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1.
Field observations were conducted near the forest boundary in Qilian Mountain to test the differences in temporal variability of soil moisture between grassland, shrubland and forest habitats, and to examine the contributions of canopy rainfall interception and plant uptake to any observed differences. It was found that considerable differences of the temporal heterogeneity of soil moisture do exist between the three habitats. The coefficient of variance (CV) in soil moisture content at 5 cm depth was significantly higher in grassland and shrubland than in forest, while that at 20 cm was significantly higher in shrubland and forest than in grassland. High canopy rainfall interception of shrubs and intense soil moisture evaporation in grassland should be responsible for the higher temporal variability of soil moisture content at 5 cm depth in the two habitats, respectively, while the differences at 20 cm depths are most likely only due to the differences in canopy rainfall interception. Water uptakes provide little contribution to the differences in CVs of soil moisture at both 5 cm and 20 cm depths. It was also found that the CV at depth of 20 cm is significantly higher than that at depth of 5 cm, suggesting that the most active depth of soil moisture does not necessarily happen on the surface.  相似文献   

2.
Shrubs have invaded extensive areas of grassland in the southwestern United States. The zones of nutrient-rich soil found beneath plant canopies, referred to as “islands of fertility,” are more intense and spaced farther apart in shrubland than in grassland. This difference in the spatial pattern of soil nutrients may reinforce shrub invasion. Changes in water availability in the soil could also influence shrub invasion. Here we compare the spatial patterns of infiltration, defined as the total equivalent water depth entering the soil following individual rainfall events or summed over many events, at adjacent grass- and shrub-dominated sites in the Sevilleta National Wildlife Refuge. We use two infiltration data sets. First, following four rainfall events, we measured soil moisture and wetting front depth at 10-cm intervals along 24-m transects. We estimate infiltration from these data. Second, we use vertical arrays of soil moisture probes to compare infiltration between adjacent canopies and interspaces following 31 storms. In both the grassland and shrubland, infiltration is typically greater beneath plant canopies than beneath interspaces. Canopies are oases where soil moisture is higher than in the surrounding areas. However, infiltration is not greater beneath canopies when surface runoff is limited. In the shrubland, the canopy–interspace infiltration ratio increases as storm size, and therefore runoff, increases. This relationship also exists in the grassland, but it is not as strong or clear. The magnitude of spatial variability of infiltration is similar in shrubland and grassland. In addition, the distance over which infiltration is correlated is approximately 50 cm in both environments. Most of the spatial variability exists between the stem and canopy margin in the shrubland and straddling the canopy margin in the grassland. The most notable difference is that subcanopy oases are spread farther apart in the shrubland because canopies are separated by larger interspaces in this environment. Received 30 October 2001; accepted 1 August 2002.  相似文献   

3.
岷江上游两种生态系统降雨分配的比较   总被引:9,自引:1,他引:9       下载免费PDF全文
植被的降雨分配作用对理解生态系统的水文功能具有重要的意义。该文对四川岷江上游岷江冷杉(Abies faxoniana)针叶林和川滇高山栎(Quercus aquifolioides)灌丛两种生态系统的降雨分配及降雨截留的影响因素进行了研究,探讨了植被分配降雨及截留降雨的影响机制和影响因素。文中采用定位观测的方法研究降雨分配。针叶林中冠层降雨截留占33.33%,树干茎流占0.07%,穿透雨占66.60%;而灌丛的冠层截留降雨为24.95%,穿透雨为75.05%;针叶林地被物的蓄留水能力(1.746 mm)要大于灌丛地被物的持水能力(0.941 mm);针叶林土壤的容积含水率(39.66%)也要高于灌丛土壤的容积含水率(38.19%);两种生态系统中的穿透雨率与降雨量的关系均可用逻辑斯谛方程较好地模拟。文中还选取了降雨量、降雨强度、降雨持续时间、两次降雨的间隔时间和次降雨期间的气温等5种因子分析影响两种生态系统降雨截留的主要因素。根据截留降雨与上述5种因子的偏相关分析结果:针叶林冠层的降雨截留主要受降雨量、降雨持续时间和间隔时间的影响;灌丛的降雨截留主要受降雨量、气温与降雨持续时间的影响。文中从当地的降雨特征与两种生态系统微气候差异的角度分析了两种生态系统降雨分配及降雨截留影响因素差异的原因。  相似文献   

