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1.
多年冻土区活动层土壤水分对不同高寒生态系统的响应   总被引:2,自引:0,他引:2  
土地覆被变化对土壤水分的影响是生态水文学和流域水文学研究的关键问题,基于长江源典型多年冻土区不同高寒草地土壤水分的观测,结合降水、生物量(包括地上和地下)和土壤理化性质,研究了活动层土壤水分变化对不同高寒生态系统的响应. 结果表明:高寒草甸生物量、土壤养分含量均比高寒草原高,且对降水响应更为强烈,致使高寒草甸土壤水分变异性弱于高寒草原. 在土壤完全融化阶段,高寒草甸土壤活动层存在一个低含水层(50 cm左右)和两个相对高含水层(20 cm和120 cm),但高寒草原土壤水分在活动层剖面上有随深度逐渐增大的一致性趋势;在秋季冻结过程中,高寒草甸土冻结起始日滞后于高寒草原土3~15 d;在春季融化阶段,高寒草原土更高的含冰量需要更多的融化潜热. 此外,表层土壤中(0~20 cm),高寒草甸土比高寒草原土有更大的持水特性,而在活动层中下部则呈现完全相反的结果,不同高寒生态系统的演替改变了土壤的水热迁移过程.  相似文献   

2.
山地多年冻土的异质性影响其植被类型的分布特征,且对有机碳的分布也具有重要影响。通过采集黑河上游多年冻土区三种典型植被类型(高寒沼泽草甸、高寒草甸、高寒草原)8个活动层的土壤样品,测定其土壤有机碳密度及其理化性质。结果表明:高寒沼泽草甸土壤有机碳密度最高(49.50 kg·m-2),高寒草甸次之(11.22 kg·m-2),高寒草原最低(7.30 kg·m-2)。土壤有机碳密度的剖面垂直分布特征具有差异性,高寒沼泽草甸土壤有机碳密度随深度变化不明显,高寒草原和高寒草甸土壤有机碳密度随深度逐渐减小,存在显著的表层聚集性。有机碳密度与土壤含水率和细粒含量呈显著正相关,与pH值呈显著负相关关系。一般线性模型结果表明土壤含水率、pH值和土壤颗粒组成解释了96.39%的有机碳密度变异,其中土壤含水率贡献了81.53%,pH值和土壤粒度分别贡献了9.33%和4.75%。研究表明多年冻土区不同植被类型土壤有机碳密度分布特征具有明显差异,山地多年冻土土壤含水率是控制有机碳密度分布特征的重要影响因素。  相似文献   

3.
活动层含水量是表征多年冻土区气候、水文和生态过程的关键参数。长期以来,由于受多年冻土区活动层水分实测样点数量稀少的限制,各类基于遥感反演、模式模拟乃至数据融合和同化等手段生产的土壤水分空间数据均存在着较大的误差。2020年10—11月在青藏高原腹地(沱沱河源区)测定了 1 072组活动层土壤含水量数据并进行分析,探讨了该时段该区域活动层土壤水分的空间差异,并与全球陆面数据同化系统数据产品(GLDAS-Noah)和欧洲中期天气预报中心发布的第五代再分析资料(ERA5-Land)进行了对比分析。结果表明,在该区域平均厚度为2.72 m的活动层内,土壤质量含水量(总含水量)约为14.0%,活动层土壤含水量与植被发育情况存在正相关关系。除高寒沼泽草甸类型外,高寒草甸与高寒草原类型的活动层含水量随深度的增加呈现出先减小后增大的变化趋势。不同坡位类型的活动层含水量呈上坡位>下坡位>中坡位>平坡位,阳坡水分高于阴坡且两者活动层剖面水分变化相似。多年冻土区浅表层0~350 cm深度范围内的土壤含水量大于区内融区同深度的土壤含水量,两者土壤剖面水分分布均呈现出先增大后减小再增大的特征。该区域的GLDAS-Noah同化水分产品与实测数据对比的误差在10%以内,比ERA5-Land再分析土壤水分数据更为准确,但两种数据产品对土壤剖面上的水分垂直分布情况描述均与实测数据有较大差异。该研究结果可以为数据同化系统的模式冻融参数化方案优化及遥感水分产品研发提供科学依据。  相似文献   

