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March 10, 2026Global Biogeochemical Cycles0 citationsOpen Access

Significant Influence of Lateral Carbon Fluxes on Regional U.S. Carbon Budgets

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BBB. ByrneJLJ. LiuGDG. M. Domke

Key Points

  • The research aims to evaluate the role of lateral carbon fluxes in regional carbon budgets across the contiguous United States.
  • Constructed a regional carbon budget for seven National Climate Assessment regions from 2015 to 2020.
  • Analyzed lateral carbon movement and endpoint CO2 emissions to assess their contribution to net surface-atmosphere fluxes.
  • Compared top-down flux estimates from OCO-2 data with inventory-based estimates of carbon stock changes.
  • Total net carbon exchange estimated at 925 ± 339 Tg C/year, aligning closely with the inventory estimate of 974 Tg C/year.
  • Lateral carbon flows account for approximately 16% of total carbon stock changes across CONUS.
  • Improvement of 31% in consistency between inventory and top-down estimates when considering lateral carbon transport.

Abstract

Abstract Observations of atmospheric carbon dioxide (CO 2 ) are expected to play a critical role in monitoring, reporting, and verification designed to track progress toward the reduction goals of greenhouse gas emissions. In this study, we construct a comprehensive regional carbon budget for seven National Climate Assessment regions of the contiguous United States (CONUS) over 2015–2020. We demonstrate that lateral carbon movement across regions, along with their resulting endpoint CO 2 emissions, represent a major contributor to the interpretation of regional net surface‐atmosphere fluxes of CO 2 . When accounting for lateral carbon fluxes, “top‐down” flux estimates from v10 Orbiting Carbon Observatory 2 (OCO‐2) Modeling Intercomparison Project (MIP) agree, within uncertainty, with inventory‐based carbon stock change estimates in six out of seven National Climate Assessment regions ‐ except for the Southwest. The total net carbon exchange from the top down is 925 ± 339 Tg carbon per year (Tg C/year), consistent with the 974 Tg C/year estimate from the inventory. Notably, lateral carbon flows in the form of harvested wood products and riverine carbon burial are responsible for an estimated 16% of the total carbon stock changes occurring across CONUS. Averaged over the seven regions, accounting for lateral transport and their endpoint carbon emissions improves the consistency between inventory and top‐down estimates by 31%. Our study presents a roadmap for reconciling the inventories and top‐down atmospheric inversions at sub‐national scale and highlights the importance of accurate representation of lateral carbon flows for using top‐down estimates with national inventories.

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Cite This Study

Byrne et al. (2026) studied this question.

synapsesocial.com/papers/69af94da70916d39fea4bd17https://doi.org/10.1029/2025gb009020
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