中国农业气象 ›› 2026, Vol. 47 ›› Issue (8): 1197-1214.doi: 10.3969/j.issn.1000-6362.2026.08.003

• 农业生态环境栏目 • 上一篇    下一篇

宁夏黄土区典型林分土壤储水量变化及驱动因子

金学萍,董立国,郑纪勇,李振明,何钰,王佩瑶,李欣,许浩,蔡进军,魏耀锋   

  1. 1. 宁夏农林科学院林业与草地生态研究所/宁夏防沙治沙与水土保持重点实验室/宁夏生态修复与多功能林业综合研究中心,银川 750002;2. 西北农林科技大学资源环境学院,杨凌 712100;3. 西北农林科技大学水土保持研究所,杨凌 712100;4. 西北农林科技大学林学院,杨凌 712100;5. 宁夏农林科学院固原分院,固原 756000;6. 宁夏农林科学院农作物研究所,银川 750002;7. 宁夏回族自治区林业调查规划院,银川 750002
  • 收稿日期:2025-05-27 出版日期:2026-08-20 发布日期:2026-08-18
  • 作者简介:金学萍,E-mail:JXP2023@nwafu.edu.cn
  • 基金资助:
    宁夏重点研发计划项目(2023BEG02050;2023BEG02042);宁夏重点研发项目(2025BEG01008−3);宁夏农业高质量发展和生态保护科技创新示范课题项目(NGSB−2021−14−01;NGSB−2021−11−06);宁夏青年拔尖人才培养工程项目(RQ0025)

Soil Water Storage Change and Driving Factors of Typical Stands in Loess Area of Ningxia

JIN Xue-ping, DONG Li-guo, ZHENG Ji-yong, LI Zhen-ming, HE Yu, WANG Pei-yao, LI Xin, XU Hao, CAI Jin-jun, WEI Yao-feng   

  1. 1. Institute of Forestry and Grassland Ecology, Ningxia Academy of Agriculture and Forestry Sciences/Ningxia Key Laboratory of Desertification Control and Soil and Water Conservation/Research Center for Ecological Restoration and Multi-functional Forestry of Ningxia, Yinchuan 750002, China; 2. College of Natural Resources and Environment, Northwest A & F University, Yangling 712100; 3. Institute of Soil and Water Conservation, Northwest A & F University, Yangling 712100; 4. College of Forestry, Northwest A & F University, Yangling 712100; 5. Guyuan Branch, Ningxia Academy of Agriculture and Forestry Sciences, Guyuan 756000; 6. Institute of Crop Research, Ningxia Academy of Agricultural and Forestry Sciences, Yinchuan 750002; 7. Ningxia Forestry Investigation and Planning Institute, Yinchuan 750002
  • Received:2025-05-27 Online:2026-08-20 Published:2026-08-18

摘要:

基于宁夏黄土丘陵区典型林分土壤体积含水量、地形因子、土壤理化性质等调查数据,将0-300cm土壤划分为表层(0-20cm)、浅层(2080cm)、中层(80180cm)和深层(180300cm),利用相关分析、主成分分析以及随机森林模型,以天然草地为对照分析2024年固原市彭阳县阳洼(中庄)流域10种典型林分(刺槐纯林、云杉纯林、山杏纯林、山桃纯林、沙棘纯林、柠条纯林、刺槐云杉混交林、山杏沙棘混交林、山杏柠条混交林以及山桃柠条混交林)落叶期0300cm土壤储水量差异及其变化机制,量化各环境因子(坡度、坡向、坡位、海拔、黏粒、粉粒、砂粒、土壤有机碳、土壤容重、株高、胸径和生物量)对土壤储水量的相对重要性,并识别核心驱动因子,以期为区域土壤水资源可持续利用提供参考。结果表明:(12024年固原市彭阳县阳洼(中庄)流域云杉纯林(17.47%)和山桃纯林(17.40%0300cm土层中平均土壤体积含水量显著高于天然草地(15.95%);山桃纯林表层(0−20cm)、浅层(20−80cm)和中层(80−180cm)土壤储水量最高,分别为31.59mm122.27mm177.65mm;深层(180−300cm)天然草地的土壤储水最高,为227.21mm;云杉纯林0−300cm整体土壤储水量最高,达524.22mm;(2土壤容重是土壤储水量的核心驱动因子,其与中层、深层及土壤总储水量呈极显著正相关关系,相关系数分别为0.567P<0.01)、0.471P0.01)和0.527P0.01),在中层、深层以及总土层随机森林模型中重要性分别为26.238%9.426%23.715%;坡度是影响表层土壤储水量的关键因子,其重要性为6.959%;海拔和植被因子是调控浅层储水的关键因子,其中海拔与浅层土壤储水量呈显著正相关关系,相关系数为0.345(P<0.05),植被因子的胸径、株高以及生物量重要性分别为13.350%9.190%9.102%。(3)第一主成分PC125.0%)表征土壤质地与土壤有机碳的协同效应;第二主成分PC221.1%)凸显植被因子影响。综上,当前彭阳县造林模式下云杉纯林和山桃纯林的土壤储水能力较强,不同深度土层的土壤储水量受不同环境因子的影响,为提升区域土壤水源涵养功能(特别是深层储水),应优先维持或改善土壤容重。