4.
Temporal and spatial dynamics of soil moisture are little known on karst hillslope with shallow soil in subtropical region. The objectives of this paper were (1) to investigate the temporal dynamics of soil moisture at depth of 0–10 cm under different land uses; and (2) to understand the relationship between mean and coefficient of variation (CV) of moisture contents on karst hillslope in northwest Guangxi, China. Soil moisture contents had a moderate variation (CV 17.5–30.3%) over an 8-month period and they had a significant difference among different land uses at the 0.01 level with a decreasing order: native scrubland > abandoned cropland and sloping cropland > economic forestland. There were higher mean and lower CV of moisture contents in rainy season than those in drought season. Mean and CV of moisture contents had a significant negative linear relationship except in abandoned cropland with higher soil and vegetation heterogeneity. This suggested that spatial variability of soil moisture within sampling sites would decrease when soils were wet and increase when soils were arid. Compared with rainy season, more soil samples may be needed and the interval for sampling should be shortened in drought season. Such information provided some insights to better understand the dynamics and variability of soil moisture at a larger scale in karst region of southwest China.  相似文献   

5.
CH4 and CO2 fluxes from a high-cold swamp meadow and an alpine meadow on the Qinghai-Tibetan Plateau, subject to different degrees of degradation, were measured over a 12-month period. Air temperature, soil temperature and moisture, and the depths of the water table and thawing-freezing layer were determined. For swamp meadows, the greater the degradation, the lesser the carbon efflux. CH4 emissions at the nondegraded swamp meadow site were 1.09–3.5 and 2.5–11.27 times greater, and CO2 emissions 1.08–1.69 and 1.41–4.43 times greater, respectively, than those from moderately and severely degraded sites. For alpine meadows, the greater the degradation, the greater the CH4 consumption and CO2 emissions. CH4 consumption at the severely degraded alpine meadow site was 6.6–21 and 1.1–5.25 times greater, and CO2 emissions 1.05–78.5 and 1.04–6.28 times greater, respectively, than those from the nondegraded and moderately degraded sites. The CH4 and CO2 fluxes at both sites were significantly correlated (R 2 > 0.59, P < 0.05) with air temperature, soil temperature, and topsoil (0–5 cm depth) moisture, indicating these to be the main environmental factors affecting such fluxes.  相似文献   

6.
Analysis of the spatial variability of soil properties is important to explain the site-specific ecosystems. Spatial patterns of some soil properties such as soil texture, exchangeable sodium percentage (ESP), electrical conductivity (ECe), soil pH and cation exchange capacity (CEC) were analyzed in salt and sodic affected soils in the south of the Ardabil province, in the northwest of Iran, to identify their spatial distribution for performance of a site-specific management. Soil samples were collected from 0 to 30, 30 to 60, 60 to 90, 90 to 120 and 120 to 150 cm soil depths at sampling sites. Data were investigated both statistically and geostatistically on the basis of the semivariogram. The spatial distribution model and spatial dependence level varied in the study area. Among the considered parameters, maximum and minimum spatial variability were observed in EC and pH parameters, respectively. Soil properties showed moderate to strong spatial dependence, except for a few. ECe was strongly spatially dependent in the total soil depth and clay was strongly spatially dependent at the first depth. Sand and pH were moderately spatially dependent for three of the five depths. ESP was strongly spatially dependent and silt was moderate in the total soil depths, except at 90–120 cm depth. Furthermore, CEC had strong spatial dependence for three of the five depths. All geostatistical range values were >1,389 m in this study. It was concluded that the strong spatial dependency of soil properties would lead to extrinsic factors such as bedrock, agricultural pollution, drainage and ground water level.  相似文献   

7.
青藏高原土壤碳排放研究是评估国家区域碳排放量和预测气候变化所可能导致影响的关键. 首先对青藏高原土壤碳排放的关键性影响因子进行探讨, 并分析了土壤碳排放的时空分布格局变化. 目前青藏高原土壤碳排放研究主要是针对高寒草甸及高寒草地生态系统, 较少涉及高寒荒漠, 研究区域较为分散; 土壤碳排放受到气候环境因素、生物因素及人为因素等多重因素的影响, 其中温度、土壤湿度、土壤区系生物、人为因素及多年冻土退化是最关键的影响因素; 土壤碳排放具有明显的时空变异性, 空间变异性在生物群丛、景观、区域和生物群系四个尺度体现, 时间变异性在日、季、年上体现. 总体而言, 青藏高原土壤碳排放的研究较少, 尤其关于大尺度、长时间序列的研究以及土壤碳排放的机理等方面的研究十分缺乏, 有待于后续加强研究.  相似文献   