4.
华北农牧交错带农田-草地界面土壤水分的空间特征   总被引:1,自引:1,他引:1  
利用经典统计与地统计学方法,对华北农牧交错带农田-草地界面不同采样粒度(1 m×1 m、2 m×2 m)0~50 cm土层土壤水分的空间异质性进行了分析.结果表明:研究区农田、草地、农田-草地界面土壤水分均属中等变异,草地土壤水分的变异系数较农田大;土壤水分的变异系数随土层深度的增加而逐渐增大,且1 m×1 m采样粒度下农田-草地界面土壤水分变异系数与土壤深度呈显著相关(P<0.05);1 m×1 m采样粒度下,农田-草地界面各土层土壤水分的空间异质性明显高于邻近的农田和草地,表现为中度到强度的空间自相关性,变程在7.65~30.99 m,且具斑块分布格局;2 m×2 m采样粒度下,农田-草地界面各土层土壤水分的空间结构既有中到强度的空间自相关性,又有完全随机化的纯块金效应,变程在4.16~18.86 m;在农田-草地边界存在土壤水分的界面效应.  相似文献   

5.
Revegetation is a traditional practice widely used for soil and water conservation on the Loess Plateau in China. However, there has been a lack of reports on soil microbial–biochemical indices required for a comprehensive evaluation of the success of revegetation systems. In this study, we examined the effects of revegetation on major soil nutrients and microbial–biochemical properties in an artificial alfalfa grassland, an enclosed natural grassland, and an artificial shrubland (Caragana korshinskii), with an abandoned cropland as control. Results showed that at 0–5, 5–20, and 20–40 cm depths, soil organic carbon, alkaline extractable nitrogen and available potassium were higher in natural grassland and artificial shrubland compared with artificial grassland and abandoned cropland. Soil microbial biomass C (Cmic) and phosphorous (Pmic) substantially decreased with depth at all sites, and in abandoned cropland was significantly lower than those of natural grassland, artificial grassland, and artificial shrubland at the depth of 0–5 cm. Soil microbial biomass N (Nmic) was higher in artificial shrubland and abandoned cropland compared with that in natural and artificial grasslands. Both Cmic and Pmic were significantly different between the 23‐year‐old and the 13‐year‐old artificial shrublands at the 0–5 cm depth. The activities of soil invertase, urease, and alkaline phosphatase in natural grassland and artificial shrubland were higher than those in artificial grassland and abandoned cropland. This study demonstrated that the regeneration of both natural grassland and artificial shrubland effectively preserved and enhanced soil microbial biomass and major nutrient cycling, thus is an ecologically beneficial practice for recovery of degraded soils on the Loess Plateau.  相似文献   

6.
为了揭示北京山区不同植被类型土壤水分对不同强度降雨的响应过程,选取北京山区内侧柏、荆条灌丛、荒草地为研究对象,基于2022年6—10月降雨和土壤水分的连续观测数据,分析土壤水分对不同降雨事件的响应特征。结果表明:(1)观测期内研究区降雨事件主要由小雨构成,小雨事件的总降雨量占总降雨量的14.78%,小雨事件对土壤水分的响应深度可达到40—60 cm土层;中雨、大雨、暴雨事件的总降雨量占总降雨量的85.52%,中雨、大雨、暴雨事件对土壤水分的响应深度均可达到60—80 cm土层;大降雨事件对土壤水分的补给作用更明显,降雨量越大,降雨能补给的土层深度越深,土壤水分补给效果越好。(2)三种植被平均土壤水分补给速率大小依次为荒草地>侧柏>荆条灌丛,说明降雨对荒草地的补给效果最好;土层活跃程度对植被土壤水分有影响,土层越活跃,土壤水分波动越大,三种植被平均土壤水分变异系数大小依次为荒草地>荆条灌丛>侧柏,而三种植被平均土壤储水量大小则依次为侧柏>荒草地>荆条灌丛,说明侧柏的土壤水分最为稳定。(3)荒草地、荆条灌丛剖面上各层土壤水分逐渐减少,侧柏则增加,说明土壤...  相似文献   

