环境科学
生态系统
土壤碳
碳通量
碳纤维
生态学
陆地生态系统
碳循环
土地利用
土壤有机质
土壤水分
环境保护
环境化学
溶解有机碳
土壤生物学
生物量(生态学)
土壤生态学
温室气体
总有机碳
作者
Wenjun Wang,Yuwan Li,Gangsheng Wang,Zhongjun Jia,Neil McLaughlin,Mohamed Abbas,Xuewen Chen,Yan Zhang,Aizhen Liang
标识
DOI:10.1021/acs.est.5c16652
摘要
Microbial death pathways (MDPs) are increasingly recognized as key drivers of terrestrial carbon cycling, primarily through their regulation of microbial necromass carbon (MNC), a critical pool in global carbon dynamics. Yet explicit representation of MDPs in soil organic carbon (SOC) models remains limited. Here, we developed and evaluated three SOC models that differ in their structure of MNC pool: the multiple-pathway necromass (MPN) model, which partitions microbial necromass carbon (MNC) into four MDP-derived subpools; the dual necromass (DUN) model, which differentiates two necromass pools with distinct decay rates; and the single necromass (SIN) model, which aggregates necromass into a single pool. Using a unified data assimilation framework and SOC observations from six major agricultural regions in China, we found that the MPN model consistently outperformed DUN and SIN models across most regions, producing necromass subpool dynamics, scenario responses, and parameter sensitivities that closely reflect the mechanistic understanding of MDPs. In cold or nutrient-limited regions, however, the simpler DUN model performed similarly while requiring fewer parameters, emphasizing the importance of balancing model complexity with regional ecological constraints. Our results demonstrate that explicitly incorporating MDPs enhances the robustness and mechanistic realism of SOC simulations and provides a robust foundation for more explicit representations of MDPs to assess the soil carbon sequestration potential and guide sustainable land management.
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