8.
多年冻土活动层, 尤其是浅层土壤的水热传输机制, 以及冻融过程的时空异质性是研究地-气间能水交换的关键。利用位于青藏高原中部的唐古拉和通天河两个活动层观测场2013年的土壤温度和水分数据, 比较了不同下垫面浅层土壤日冻融循环过程的差异, 以及不同冻融阶段的地温日变化及热扩散率特征。结果表明: 根据一日之内地温的正负波动, 浅层土壤的冻融过程可以划分为解冻期、 完全融化期、 始冻期和完全冻结期四个时期, 其中解冻期和始冻期统称为日冻融循环发生期。解冻期的持续天数和深度明显高于始冻期, 高寒草原的日冻融循环天数和发生深度明显高于高寒草甸。浅层土壤(0 ~ 20 cm)日地温变化普遍呈现明显的正弦波动趋势, 且不同冻融阶段的振幅差异较大, 由于相变的缘故, 解冻期的日地温变化振幅最小。高寒草甸的日地温振幅显著低于高寒草原, 说明日地温动态与土壤质地和土壤水分密切相关, 植被作为热绝缘层, 减弱了地温对气温波动的响应。地表下5 ~ 10 cm的热扩散率显著大于10 ~ 20 cm深度, 且5 - 10月融化季的热扩散率显著大于冻结季。热传导对流方程可以描述多年冻土区典型下垫面在季节冻融循环周期内不同月份的水分迁移方向。  相似文献   

9.
To understand and predict the role of soils in changes in alpine meadow ecosystems during climate warming, soil monoliths, extending from the surface to the deepest roots, were collected from Carex moorcroftii, Kobresia humilis, mixed grass, and Kobresia pygmaea alpine meadows in the hinterland of the Tibetan Plateau, China. The monoliths were used to measure the distribution with depth of biomass, soil grain size, soil nutrient levels, and soil moisture. With the exception of the K. pygmaea meadow, the percentages of gravel and coarse sand in the soils were high, ranging from 37.7 to 57.8% for gravel, and from 18.7 to 27.9% for coarse sand. The texture was finest in the upper 10 cm soil layer, and generally became coarser with increasing depth. Soil nutrients were concentrated in the top 15 cm soil layer, especially in the top 10 cm. Soil water content was low, ranging from 3 to 28.4%. Most of the subsurface biomass was in the top 10 cm, with concentrations of 79.8% in the K. humilis meadow, 77.6% in the mixed grass meadow, and 62.3% in the C. moorcroftii meadow. Owing to deeper root penetration, the concentration of subsurface biomass in the upper 10 cm of K. pygmaea soil was only 41.7%. The subsurface biomass content decreased exponentially with depth; this is attributed to the increase in grain size and decrease in soil nutrient levels with depth. Soil water is not a primary factor influencing the vertical and spatial distribution of subsurface biomass in the study area. The lack of fine material and of soil nutrients resulted in low surficial and subsurface biomass everywhere.  相似文献   

10.
The root biomass distribution in alpine ecosystems (alpine meadow, alpine steppe, desert grassland and alpine desert) was investigated along a transect on the northern Tibetan Plateau in 2009. The results showed that roots were mainly concentrated in the 0–20 cm layer, and root biomass decreased exponentially with increasing soil depth. Root biomass was estimated to be 1,381.41 ± 245.29 g m−2 in the top 20 cm soil, accounting for 85% of the total root biomass. The distribution pattern of the root biomass proportion along the soil profile was similar in different alpine ecosystems. The root biomass density varied with different alpine ecosystems and the total average root biomass was 1,626.08 ± 301.76 g m−2. Root biomass was significantly correlated with average relative humidity, annual precipitation and soil organic matter. This indicates that precipitation and soil organic matter might be crucial for plant growth in the study area, while temperature is not an important factor controlling root growth.  相似文献   

