长江流域资源与环境 >> 2021, Vol. 30 >> Issue (9): 2245-2252.doi: 10.11870/cjlyzyyhj202109018

• 生态环境 • 上一篇    下一篇

坡度和坡位对植烟坡地紫色土有机碳氮变化的影响

谢柠枍1,王棋1,李冰1*,王昌全1,朱华清1,
王君立1,谢云波2,陈玉蓝3*   

  1. (1. 四川农业大学资源学院,四川 成都 611130; 2. 中国烟草总公司四川省公司,四川 成都 610041;
    3. 四川省烟草公司凉山州公司,四川 西昌 615000)
  • 出版日期:2021-09-20 发布日期:2021-09-27

Effects of Gradients and Positions on Organic Carbon and #br# Nitrogen of Purple Soil on Tobacco Planting Slope

XIE Ning-yi1, WANG Qi1, LI Bing1, WANG Chang-quan 1, #br# ZHU Hua-qing1, WANG Jun-li1, XIE Yun-bo2, CHEN Yu-lan3   

  1. (1. College of Resources,Sichuan Agricultural University, Chengdu 611130, China; 2. China National Tobacco Corporation
    Sichuan Company, Chengdu 610041, China; 3. Sichuan Liangshan Prefectural Tobacco Company, Xichang 615000, China)
  • Online:2021-09-20 Published:2021-09-27

摘要: 为研究坡度、坡位等地形因素对土壤碳氮变化的影响,以川西南植烟紫色土为对象,探究了坡度、坡位及其交互作用下不同层次(0~20、20~40 cm)土壤有机碳、全氮含量及碳氮比的变化特征。结果表明:(1)土壤有机碳、全氮含量总体偏低,变异系数均为0~20 cm>20~40 cm,而碳氮比的变异系数则表现为20~40 cm>0~20 cm;(2)随坡度增加,土壤有机碳、全氮含量及碳氮比逐渐降低,其中有机碳和全氮在0°~5°与5°~20°间差异显著;相比于0°~5°,其他坡度土壤有机碳降幅为10.07%~28.69%,全氮降幅为3.72%~23.74%;(3)随坡位下降, 土壤有机碳和全氮含量增加,以全氮增幅较大,相对于上坡位,中、下坡位土壤有机碳增幅为6.48%~15.98%,全氮增幅为13.43%~30.34%。碳氮比随坡位下降而降低,但差异不显著;(4)坡度主要影响有机碳含量变化,坡位则对全氮及碳氮比变化影响明显,坡度坡位交互效应尤其显著。总体来看,随坡度增大,土壤有机碳显著下降,坡位越高,土壤全氮下降越显著,土壤碳氮比上升越显著,尤以20~40 cm土层中上、中坡位碳氮变化协调性差,碳氮比随坡位增高显著上升。

Abstract: In order to study the influence of slope gradient, slope position and other topographic factors on the change of soil carbon and nitrogen, the change characteristics of soil organic carbon, total nitrogen content and carbon nitrogen ratio of different layers (0-20 cm, 20-40 cm) under the slope gradient, slope position and their interaction were studied. The results showed that: (1) the content of soil organic carbon and total nitrogen were generally low, and their coefficients of variation were 0-20 cm > 20-40 cm, while the CV% of carbon nitrogen ratio was 20-40 cm > 0-20 cm; (2) with the increase of slope gradient, the content of soil organic carbon, total nitrogen and the ratio of carbon to nitrogen decreased gradually, among which the difference between 0° - 5° and 5° - 20° was significant; compared with 0° - 5°, the decrease of soil organic carbon and total nitrogen in other slopes was 10.07% - 28.69% and 3.72% - 23.74% respectively; (3) with the decline of slope position, the content of soil organic carbon and total nitrogen increased. Compared with the uphill slope position, the increase of soil organic carbon and total nitrogen were 6.48% - 15.98% and 13.43% - 30.34% in the middle and downhill slope position. The C/N ratio decreased with the decrease of slope, but the difference was not significant;(4) the slope mainly affects the change of organic carbon content, while slope position has obvious influence on the change of total nitrogen and carbon nitrogen ratio, especially the slope position interaction. In general, with the increase of slope gradient, organic carbon decreased significantly. The higher the slope position was, the more significant the decrease of soil total nitrogen was, and the more significant the increase of soil C/N ratio was, especially the coordination of carbon and nitrogen changes in the uphill and middle slope position of 20-40 cm soil layer was poor, and the C/N ratio increased significantly with the increase of slope position.

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