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生态学杂志 ›› 2026, Vol. 45 ›› Issue (7): 2212-2221.doi: 10.13292/j.1000-4890.202607.020

• 研究报告 • 上一篇    下一篇

雪被去除对川西亚高山森林土壤氮矿化过程的影响

杨帆1,2*,刘育伟1,2,谭波2,李晗2,杨开军2,3   

  1. 1凯里学院旅游学院, 贵州凯里 556011; 2四川农业大学林学院, 碳汇研究中心, 成都 611130; 3中国科学院华南植物园, 国家生态科学数据中心广东分中心, 广州 510650)
  • 出版日期:2026-07-10 发布日期:2026-07-10

The effects of snow cover removal on soil nitrogen mineralization in subalpine forests of western Sichuan.

YANG Fan1,2*, LIU Yuwei1,2, TAN Bo2, LI Han2, YANG Kaijun2,3   

  1. (1College of Tourism, Kaili University, Kaili 556011, Guizhou, China; 2College of Forestry, Sichuan Agricultural University, The Center of Carbon Sink Research, Chengdu 611130, China; 3National Ecological Science Data Center Guangdong Branch, South China Botanical Garden, Chinese Academy of Sciences, Guangzhou 510650, China).

  • Online:2026-07-10 Published:2026-07-10

摘要: 土壤氮矿化是森林生态系统中物质周转的关键过程。全球气候变暖驱动的高寒森林冬季雪被变化可通过改变地表微环境条件深刻作用于土壤氮矿化过程。本研究以川西亚高山岷江冷杉(Abies faxoniana)林为对象,设置了雪被自然输入(对照)和雪被去除原位控制实验,研究雪被去除对土壤微环境、土壤有机氮、无机氮含量及氮矿化速率的影响。结果表明,雪被去除导致土壤有机层冻融循环频数显著增加,土壤有机层和矿质土壤层含水量分别降低11.86%和16.24%,引起土壤有机层冬季土壤温度剧烈波动,并显著降低生长季土壤温度;雪被去除导致土壤有机层总氮(TN)、微生物生物量氮(MBN)和溶解性有机氮(DON)分别显著增加96.23%、82.72%和210.96%,导致矿质土壤层TN和MBN分别降低9.73%和64.97%;雪被去除导致土壤有机层净氮矿化速率增加248.27%,矿质土壤层净氮矿化速率增加4.94%。这些效应表明,雪被去除通过改变土壤温度,调控有机氮向无机氮的转化,从而影响有机层的氮矿化过程;而在矿质层,则主要通过提升有机氮含量以促进氮矿化作用。综上,雪被变化通过调控土壤温度和底物含量影响亚高山森林土壤氮矿化过程,研究结果为深入理解亚高山森林生态系统过程对全球气候变化的响应机制提供了参考。


关键词: 雪被, 冻融, 氮, 氮矿化, 亚高山

Abstract: Soil nitrogen mineralization is a key component of nutrient cycling in forest ecosystems. The variations of winter snow cover in alpine forests, driven by global climate warming, can significantly affect soil nitrogen mineralization by altering surface micro-environmental conditions. In this study, we conducted an in-situ experiment that compared natural snow input (control) and snow removal treatment in a subalpine Abies faxoniana forest in western Sichuan. We investigated the effects of snow removal on soil micro-environmental conditions, organic and inorganic nitrogen contents, and nitrogen mineralization rates. The results showed that snow removal significantly increased the frequency of freeze-thaw cycles in the soil organic layer and reduced the water content in the soil organic layer and mineral soil layer by 11.86% and 16.24%, respectively. It also induced marked temperature fluctuations in the organic layer during winter and notably decreased soil temperature during the growing season. Snow removal resulted in significant increases in total nitrogen (TN), microbial biomass nitrogen (MBN), and dissolved organic nitrogen (DON) in the soil organic layer by 96.23%, 82.72%, and 210.96%, respectively. In contrast, TN and MBN contents in the mineral soil layer decreased by 9.73% and 64.97%, respectively. Moreover, snow removal enhanced net nitrogen mineralization rates by 248.27% in the organic layer and by 4.94% in the mineral layer. These effects suggest that snow removal affects soil nitrogen mineralization process in the organic layer by altering soil temperature and regulating the transformation of organic nitrogen to inorganic nitrogen. However, in the mineral layer, soil nitrogen mineralization is primarily promoted by increased organic nitrogen input. In summary, snow cover changes influence nitrogen mineralization in subalpine forest soils by modulating both temperature regimes and substrate availability. These findings contribute to a better understanding of how subalpine forest ecosystem processes respond to global climate change.


Key words: snow cover, freeze-thaw, nitrogen, nitrogen mineralization, subalpine