11.
青藏高原多年冻土区典型高寒草地生物量对气候变化的响应   总被引:15,自引:3,他引:12  
多年冻土区冻土生态系统对气候变化极其敏感,利用在长江黄河源区实测的高寒草甸和高寒草原植被生物量数据以及青藏高原降水、气温以及地温等的空间分布规律,建立了长江黄河源区高寒草甸与高寒草原等主要高寒生态系统地上与地下现存生物量对气候要素变化的多元回归模型.预测分析表明:如果未来10 a气温增加0.44℃·(10a)-1,在降水量不变的情况下,高寒草甸和高寒草原地上生物量分别递减2.7%和2.4%,如果同时降水量小幅度增加8 mm·(10a)-1,则地上生物量可基本保持现状水平略有减少;在气温增加2.2℃·(10a)-1,在降水量不变的情况下,高寒草甸和高寒草原地上生物量年分别平均减少达6.8%和4.6%,如果同期降水量增加12 mm·(10a)-1,高寒草甸地上生物量可基本维持现状水平略有增加,而高寒草原地上生物量则递增5.2%.高寒草原植被地上生物量对气候增暖的响应幅度显著小于高寒草甸,而对降水增加的响应程度大于高寒草甸.明确高寒草地植被生物量随气候变化的演变趋势,对于青藏高原生态环境保护和研究气候变化对青藏高原生态系统碳循环和河源区水循环的影响具有重要意义.  相似文献   

12.
多年冻土区植物根系的地下分布格局是其适应高寒、反复冻融作用等特殊环境条件的重要体现.针对目前青藏高原高寒植物根系研究不足的现状,对青藏铁路沿线高寒草甸植物群落根系的分布特征及多年冻土活动层地温变化等进行调查观测.研究高寒植物群落根系在活动层土壤中的垂直分布特征,重点探讨多年冻土活动层温度变化对于高寒植物根系分布和格局的影响,揭示植物根系对冻土环境变化的响应特征及其对逆境条件的适应策略.研究结果表明:活动层季节性冻融对于高寒植物和地下根系分布格局具有深刻的影响,多年冻土表层最先具备适宜根系生长的温度和水分条件,导致高寒草甸根系分布浅层化,生物量大量累积在土壤表层,并随深度增加而减少.高寒草甸地下平均总根量为3.38 kg·m-2,0~10 cm土层根量密度平均为21.41 kg·m-3,约占地下根系总量的63.4%.高寒草甸植物群落具极高的根茎比,活动层长期的低温环境增加了根系的干物质总量和高寒植物总的生物产量.活动层0℃以上积温是根系分布的主要影响因子.  相似文献   

13.
多年冻土区活动层的冻融过程显著影响地-气间的水热交换、地表水文过程、冰缘地貌演变及寒区工程建设。活动层厚度的空间分异规律及其空间分布的准确模拟计算是冻土学研究的基础和核心问题之一。作为青藏高原中部东西走向最大的山脉和青藏高原多年冻土的主要分布区,唐古拉地区是青藏高原南部湿润区与北部干旱区的过渡区,该地区的活动层厚度空间分异规律研究对于揭示青藏高原多年冻土区活动层厚度整体空间分布规律具有重要意义。利用唐古拉地区南、北坡两个区域野外实测活动层厚度分布数据,分析了该区域活动层厚度的空间分异特征及其主要影响因素。结果表明,活动层厚度分布的突出特点是空间分异巨大,最小值仅为1.2 m,最大值达到5.6 m。以不同植被类型区活动层的平均厚度为对比标准,其分布特征为:沼泽草甸<高寒草甸<高寒荒漠<高寒草原,高寒草原的平均活动层厚度最大。对比南、北坡,南坡活动层厚度普遍大于北坡。Stefan方程的计算结果表明,活动层厚度的变化速率随土壤含水率的变化最大,其次为土壤热导率,而随地表融化指数的变化最小。实测土壤含水率、探坑数据及地表融化指数与活动层厚度分布关系表明,影响活动层厚度空间分异的最为敏感的因素为土壤含水率,其次为土壤热导率,地表融化指数的敏感性最小。  相似文献   

