Choi, G., & Jeong, S.* (2025). Quantifying CO₂ emissions from an industrial complex using eddy covariance flux measurements. Journal of Climate Change Research, 16(3-2), 555-563. https://doi.org/10.15531/KSCCR.2025.16.3.555
Abstract:
Industrial complexes are significant sources of anthropogenic CO2 emissions, yet global emission inventories often struggle to capture the fine-scale spatiotemporal variability. This study quantifies CO2 fluxes in the Sihwa National Industrial Complex (SIC), a major manufacturing cluster in southwestern Seoul, South Korea, using one year of continuous eddy covariance (EC) observations (Feb 2024 Jan 2025). A fixed EC tower (14 m height) equipped with an open-path CO2/H2O analyzer and a 3D sonic anemometer provided high-frequency flux data, processed using IQR filtering, U* thresholding, and multi-scale gap-filling. Flux footprint modeling (FFP) was used to separate contributions from industrial and green areas. Our results show that industrial zones acted as persistent net CO2 sources (mean: 228.3 tC km-2 month-1; max: 376.8 tC km-2 month-1), exhibiting strong diel and weekly cycles linked to operational and energy-use patterns. In contrast, adjacent green spaces functioned as seasonal CO2 sinks (min: -136.7 tC km-2 month-1), particularly during the growing season. Compared to the ODIAC top-down inventory, EC-based emissions were lower by up to 60% across all months. This discrepancy reveals a fundamental limitation of inventory-based approaches: their reliance on static emission factors, coarse-resolution proxies (e.g., nightlight), and the absence of real-time, local activity data, which often leads to significant overestimation in complex environments like industrial zones. This study underscores the necessity of integrating ground-based flux observations into national and global emission accounting frameworks to improve the accuracy, transparency, and policy relevance of industrial CO2 inventories.
