北京大学学报(自然科学版) ›› 2026, Vol. 62 ›› Issue (4): 915-923.DOI: 10.13209/j.0479-8023.2026.048

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伊洛瓦底江云南段甲烷排放的时空分布特征及其影响因素

代晓倩1, 梁妮1,†, 杨坪宏2, 张力伟3, 周永强4   

  1. 1. 昆明理工大学环境科学与工程学院, 昆明 650500 2. 云南省水文水资源局, 昆明 650106 3. 华东师范大学河口海岸全国重点实验室, 上海 200241 4. 中国科学院南京地理与湖泊研究所, 湖泊与环境国家重点实验室, 南京 211135
  • 收稿日期:2025-05-24 修回日期:2025-12-31 出版日期:2026-07-20 发布日期:2026-07-20
  • 基金资助:
    国家自然科学基金地区科学基金(KKGD202122055, 42167055)资助

Spatio-Temporal Characteristics and Influencing Factors of Methane Emissions from the Irrawaddy River in Yunnan

DAI Xiaoqian1, LIANG Ni1,†, YANG Pinghong2, ZHANG Liwei3, ZHOU Yongqiang4   

  1. 1. Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500 2. Yunnan Provincial Bureau of Hydrology and Water Resources, Kunming 650106 3. National Key Laboratory of Estuarine and Coastal Sciences, East China Normal University, Shanghai 200241 4. State Key Laboratory of Lake and Environment, Nanjing Institute of Geography and Limnology, Chinese Academy of Sciences, Nanjing 211135
  • Received:2025-05-24 Revised:2025-12-31 Online:2026-07-20 Published:2026-07-20

摘要:

针对中国西南地区跨境河流甲烷(CH4)观测资料较为缺乏的问题, 聚焦伊洛瓦底江云南段, 于2022年10月至2023年12月开展为期一年的跨季节采样, 通过顶空平衡法测定河流表层CH4浓度, 结合浮箱法测定水−气界面CH4扩散通量, 系统地分析其时空分布特征及其影响因素。结果显示, 河流CH4浓度范围为5.6~476.5 nmol/L, 平均浓度为64.0±98.4 nmol/L, 相对于大气为过饱和状态(162%~17024%, 均值为2213%±3498%)。CH4扩散通量范围为0.004~1.22 mmol/(m2∙d), 平均通量为0.26±0.22 mmol/(m2∙d)。CH4浓度春夏季较高, 秋冬季较低; 扩散通量则表现为春季高、夏季低的特征。环境因子分析结果表明, 作为碳源, 溶解性有机碳(DOC)的浓度较低, 限制CH4的产生; 同时, 水体中悬浮泥沙抑制CH4的扩散和释放。与其他亚热带河流的CH4观测结果相比, 伊洛瓦底江云南段河流的CH4浓度和扩散通量整体上偏低, 表现为大气CH4的弱源。

关键词: 伊洛瓦底江, 甲烷排放, 水–气界面扩散通量, 云南

Abstract:

Although numerous studies have investigated CH4 emissions from river systems globally, observational data remain scarce for transboundary rivers in southwestern China. Focusing on the Yunnan section of the Irrawaddy River, this study carried out cross-seasonal sampling from October 2022 to December 2023. Dissolved CH4 concentrations in the river surface water were measured using the headspace equilibrium technique, while diffusive CH4 fluxes across the water–air interface were quantified using the floating chamber method. The spatiotemporal distribution patterns of CH4 and their controlling factors were systematically analyzed. The results showed that riverine CH4 concentrations ranged from 5.6 to 476.5 nmol/L, with a mean concentration of 64.0±98.4 nmol/L. The river was consistently supersaturated with CH4 relative to the atmosphere (mean: 2213%±3498%; range: 162%–17024%). Diffusive CH4 fluxes ranged from 0.004 to 1.22 mmol/(m2∙d), with a mean flux of 0.26±0.22 mmol/(m2∙d). CH4 concentrations were higher in spring and summer, yet lower in autumn and winter. Diffusive fluxes exhibited a distinct seasonal pattern, being highest in spring and lowest in summer. Analysis of environmental drivers revealed that dissolved organic carbon (DOC), acting as a carbon substrate, was present at low concentrations, potentially limiting CH4 production. Concurrently, suspended sediments in the water column appeared to inhibit the diffusive release of CH4. Comparative analysis with CH4 observations from other subtropical rivers indicated that both the concentration and diffusive flux of CH4 in the Yunnan section of the Irrawaddy River were relatively low overall. Consequently, this river section functions as a weak source of atmospheric CH4

Key words: Irrawaddy River, CH4 emission, water-air interface diffusive flux, Yunnan