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植物篱对黄河源区退化高寒草甸土壤侵蚀及养分流失的影响

Effects of hedgerows on soil erosion and nutrient loss in degraded alpine meadows in the Yellow River source area

  • 摘要: 明确植物篱对黄河源区退化高寒草甸土壤侵蚀及养分流失的影响,为高寒地区植被重建、面源污染防控及坡面水土流失治理提供科学依据。该研究以黄河源区河南蒙古族自治县为典型代表区,选用优势乡土植物冷地早熟禾(Poa crymophila Keng)构建植物篱,设置裸坡对照、仅植物篱根系和完整植物篱3种坡面处理,采用人工模拟降雨试验,探究2种降雨强度(30、60 mm/h)和3种坡度(10°、20°、30°)下完整植物篱及其地上、地下组分对土壤侵蚀及氮磷流失的影响。研究表明:1)完整植物篱的减流减沙效益分别为55.77%~71.29%、70.99%~88.69%,显著高于仅根系处理和裸坡(P<0.05)。地下部分是植物篱发挥减流减沙效应的核心组分,其平均贡献率高达57.80%和64.05%,显著高于地上组分(P<0.05)。2)与CK组相比,植物篱措施可显著抑制坡面养分流失(P<0.05),其地下根系削减氮磷流失的平均贡献率超60%,是养分保蓄的关键载体。泥沙中的氮磷流失较径流分别高出5.56~15.17和6.90~16.47倍,表明退化草甸区域的氮磷流失以颗粒态为主;3)坡度、降雨强度、坡面处理方式及其交互作用对土壤侵蚀和养分流失均产生极显著影响(P<0.01),其中坡面处理方式是最关键影响因素;4)土壤侵蚀参数与径流或泥沙中的养分流失指标呈极显著正相关(P<0.01),坡度、降雨强度以及坡面处理方式等环境变量直接或通过调控土壤侵蚀间接影响泥沙或径流中的氮磷流失(P<0.01)。研究明确了冷地早熟禾植物篱“上阻径流、下固土体”的协同作用对坡面侵蚀及养分流失具有显著抑制效应,可为黄河源退化高寒草甸生态修复及土壤侵蚀防控提供科学依据。

     

    Abstract: Alpine meadow degradation in the Yellow River source area aggravates slope hydraulic erosion and induces severe loss of topsoil nitrogen and phosphorus via runoff and sediment transport, leading to prominent non-point source pollution risks. Previous studies have failed to quantify the independent soil and water conservation effects of above- and below-ground components of native hedgerows in fragile alpine environments. The synergistic mechanisms whereby canopy and root systems stabilize soil, retain nutrients and mitigate erosion under interactive slope and rainfall conditions remain unclear, limiting targeted ecological restoration of alpine meadows. This study conducted field simulated rainfall experiments in Henan Mongolian Autonomous County of the Yellow River source area. Three slope treatments were established: bare slope control (CK), root-only hedgerow (R), and intact Poa crymophila keng hedgerow (P). Experiments were implemented with a 45 min rainfall duration, two rainfall intensities (30 and 60 mm/h), and three slope gradients (10°, 20°, and 30°). Real-time monitoring of runoff yield, sediment generation, and nitrogen and phosphorus loss was performed to clarify the regulatory effects of hedgerow structures on slope erosion and nutrient loss. The results indicated that: 1) Complete hedgerows demonstrated the best soil and water conservation capacity; compared to bare slopes, they reduced total runoff volume by 55.77%–71.29% and total sediment yield by 70.99%–88.69%, and significantly delayed the onset of initial runoff on the slope (P<0.05); 2) The underground root system is the core functional unit of the hedgerows in preventing soil erosion, with average contribution rates to runoff and sediment reduction of 57.80% and 64.05%, respectively; its erosion control effectiveness was significantly superior to that of the above-ground stems and leaves (P<0.05); 3) Each functional component of hedgerows can significantly reduce nitrogen and phosphorus loss from slopes (P<0.05). The root system’s contribution to retaining nitrogen and phosphorus loss both exceeded 60%, making it a key component in maintaining surface soil nutrients; Nutrient loss from degraded alpine meadows is primarily in the form of particle-adsorbed compounds; the total losses of nitrogen and phosphorus bound to sediment were 5.56–15.17 times and 6.90–16.47 times, respectively, the amount of dissolved nutrients lost via runoff; 4) Three-Way ANOVA revealed that slope, rainfall intensity, slope treatment, and their interactions had highly significant effects (P<0.01) on both soil erosion and nutrient loss, with slope treatment being the primary dominant factor; Structural equation modeling further indicated that environmental factors such as slope, rainfall intensity, and slope treatment can directly influence, or indirectly affect through the regulation of soil erosion processes, the characteristics of nitrogen and phosphorus loss in runoff and sediment (P<0.01). In summary, as a near-natural ecological engineering measure, the Poa crymophila Keng hedgerows, relying on a three-dimensional synergistic protection system of “canopy retention of runoff and root consolidation of soil,” can effectively alleviate soil degradation in the high-altitude cold meadows of the Yellow River headwaters, providing a practical technical solution for the control of slope soil erosion and the prevention and control of non-point source pollution in plateau watersheds.

     

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