Related Experiment Video
Updated: Aug 28, 2026

Producing, Characterizing and Quantifying Biochar in the Woods Using Portable Flame Cap Kilns
Published on: January 5, 2024
Dynamics of Carbon Storage Allocation and Its Drivers in Post-Fire Quercus acutissima Forests During Successional
Yuhua Ma1,2, Kang Liu3, Hao Yu3
1School of Modern Agriculure and Food Engineering, Chuzhou University, Chuzhou 239000, China.
Abstract:
Post-fire plantations play a crucial role in recovering carbon stocks, yet how carbon is partitioned among vegetation, litter, and soil pools during stand growth dynamics remains insufficiently resolved for Quercus acutissima plantations. Forest ecosystems play a crucial role in the global carbon cycle. This study quantified carbon-storage allocation and identified stand characteristics and soil factors associated with carbon recovery in fire-affected Q. acutissima plantations. Using a chronosequence design, we compared five stand-age classes (4, 10, 25, 45, and 50 years) on Huangfu Mountain, China, and measured carbon stocks in tree organs, understory vegetation, litter, and the 0-30 cm soil layer. Ecosystem carbon stock increased from 31.64 t ha-1 in 4-year-old stands to 230.66 t ha-1 in 50-year-old stands, representing a 629% increase. Soil was the dominant carbon pool, with 0-30 cm soil carbon rising from 25.32 to 126.56 t ha-1 (a 400% increase). The contribution of soil carbon to total ecosystem storage declined from approximately 80% in 4-year-old stands to 55% in 50-year-old stands, indicating a shift in allocation toward vegetation biomass over time. Carbon accumulation was primarily concentrated in the 0-10 cm layer. Tree basal area was significantly associated with ecosystem carbon stocks, identified as a key structural factor linked to carbon accumulation through potential direct and indirect pathways involving light availability and soil carbon. Soil organic matter and nitrogen were also positively correlated with carbon accumulation. These findings suggest that stand development and topsoil carbon formation are closely linked to post-fire carbon recovery processes. Future management measures should optimize stand density, maintain soil fertility, and protect surface carbon to enhance long-term carbon sequestration.
Related Concept Videos
Ecological Succession
The Carbon Cycle
Ecological Disturbance
Energy Budgets and Reproductive Strategies
Adaptations that Reduce Water Loss
Threats to Biodiversity