14.
张涛  王根绪  杨燕  毛天旭 《冰川冻土》2018,40(6):1255-1264
研究多年冻土区不同草地类型及季节生态系统呼吸,对理解青藏高原碳源汇关系及其对气候变化响应具有重要意义。在青藏高原风火山选取高寒草甸和沼泽草甸对生长季和非生长季生态系统呼吸进行观测。结果表明:生态系统呼吸呈明显的日变化和季节变化,高寒草甸日变异系数(0.30~0.92)高于沼泽草甸(0.12~0.29),高寒草甸非生长季生态系统呼吸白天/晚上比高于生长季,而沼泽草甸季节变化较小;季节变化与5 cm地温变化一致。高寒草甸和沼泽草甸非生长季生态系统呼吸平均速率分别为0.31和0.36 μmol·m-2·s-1,生长季分别为1.99和2.85 μmol·m-2·s-1。沼泽草甸生态系统呼吸年排放总量为1 419.01 gCO2·m-2,显著高于高寒草甸(1 042.99 gCO2·m-2),其中非生长季高27%,生长季高39%。高寒草甸和沼泽草甸非生长季生态系统呼吸总量分别为268.13和340.40 gCO2·m-2,分别占全年的25.71%和23.99%。两种草地类型生态系统呼吸与气温、5 cm和20 cm地温均显著相关,可解释37%~73%的季节变异,除生长季沼泽草甸外,生态系统呼吸与5 cm地温相关性最高。非生长季5 cm地温对应Q10为4.34~5.02,高于生长季(2.35~2.75),且沼泽草甸高于高寒草甸。生长季生态系统呼吸与土壤水分无显著关系,而非生长季生态系统呼吸受土壤水分显著影响(R2:0.21~0.40),随土壤水分增加而增加。  相似文献   

15.
在气候变化背景下,青藏高原多年冻土区生态环境发生着一系列变化并进一步影响土壤氮循环过程,但目前冻融循环及植被生长周期中土壤氮的动态变化还不清楚。以青藏高原腹地的风火山和特大桥地区的两种典型草地生态系统为研究对象,分析了土壤可利用氮(NH4+-N、NO3--N、DON)及微生物量氮(MBN)的季节变化。结果表明:土壤铵态氮(NH4+-N)及可溶性有机氮(DON)含量在非生长季高于生长季,土壤硝态氮(NO3--N)在生长季高于非生长季;风火山地区高寒草甸生态系统中土壤NH4+-N在融化期含量较高;土壤MBN在植被生长旺盛期降低,在植被生长后期升高;风火山地区高寒草甸生态系统中土壤MBN含量、特大桥地区高寒草原生态系统中土壤可利用氮总量与土壤全氮(TN)含量显著正相关。这表明,土壤全氮含量、植被吸收以及冻融作用均可引起土壤可利用氮及MBN的季节变化。  相似文献   

16.
基于GIPL2模型的青藏高原活动层土壤热状况模拟研究   总被引:5,自引:5,他引:0  
青藏高原活动层土壤热状况,对深入了解高原活动层的厚度变化特征、下垫面的热力作用以及对气候变化预测均有重要意义。利用GIPL2模型模拟青藏高原多年冻土区不同植被状况下活动层土壤热状况。模拟结果表明:模型在高寒草原(QT06)试验点模拟效果较好,高寒沼泽草甸(QT03)试验点的模拟效果较差,高寒草甸(QT01)、高寒荒漠草原(QT05)和高寒草原化草甸(QT04)试验点的模拟效果介于高寒草原试验点和高寒沼泽草甸试验点之间。QT01、QT03、QT04、QT05和QT06的土壤温度模拟值与观测值相比,均方根误差分别为0.67、1.29、0.73、0.7和0.56℃;相关系数分别为0.99、0.87、0.98、0.98和0.96;平均误差分别为0.37、0.61、0.31、0.45和0.16℃。QT06模拟结果较好,原因在于此点土壤质地变化不大,模型的分层与所取的参数更加接近此点的实际状况。QT03模拟结果较差,可能由于此地区土壤中存在砾石,在导热率参数化方案中没有考虑砾石含量,导致模拟结果偏差较大。总体而言,GIPL2模型对青藏高原活动层土壤热状况的模拟具有一定的优势,是一种模拟多年冻土区活动层土壤热状况较为理想的模型。  相似文献   

17.
黄河源区冻土对植被的影响   总被引:8,自引:1,他引:7  
黄河源区由于近年来气候变化的影响,打破了高寒植被与冻土环境之间稳定的适应性关系,由此引发了一系列生态环境退化的现象.在黄河源区多年野外工作的基础上,定量分析了冻土与植被之间的关系.研究表明:多年冻土埋深通过影响浅层土壤含水量影响植被生长的,多年冻土的埋深与浅层土壤含水率和植被的覆盖率具有良好的相关性规律.冻土埋深<2 m时,冻土埋深决定浅层土壤含水率,成为影响植被的生长主要因素;埋深>2 m时,冻结层上水水位低、补给量少,冻结层上水水量小,毛细上升高度不能达到植被根系分布的浅层土壤中,植被生长环境干旱化,多数植被生长受限制,这时只有少量根系发达的耐旱植被存活,覆盖率小,一般不超过35%.因此,2 m的多年冻土埋深为“生态冻土埋深”.近20 a来,黄河源区地温长期处于增温状态,多年冻土出现表层融化,形成深埋的或少冰的冻土等现象;部分地带完全融化消失,连续多年冻土变成不连续冻土或岛状冻土.多年冻土退化后,土壤含水量减少,导致植被物种更替、“黑土滩”等退化现象.  相似文献   

