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陆地生态系统氮状态对碳循环的限制作用研究进展   总被引:34,自引:1,他引:33  
陆地生态系统碳循环和氮循环密切相关, 碳贮量与碳通量在很大程度上受氮循环的影响 和限制。由于氮循环的复杂性, 在以往的大多数碳循环研究中, 更多考虑水分、温度和大气CO2 浓 度等因子的影响, 考虑碳氮相互作用的研究较少。氮素可限制植物光合、有机质分解、同化产物的 分配以及生态系统对大气CO2 浓度升高的响应。根据目前有关碳氮模型的发展状况可将碳氮耦 合循环模型分为三大类: 一是静态模型, 它的土壤养分水平或者叶氮含量不变, 是常数, 这类模型 适合于在站点或氮素浓度变化不大的区域应用; 二是土壤氮限制模型, 能够保持稳定的生态系统 氮收支, 在NPP(Net Primary Productivity, 净初级生产力)的模拟中考虑土壤氮有效性的动态变化 的影响, 使模拟结果更为合理; 三是叶氮限制模型, 在NPP 的模拟中考虑叶片氮浓度的动态变化 的影响。这三类模型虽然都考虑了氮对碳循环的限制作用, 但在氮碳循环机理方面尚有不少欠 缺, 所以在研究中可能会带来很大的不确定性。在以后的研究中, 应通过加强碳氮相互作用的实 验研究, 增进对碳氮过程的深入了解, 进而建立综合动态的碳氮耦合模型, 以减少目前碳循环研 究中的不确定性。  相似文献   
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From July 2008 to August 2008, 72 leaf samples from 22 species and 81 soil samples in the nine natural forest ecosystems were collected, from north to south along the North-South Transect of Eastern China (NSTEC). Based on these samples, we studied the geographical distribution patterns of vegetable water use efficiency (WUE) and nitrogen use efficiency (NUE), and analyzed their relationship with environmental factors. The vegetable WUE and NUE were calculated through the measurement of foliar δ 13C and C/N of predominant species, respectively. The results showed: (1) vegetable WUE, ranging from 2.13 to 28.67 mg C g-1 H2O, increased linearly from south to north in the representative forest ecosystems along the NSTEC, while vegetable NUE showed an opposite trend, increasing from north to south, ranging from 12.92 to 29.60 g C g-1 N. (2) Vegetable WUE and NUE were dominantly driven by climate and significantly affected by soil nutrient factors. Based on multiple stepwise regression analysis, mean annual temperature, soil phosphorus concentration, and soil nitrogen concentration were responding for 75.5% of the variations of WUE (p<0.001). While, mean annual precipitation and soil phosphorus concentration could explain 65.7% of the change in vegetable NUE (p<0.001). Moreover, vegetable WUE and NUE would also be seriously influenced by atmospheric nitrogen deposition in nitrogen saturated ecosystems. (3) There was a significant trade-off relationship between vegetable WUE and NUE in the typical forest ecosystems along the NSTEC (p<0.001), indicating a balanced strategy for vegetation in resource utilization in natural forest ecosystems along the NSTEC. This study suggests that global change would impact the resource use efficiency of forest ecosystems. However, vegetation could adapt to those changes by increasing the use efficiency of shortage resource while decreasing the relatively ample one. But extreme impacts, such as heavy nitrogen deposition, would break this trade-off mechanism and give a dramatic disturbance to the ecosystem biogeochemical cycle.  相似文献   
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