Rethinking solvent regeneration pathways for maritime carbon capture
Переосмысление путей регенерации растворителей для морского улавливания углерода
2026-06-30
SCID: 54.1/vkkrje2b
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carbon dioxide absorption capacitymaritime carbon captureonboard regenerationonshore regenerationsolvent regeneration energy
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Abstract (AI)
Maritime transport is difficult to decarbonize, and onboard carbon capture has emerged as a promising option. However, adapting land-based capture systems may not suit the space, energy, and weight constraints of ships. Here we show that shifting solvent regeneration from ship to shore can improve the practicality and cost-effectiveness of maritime carbon capture. We compare onboard and onshore regeneration across 16 shipping routes using four capture solvents under different onboard load limits. The results show that adopting practical load limits (~20%), rather than fixed capture rates, provides a more reasonable basis for system design. Solvents with low regeneration energy are favored for onboard regeneration, whereas solvents with high carbon dioxide absorption capacity are preferred for onshore regeneration. With carbon tax included, onshore regeneration is generally more cost-effective in 2030 and 2050, and an extended analysis of 357 routes indicates it becomes economically viable by 2040 and broadly applicable by 2050.
Key Findings
1
An extended analysis of 357 routes indicates onshore regeneration becomes economically viable by 2040 and broadly applicable by 2050.
2
Comparison across 16 shipping routes and four solvents under varying onboard load limits shows practical load limits (~20%) are a more reasonable design basis than fixed capture rates.
3
Shifting solvent regeneration from ship to shore can improve practicality and cost-effectiveness of maritime carbon capture.
4
Solvents with low regeneration energy are preferred for onboard regeneration, while solvents with high CO2 absorption capacity are preferred for onshore regeneration.
5
With a carbon tax included, onshore regeneration is generally more cost-effective in 2030 and 2050.
Research Object
Solvent regeneration pathways for maritime carbon capture (onboard versus onshore solvent regeneration for shipboard CO2 capture systems)
Research Subject
Comparative practicality and cost-effectiveness of onboard versus onshore solvent regeneration across shipping routes, considering solvent properties (regeneration energy and CO2 capacity), onboard load limits, and future economic scenarios
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2026-06-30
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