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<div class="csl-entry">Zwickl-Bernhard, S., & Vicens, P. F. (2026). A novel co-design framework for CO2 transport networks and booster station optimization: A case study of the Iberian Peninsula. <i>International Journal of Greenhouse Gas Control</i>, <i>154</i>, Article 104680. https://doi.org/10.1016/j.ijggc.2026.104680</div>
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dc.identifier.issn
1750-5836
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/228850
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dc.description.abstract
This study presents a cost-effective modeling framework for designing CO₂ transport networks for carbon capture, utilization, and storage (CCUS) on the Iberian Peninsula. The framework integrates industrial reuse potential uncertainties and pressure dynamics — including frictional and elevation-induced losses — to co-optimize pipeline layouts and booster station capacities. Booster stations are installed only when pressure at critical points falls below the minimum dense-phase threshold, ensuring a balance between cost and operational feasibility. Key findings reveal that a fragmented CO₂ transport network is cost-effective, with smaller sub-networks formed to avoid unfavorable elevation profiles and minimize reliance on booster stations. The levelized cost of CO₂ transport plateaus at 15 €/(Formula presented) for capture rates above 30% and 1000Mt CO₂ transported, driven by reductions in pipeline capital expenditure and initial compression costs. For high capture rates (around 3000Mt CO₂ transported), the network length extends to 1900 km. While booster station costs (capital, operational, and electricity) are relatively minor compared to initial compression, they play a critical role in shaping the overall cost structure. A comparison between the integrated model and a traditional ex-post approach highlights significant differences in pipeline layouts, with booster capital and electricity costs emerging as the primary differentiators. The study underscores the importance of endogenously accounting for booster station costs in CCUS network design, demonstrating that strategic placement significantly influences network efficiency and economic viability.
en
dc.language.iso
en
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dc.publisher
ELSEVIER SCI LTD
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dc.relation.ispartof
International Journal of Greenhouse Gas Control
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dc.subject
Booster station costs
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dc.subject
CCUS optimization
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dc.subject
CO2 transport networks
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dc.subject
Iberian Peninsula
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dc.subject
Levelized cost analysis
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dc.title
A novel co-design framework for CO2 transport networks and booster station optimization: A case study of the Iberian Peninsula