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Effects of yak and Tibetan sheep trampling on soil properties in the northeastern Qinghai-Tibetan Plateau

机译:牦牛和藏羊践踏东北青藏高原地区土壤性质的影响

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摘要

Grassland soil is affected by trampling, ingestion and excretion by herbivores, of which the effects of trampling are most pronounced and intense. However, the mechanism of livestock trampling on grassland soil remains uncertain. The objective was to ascertain the differential effects of trampling by yaks and Tibetan sheep on grassland at different grazing intensity. Therefore, we simulated yak and sheep trampling during two consecutive years of 2015 and 2016 at different intensities and investigated their effects on soil properties in a Tianzhu alpine meadow in Gansu Province, China. Our results revealed that soil bulk density under heavy trampling at 0-10 cm depth was significantly higher than that of untrampled treatment (CK), while saturated hydraulic conductivity, respiration rate, and number of microbial colonies (bacteria, fungi, and actinobacteria) significantly decreased. With increase in trampling intensity, the soil available nitrogen (AN) and available potassium (AK) increased at 0-20 cm depth, while total nitrogen (TN) and total phosphorus (TP) at 0-20 cm and available phosphorus (AP) at 0-10 cm decreased. Total potassium (TK) and organic matter did not differ significantly with trampling intensity. Yak trampling increased bulk density, AN, and AK, and decreased the soil respiration rate, saturated hydraulic conductivity, number of microbial colonies, TN, TP, and AP. Soil consolidation was alleviated after freeze-thaw cycling and the off-season grazing in the cold season. Our results demonstrated that heavy trampling by livestock compacted surface soil, reduced soil permeability, and weakened the living environment for microorganisms. Therefore, yak trampling had more severe effects on soil consolidation than that by Tibetan sheep in the alpine meadow of the Qinghai-Tibetan Plateau.
机译:草原土壤受草食动物的践踏,摄取和排泄的影响,其中践踏最明显和激烈的影响。然而,在草原土壤上践踏畜牧业的机制仍然不确定。目的是确定牦牛和西藏绵羊在不同放牧强度下践踏牦牛和西藏绵羊的差异影响。因此,我们在2015年和2016年连续两年内模拟牦牛和绵羊践踏,并在中国甘肃省天竺高山草甸调查了对土壤性质的影响。我们的研究结果表明,在0-10厘米深度下重型践踏下的土壤堆积密度明显高于未采样治疗(CK),而饱和液压导电性,呼吸速率和微生物菌落(细菌,真菌和抗菌剂的数量)显着显着减少。随着践踏强度的增加,土壤可用的氮气(AN)和可用的钾(AK)在0-20cm深度下增加,而在0-20cm和可用磷(AP)的总氮(TN)和总磷(TP)在0-10厘米下降。践踏强度,总钾(TK)和有机物质没有显着差异。牦牛践踏散装密度,AN,AK增加,并降低了土壤呼吸速率,饱和液压导电性,微生物菌落数,TN,TP和AP。在冷冻 - 解冻循环和寒冷季节放牧后,土壤整合被缓解。我们的结果表明,畜牧业表面土壤的重量践踏,降低土壤渗透性,减弱了微生物的生活环境。因此,牦牛践踏对土壤固结的影响比青藏高原高山草甸的土壤固结效果更严重。

著录项

  • 来源
    《Applied Soil Ecology》 |2019年第2019期|共8页
  • 作者单位

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

    Gansu Agr Univ Minist Educ Sino US Res Ctr Sustainable Grassland &

    Livestock Grassland Sci Coll Grassland Ecosyst Key Lab Lanzhou 730030 Gansu Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 土壤生态学;
  • 关键词

    Alpine meadow; Simulated trampling; Trampling intensity; Soil physical characteristics; Soil chemical characteristics;

    机译:高山草甸;模拟践踏;践踏强度;土壤物理特征;土壤化学特性;

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