关键词: 土壤储水量, 林分类型, 驱动机制, 宁夏南部, 黄土高原

Abstract:

Based on field survey data of soil volumetric water content, topographic factors and soil physical and chemical properties from typical stands in the Loess hilly region of Ningxia, the 0-300cm soil profile was stratified into surface (0–20cm), shallow (20–80cm), middle (80–180cm) and deep (180–300cm) layers. Using correlation analysis, principal component analysis (PCA) and Random forest model, with natural grassland as the control, the differences and underlying mechanisms of soil water storage across 10 typical stands during the leaf-fall period of 2024 in the Yangwa (Zhongzhuang) watershed, Pengyang county, Guyuan city were analyzed. The stands included pure plantations of Robinia pseudoacacia L., Picea asperata Mast., Prunus sibirica L., Prunus davidiana (Carrière) Franch., Hippophae rhamnoides L. subsp. sinensis Rousi, and Caragana korshinskii Kom., as well as mixed stands of Robinia pseudoacacia×Picea asperata, Prunus sibirica×Hippophae rhamnoides subsp. sinensis, Prunus sibirica×Caragana korshinskii and Prunus davidiana×Caragana korshinskii. The relative importance of environmental factors, including slope, aspect, slope position, elevation, clay content, silt content, sand content, soil organic carbon, soil bulk density, tree height, diameter at breast height and biomass, was quantified on soil water storage and identified the core driving factors, so as to provide a reference for the sustainable utilization of regional soil water resources. The results showed that: (1) in 2024, the average soil volumetric water content in the 0–300cm soil layer was significantly higher in P. asperata pure forest (17.47%) and P. davidiana pure forest (17.40%) than in natural grassland (15.95%). P. davidiana pure forest had the highest soil water storage in the surface (31.59mm), shallow (122.27mm), and middle layers (177.65mm), while natural grassland showed the highest deep-layer soil water storage (227.21mm). Soil water storage across 0–300cm was highest in P. asperata pure forest, reaching 524.22mm. (2) Soil bulk density was the core driving factor of soil water storage. It was significantly positively correlated with water storage in the middle, deep and whole soil layer (r =0.567, 0.471 and 0.527, respectively; all P<0.01). In the Random forest model, the importance values were 26.238%, 9.426% and 23.715% for the middle, deep and total soil layers, respectively. The slope was the key factor affecting surface soil water storage, with an importance of 6.959%. Elevation and vegetation factors were key regulators of shallow soil water storage: elevation was significantly positively correlated with shallow soil water storage (r=0.345, P<0.05), and the importance values of diameter at breast height, tree height and biomass were 13.350%, 9.190% and 9.102%, respectively. (3) The first principal component, PC1 (25.0%), represented the synergistic effects of soil texture and soil organic carbon, while the second principal component, PC2 (21.1%), highlighted the influence of vegetation factors. In conclusion, under the current afforestation pattern in Pengyang county, P. asperata and P. davidiana pure forests exhibited stronger soil water storage capacity. Soil water storage across different depths is affected by distinct environmental factors. To enhance regional soil water conservation, particularly deep-layer water storage, priority should be given to maintaining or improving soil bulk density.

Key words: Soil water storage, Stand type, Driving mechanism, Southern Ningxia, Loess plateau