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Defining Infrastructure Feasibility for Hub-Scale Offshore Atlantic Carbon Storage in the Northeastern United States

Author

Listed:
  • Joel Sminchak

    (Battelle, Columbus, OH 43201, USA)

  • Stuart Skopec

    (Battelle, Columbus, OH 43201, USA)

  • Brigitte Petras

    (Battelle, Columbus, OH 43201, USA)

  • Neeraj Gupta

    (Battelle, Columbus, OH 43201, USA)

  • Javier Albert

    (Entr (Part of Aker Solutions), Houston, TX 77079, USA)

  • William John Schmelz

    (Department of Earth & Planetary Sciences, Rutgers University, Piscataway, NJ 08854, USA)

  • Ken Miller

    (Department of Earth & Planetary Sciences, Rutgers University, Piscataway, NJ 08854, USA)

  • Kristen Bachand

    (TRC Companies, Waltham, MA 02451, USA)

Abstract

In the Northeast U.S., deep rock formations along the Atlantic outer continental shelf may have the potential to sequester 150–1136 million metric tons of CO 2 . However, the design and infrastructure necessary to develop offshore carbon storage in this region is not well defined because there has been little oil and gas exploration and no commercial production. Consequently, an infrastructure feasibility design was completed for a hub-scale offshore CO 2 storage system along the Northeast U.S. Atlantic. The design included development of a detailed, site-specific geological model for a location near the Great Stone Dome geological structure in the Baltimore Canyon Trough off the coast of Delaware, Maryland, and New Jersey. A field injection system topology design was completed to portray a design with eight wells in two clusters connected by central manifolds. Reservoir simulations were completed for the injection system that showed the hub may be able to inject 17 million metric tons (MMT) of CO 2 per year for thirty years, but injection rates varied substantially across the eight wells. A CO 2 pipeline design determined feasible routes from the east coast shoreline to the injection field. Finally, the CO 2 injection system design included subsea injection trees, manifolds, and power umbilicals. This is the first study to define large-scale carbon storage design and infrastructure options for the offshore Atlantic, which can help to progress this region towards field characterization and early-mover deployment for future decarbonization in the region.

Suggested Citation

  • Joel Sminchak & Stuart Skopec & Brigitte Petras & Neeraj Gupta & Javier Albert & William John Schmelz & Ken Miller & Kristen Bachand, 2026. "Defining Infrastructure Feasibility for Hub-Scale Offshore Atlantic Carbon Storage in the Northeastern United States," Energies, MDPI, vol. 19(6), pages 1-27, March.
  • Handle: RePEc:gam:jeners:v:19:y:2026:i:6:p:1493-:d:1896488
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