7.
Plant feedbacks increase the temporal heterogeneity of soil moisture   总被引:3,自引:0,他引:3  
Plant feedbacks on resource levels are well-known, but feedbacks on resource variability have received little attention. Semi-arid grasslands have greater temporal heterogeneity of rainfall than mesic forests, leading to the possibility that grasses further enhance this variability as a mechanism for excluding woody plants originating in habitats with less heterogeneity. Here we test the hypothesis that grasses create greater levels of temporal heterogeneity of soil resources than do woody plants. We used monocultures of five replicate species of both growth forms. Daily soil moisture measurements taken 10 and 30 cm beneath monocultures over a growing season showed that temporal heterogeneity was significantly greater under grasses than under woody plants. This occurred during a dry period when plants are most likely to compete for moisture. Differences in temporal heterogeneity between growth forms were related to differences in their abilities to reduce soil moisture: during the dry period, the net effect of vegetation on moisture 10 cm deep was greatest under grasses. Although the rate of change of soil moisture was higher under grasses, the growth forms exploited different depths of soil moisture: soils 10 cm deep were driest under grasses, but soils 30 cm deep were driest under woody species. In summary, grasses increased within-season resource variability in a habitat already characterized by high among-year variability.  相似文献   

8.
三峡库区典型茶园土壤水分对不同降雨模式的响应   总被引:1,自引:0,他引:1  
土壤水分是坡面产流和生物地球化学过程的关键控制因素。降水事件可以通过引起土壤剖面不同深度的土壤水分响应,从而影响流域中的径流路径、产流机制和土壤侵蚀过程等。基于三峡库区典型分布的茶园为对象,通过长期定点、高频的气象和水分数据观测,研究不同降雨模式下茶园不同土层深度(0—10、10—20、20—30、30—40cm)土壤水分的时空变化特征,分析茶园不同深度土壤在雨季的水分动态变化规律和对不同降雨模式的响应特征。结果表明:(1)研究区内的降雨和土壤水分含量均表现出明显的季节性特征。降雨在7月达到最大值,土壤水分含量则在8月达到峰值。表明降雨是影响土壤水分含量变化的重要因子,土壤水分对降雨有着明显的响应过程。(2)在相同降雨条件下,土壤含水量具有明显的垂直梯度变化。随着土层深度的增加,土壤水分对降雨的响应逐渐呈现出滞后现象。表层土壤(0—20cm)对降雨的响应较为迅速且幅度更加明显,深层土壤(30—40cm)水分含量变化相对稳定,并且对降雨的响应时间更加滞缓。随着土层深度的增加,土壤水分含量的变化幅度逐渐趋于平稳。(3)土壤水分含量对不同的降雨模式表现出显著差异。在较大雨强条件下,土壤水分变...  相似文献   

9.
苔藓层是青海云杉林(Picea crassifolia forest)下的一个重要层片,它通过截持降水和减少土壤蒸发,对土壤水分产生影响。以祁连山北坡排露沟小流域的一个阴坡(海拔2700 m,植被为青海云杉林)作为样坡,于2010—2012年生长季对青海云杉林下有、无苔藓层覆盖地点的土壤水分进行对比观测。结果表明在祁连山青海云杉林下,苔藓层覆盖能减少土壤水分的空间差异。主要表现为:(1)无苔藓覆盖各观测点土壤含水量极差达62.2 mm,空间变异系数(CV)为17.3%;有苔藓层覆盖观测点土壤含水量空间变异系数为2.3%,仅为无苔藓覆盖地点的1/7.5,空间差异极显著(sig.0.001)。(2)在持续无雨、小雨后和连阴雨天气下,有苔藓覆盖地点土壤含水量空间差异均显著小于无苔藓覆盖地点(sig.0.05)。在持续无雨的情况下,无苔藓层覆盖各观测点土壤含水量空间变异系数平均值为19.8%,有苔藓覆盖地点土壤含水量空间变异系数平均值为6.6%,仅为无苔藓覆盖地点的1/3。小雨后,无苔藓覆盖各观测点土壤含水量空间变异系数平均值为15.2%,有苔藓覆盖地点土壤水分空间变异系数平均为5.1%,为无苔藓覆盖地点的1/3。连阴雨后,无苔藓覆盖各观测点土壤含水量空间变异系数平均为15.4%,有苔藓覆盖地点土壤水分空间变异系数平均为4.6%,为无苔藓覆盖地点的1/3.3。(3)持续无雨的情况下,苔藓层减小土壤水分空间差异的作用主要反映在土壤表层0—15 cm,对深层的作用不显著。而小雨和连阴雨后,苔藓层对15—80 cm深层土壤影响显著,而表层0—15 cm没有明显规律。  相似文献   