18.
In this study, we tried to model the processes of moisture and heat transfers in the soil–vegetation–atmosphere system in an integrated comprehensive way. The purpose of the study is to simulate profiles of soil water content and temperature at root active zone (i.e., 0–50 cm), taking the root water uptake, soil evaporation, and canopy transpiration into account. The water and heat transfer equations are solved by an iterative Newton–Raphson technique and a finite difference method is used to solve the governing equations. Soil water content and soil temperature dynamics could be simulated rather accurately in a cropped field on Loess Plateau area. The water and heat transfer flux predicted by the classical theory of Philip and de Vries (Tans Am Geophys Union 38:222–232, 1957) slightly overestimated near the surface and underestimated at the deeper depths, as a result of the overestimated soil evaporation at the top soil layer (0–10 cm) and underestimated crop canopy transpiration at the deeper depths (10–50 cm). Water content tended to be underestimated for the entire profile at the soil surface (from 0 to 50 cm). Soil temperatures during the simulated period was slightly overestimated in the nighttimes and underestimated in the daytimes, as a result of the underestimated soil water content at the top soil layer (0–10 cm) and overestimated at the deeper depths (10–50 cm). Soil temperatures tended to be underestimated for the entire profile at the soil surface (from 0 to 50 cm). While the sum of the water and heat regimes yielded a much better match with the soil water content and soil temperature obtained from the field observations. The results obtained show that the model coupled water and heat transfer is able to capture the dynamics of soil water content.  相似文献   

19.
研究青藏高原多年冻土区高寒草甸土壤CO2通量有助于准确估算该区域的土壤CO2排放, 对认识高原土壤碳循环及其对全球气候变化的响应具有重要意义. 利用静态箱-气相色谱法和LI-8100土壤CO2通量自动测量系统对疏勒河上游多年冻土区高寒草甸土壤CO2通量进行了定期观测, 结合气象和土壤环境因子进行了分析. 结果表明: 整个观测期高寒草甸土壤表现为CO2的源, 土壤CO2通量的日变化范围为2.52~532.81 mg·m-2·h-1. 土壤CO2年排放总量为1 429.88 g·m-2, 年均通量为163.23 mg·m-2·h-1; 其中, CO2通量与空气温度和相对湿度、活动层表层2 cm、10 cm、20 cm、30 cm 土壤温度、含水量和盐分均显著相关. 2 cm土壤温度、空气温度和总辐射、空气温度、2 cm土壤盐分分别是影响活动层表层2 cm土壤完全融化期、冻结过程期、完全冻结期、融化过程期土壤CO2通量的最重要因子. 在完全融化期、冻结过程期和整个观测期, 拟合最佳的温度因子变化分别能够解释土壤CO2通量变化的72.0%、82.0%和38.0%, 对应的Q10值分别为1.93、6.62和2.09. 冻融期(含融化过程期和冻结过程期)和完全冻结期的土壤CO2排放量分别占年排放总量的15.35%和11.04%, 在年排放总量估算中不容忽视.  相似文献   

20.
The 137Cs tracer technique was used to study soil erosion of alpine meadow grassland in two small river basins in the headwater region of the Yellow River. The results show that the levels of 137Cs in soil samples from this alpine meadow vegetation zone exhibit an exponential distribution, generally within a depth of approximately 20 cm. Due to strong winds, freeze-thaw cycles and water, soil erosion was found to be stronger on the upper slope than on the lower slope, and except for the slope crest, the intensity of soil erosion at other sites was as follows: upslope < midslope < downslope. There was a significant negative correlation between the intensity of soil erosion and the extent of alpine meadow vegetation cover (P < 0.01). The mean soil erosion modulus exhibited a linear reduction trend with an increase in vegetation cover, and the correlation coefficient R 2 was ≥ 0.997. The higher the degradation degree of the alpine meadow grassland, the greater is the soil erosion. The mean erosion modulus in the severely degraded meadow zone was 2.23 times greater than the one in the slightly degraded zone, and the maximum erosion modulus reached 2.96 × 106 kg/km2/a.  相似文献   

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