Pre-Salt Reservoirs Offshore Brazil: Perspectives and Challenges, Bank of America Energy Conference, November 2007. Available online: https://mz-filemanager.s3.amazonaws.com/25fdf098-34f5-4608-b7fa-17d60b2de47d/apresentacoescentral-de-downloads/0c9c1c9aeb496a23b4c48c824346d8fc156bb0353ca671726e4fe684f012a897/presalt_reservoirs_offshore_brazil_perspectives_and_challenges.pdf (accessed on 7 August 2024).
- Abelha, M.; Petersohn, E. The State of the Art of the Brazilian Pre-Salt Exploration, AAPG Annual Convention & Exhibition, Salt Lake City, UT, USA, 20–23 May 2018. Available online: https://www.searchanddiscovery.com/documents/2018/30586abelha/ndx_abelha.pdf (accessed on 7 August 2024).
- CCS Project Database (MIT). Alberta Carbon Trunk Line Fact Sheet: Carbon Dioxide Capture and Storage Project. Available online: https://sequestration.mit.edu/tools/projects/alberta_trunk_line.html (accessed on 7 August 2024).
- Long-Innes, R.; Struchtrup, H. Thermodynamic Loss Analysis of a Liquid-Sorbent Direct Air Carbon Capture Plant. Cell Rep. Phys. Sci. 2022, 3, 100791. [Google Scholar] [CrossRef]
- Tramošljika, B.; Blecich, P.; Bonefačić, I.; Glažar, V. Advanced Ultra-Supercritical Coal-Fired Power Plant with Post-Combustion Carbon Capture: Analysis of Electricity Penalty and CO2 Emission Reduction. Sustainability 2021, 13, 801. [Google Scholar] [CrossRef]
- Socolow, R.; Desmond, M.; Aines, R.; Blackstock, J.; Bolland, O.; Kaarsberg, T.; Lewis, N.; Mazzotti, M.; Pfeffer, A.; Sawyer, K.; et al. Direct Air Capture of CO2 with Chemicals: A Technology Assessment for the APS Panel on Public Affairs, POPA Report, American Physical Society. 2011. Available online: https://www.aps.org/publications/reports/direct-air-capture-co2 (accessed on 1 June 2024).
- House, K.Z.; Baclig, A.C.; Ranjan, M.; van Nierop, E.A.; Wilcox, J.; Herzog, H.J. Economic and Energetic Analysis of Capturing CO2 from Ambient Air. Proc. Natl. Acad. Sci. USA 2011, 108, 20428–20433. [Google Scholar] [CrossRef] [PubMed]
- Štavalj, D.; Bator, H.; Perišić, E.; Cota, N. CO2 Recompression at Process Plant Etan. In Proceeding of the 39th International Scientific & Expert Meeting of Gas Professionals, Opatija, Croatia, 8–10 May 2024. [Google Scholar]
- Witkowski, A.; Majkut, M. The Impact of CO2 Compression Systems on the Compressor Power Required for a Pulverized Coal-Fired Power Plant in Post-Combustion Carbon Dioxide Sequestration. Arch. Mech. Eng. 2012, 59, 343–360. [Google Scholar] [CrossRef]
- Novosel, D.; Leonard, N.; Mikulić, S.; Mudrić, D. Initial Results of CO2 Injection for Enhanced Oil Recovery from the Ivanić and Žutica Oil Fields. Naft. I Plin. 2018, 38, 57–66. [Google Scholar]
- Novosel, D.; Babić, D.; Leonard, N.; Mikulić, S.; Jelić-Balta, J. Five Years of CO2 Injection for Enhanced Oil Recovery from the Ivanić and Žutica Fields—Experience and Results. Naft. I Plin. 2020, 40, 33–49. [Google Scholar]
- CO2ntessa—Accelerating the Transition to Climate Neutrality: Climate Neutral Cement Production in NEXE Plant in Našice, Croatia. Available online: https://www.nexe.hr/en/co2ntessa/ (accessed on 1 June 2024).
- KOdeCO Net Zero Project. Available online: https://www.holcim.com/what-we-do/green-operations/ccus/kodeco (accessed on 1 June 2024).
- Croatia Plans to Store CO2 in Depleted Oil Fields: Smart, or a Drop in the Ocean? Available online: https://innovationorigins.com/en/croatia-plans-to-store-co2-in-depleted-oil-fields-smart-or-a-drop-in-the-ocean/ (accessed on 1 June 2024).
- Lask, J.; Rukavina, S.; Zorić, I.; Kam, J.; Kiesel, A.; Lewandowski, I.; Wagner, M. Lignocellulosic Ethanol Production Combined with CCUS: A Study of GHG Reductions and Potential Environmental Trade-offs. GCB Bioenergy 2021, 13, 336–347. [Google Scholar] [CrossRef]
- Giant Grass Miscanthus: Bioethanol Source with Negative CO2 Balance. Available online: https://renewable-carbon.eu/news/giant-grass-miscanthus-bioethanol-source-with-negative-co2-balance/ (accessed on 1 June 2024).
- CCGeo: Closed Carbon Geothermal Energy, Project Summary, EU Innovation Fund. Available online: https://climate.ec.europa.eu/system/files/2022-07/if_pf_2021_ccgeo_en.pdf (accessed on 1 June 2024).
- Predovan, M.; Blecich, P. Thermodynamic Analysis of a 17.5 MW Geothermal Power Plant Operating with Binary Organic Rankine Cycle. In Proceedings of the XVIII International Scientific Congress Machines. Technologies. Materials, Borovets, Bulgaria, 10–13 March 2021. [Google Scholar]
- Mrazovas, S.; Basic, D. Methane-Rich Geothermal Waters in the Pannonian Basin of Vojvodina (Northern Serbia). Geothermics 2009, 38, 303–312. [Google Scholar] [CrossRef]
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Blecich, P.; Wolf, I.; Senčić, T.; Bonefačić, I. Current Status of Enhanced Oil Recovery Projects Using Carbon Dioxide (EOR CO2) in Croatia. Eng. Proc. 2024, 67, 19. https://doi.org/10.3390/engproc2024067019
Blecich P, Wolf I, Senčić T, Bonefačić I. Current Status of Enhanced Oil Recovery Projects Using Carbon Dioxide (EOR CO2) in Croatia. Engineering Proceedings. 2024; 67(1):19. https://doi.org/10.3390/engproc2024067019
Chicago/Turabian StyleBlecich, Paolo, Igor Wolf, Tomislav Senčić, and Igor Bonefačić. 2024. "Current Status of Enhanced Oil Recovery Projects Using Carbon Dioxide (EOR CO2) in Croatia" Engineering Proceedings 67, no. 1: 19. https://doi.org/10.3390/engproc2024067019
APA StyleBlecich, P., Wolf, I., Senčić, T., & Bonefačić, I. (2024). Current Status of Enhanced Oil Recovery Projects Using Carbon Dioxide (EOR CO2) in Croatia. Engineering Proceedings, 67(1), 19. https://doi.org/10.3390/engproc2024067019