10.
川西亚高山典型森林生态系统截留水文效应   总被引:8,自引:2,他引:8  
截留是水文循环的一个重要过程,水文功能是森林生态系统功能的重要方面,林冠和枯落物截留实现对大气降水的二次分配过程.为深入认识生态系统截留的水文效应,采用野外观测和人工降雨模拟试验相结合的方法,研究了2008年和2009年5-10月贡嘎山亚高山峨眉冷杉中龄林、峨眉冷杉成熟林和针阔混交林的冠层枯落物截留能力.结果表明,峨眉冷杉中龄林2008年林冠截留率为20.9%,针阔混交林2008年和2009年林冠截留率分别为23.0%和23.6%,林冠截留率的年际间变化不大,林冠截留主要受到降雨特征影响.3种林型枯落物饱和持水能力分别为5.1、5.1和5.7 mm,显著高于林冠的饱和持水能力,但由于冠层的截留蒸发速率较高,林冠截留蒸发仍是生态系统截留蒸发的主要组成部分.  相似文献   

11.
祁连山排露沟流域典型植被类型的水源涵养功能差异   总被引:4,自引:0,他引:4  
胡健  吕一河  张琨  陶蕴之  李婷  任艳娇 《生态学报》2016,36(11):3338-3349
土壤水分是"绿水"重要的储存,连接植被与水文系统的纽带。水源涵养功能是山地生态系统重要的生态系统服务,这种功能主要体现是生态系统将水分保持在系统内的过程和能力,并受多种因素的影响(如植被类型、土壤类型和地形)。通过对祁连山排露沟流域的土壤属性、土壤温湿度和降雨2个生长季的野外调查与观测,以及计算水源涵养功能指标来评估3种典型植被类型土壤水分涵养能力的差异。研究结果:(1)灌丛和青海云杉林下有机质、粉粒和砂粒含量、田间持水量、饱和持水量和孔隙度等土壤属性值高于草地,而土壤容重和粘粒含量低于草地;(2)青海云杉林的根区土壤累计入渗量高于灌丛和草地,草地土壤水分损失较灌丛和青海云杉林更快;(3)整个生长季内青海云杉林和灌丛土壤湿度明显高于草地湿度,青海云杉林的水源涵养功能指标值多大于1。这些结果表明青海云杉林较灌丛和草地具有更强的水源涵养能力。因此,研究结果能为国内干旱区山地生态系统的流域生态系统管理与可持续发展提供科学参考。  相似文献   

12.
黄土丘陵沟壑区坡面尺度土壤水分空间变异及影响因子   总被引:14,自引:0,他引:14  
姚雪玲  傅伯杰  吕一河 《生态学报》2012,32(16):4961-4968
土壤水分空间分布特征及其影响因子是土壤前期含水量模拟和小流域产流机制研究的重要内容,也是半干旱地区进行生态建设的重要参考。通过对黄土高原典型坡面雨季前后100 cm深度内土壤含水量进行观测,分析地形、植被和雨季对土壤水分空间分布的影响。基本统计分析显示,土壤水分的空间异质性在上层(<20 cm)较小,在下层(>40 cm)较大。坡面尺度上,土壤含水量的空间差异主要表现在不同植被类型之间,而不是坡位之间。各覆被类型的土壤含水量相对大小为荒草地>8年生刺槐林>20年生刺槐林>沙棘林。即使沙棘林和刺槐林位于更利于获取土壤水分的地形条件下,其土壤含水量仍然明显低于荒草地。地形对土壤水分的影响被植被类型的影响所掩盖。上述规律在雨季前后都有明显表现。因此,完全基于地形指数的土壤水分预测模型在黄土高原应该慎用,植被类型应该作为土壤水分空间预测的一个重要参数。雨季使土壤含水量整体提高,但是土壤水分空间分布格局并没有根本改变,高处仍高,低处仍低,各样点处的土壤含水量在雨季前后达到显著相关水平,说明土壤水分空间格局并不是瞬时状态,而具有明显的时间稳定性。  相似文献   

13.
荒漠人工固沙植被区土壤水分的时空变异性   总被引:10,自引:0,他引:10  
表层土壤水分具有高度的时间和空间变异性.研究的目的:(1)揭示沙坡头人工固沙植被区浅层土壤水分的时空变异性特征;(2)确定驱动土壤水分变异的主要环境因子.在人工固沙植被区内一个4500m2的网格样地上每隔10m设置取样点,在连续7个月的时间内 (2005年4~10月),每隔15d用时域反射仪测量各样点表层以下15cm和30cm深度的土壤容积含水量.结果表明,该区网格尺度上浅层土壤水分的分布具有明显的空间变异性,其变异性随着土壤水分含量的降低而减小;相对海拔是驱动土壤水分空间变异的主要环境因子,其作用在降雨后尤为显著,且其对土壤下层的影响比上层更明显;植被和土壤水分含量的相关性时间序列与相对海拔一致--降雨使其相关性增加;土壤质地(土壤粒径分布)和土壤水分含量的相关性时间序列特征与植被和相对海拔相反,且其对土壤上层的影响比下层更明显.因此,在沙坡头荒漠人工固沙植被区,降雨后的短暂湿润期,地形和植被是驱动浅层土壤水分变异的主要影响因子,而随着降雨之后土壤逐渐变干,土壤质地的影响变得更加明显.  相似文献   

14.
黄土丘陵沟壑区小流域土壤有机碳空间分布及其影响因素   总被引:12,自引:0,他引:12  
孙文义  郭胜利 《生态学报》2011,31(6):1604-1616
研究局域尺度土壤有机碳空间分布特征,对准确估算大尺度土壤碳库储量和变化具有重要意义。以黄土丘陵沟壑区典型小流域为对象,采集0-10、10-20、20-40、40-60、60-80、80-100cm土层中(898个土壤样品),采用多元线性逐步回归和地理信息系统(GIS)相结合方法,分析了地形(峁顶、峁坡、沟底)、土地利用(农田、果园、川坝地、草地、灌木林、乔木林)等作用下,小流域不同深度土壤有机碳含量的空间分布特征。结果表明:地形因素不仅对表层(0-10cm)土壤有机碳含量空间分布差异影响显著,而且对深层(40-100cm)影响也显著,且空间格局图上40-100cm可以清晰地看地沟底与峁顶和峁坡显著差异。在0-10cm土层,峁顶以中值斑块(50%)和低值斑块(48%)为主;峁坡以中值斑块(62%)为主,其次是低值斑块(22%);沟底中值斑块占70%,其次为低值斑块(23%)。40-100cm均为低值斑块,沟底低值绿色斑块占34%,远高于峁坡(8%)和峁顶(13%)。土地利用对表层(0-40cm)有机碳含量影响显著,对40-100cm土层无影响。在0-10cm土层,乔木林、灌木林、草地上高值斑块分别占18%、47%、10%,川坝地、农田和果园没有高值斑块,中值斑块分别占80%、53%、85%、73%、39%、23%。10-40cm土层,乔木林、灌木林、草地、川坝地、农田和果园中值斑块分别占21%、46%、22%、19%、5%、4%。但在40-100cm土层,各土地利用下有机碳均处于低值斑块区。坡向上0-100cm各层土壤有机碳含量半阴坡(北部、东北、东部)最高,半阳坡(西部、西南、南部)含量较低。  相似文献   

15.
彭海英  李小雁  童绍玉 《生态学报》2014,34(9):2256-2265
灌丛化是全球草原地区存在的主要环境问题。通过对内蒙古典型草原区小叶锦鸡儿灌丛和草地斑块冠层降雨再分配、地表径流、土壤含水量的对比观测,研究了小叶锦鸡儿灌丛化对该区水分再分配和利用的影响。结果表明,灌丛和草地斑块的冠层截留量分别占降雨量的20.86%和7.88%,灌丛和草地斑块的平均地表径流系数分别为5.95%和17.19%。土壤含水量观测结果显示,0—60 cm土层中,降雨事件过程中,灌丛斑块较草地斑块能捕获更多水分,灌丛斑块植被冠层下方土壤含水量高于草地斑块;而在雨后无有效降水补充土壤水分的前提下,0—60 cm土层中,灌丛斑块土壤水分蒸散发量高于草地斑块,其中0—10cm土层中灌丛斑块土壤水分蒸散发速率低于草地斑块,10—60 cm土层中灌丛斑块土壤水分蒸散发速率高于草地斑块。研究认为,在水分为关键性限制因子的干旱半干旱区,小叶锦鸡儿灌丛化过程增加草原生态系统中水分分布的空间异质性,灌丛斑块能捕获、利用更多水分以维持更多的生物量。  相似文献   

16.
黄土丘陵区植被恢复的土壤碳水效应   总被引:3,自引:0,他引:3  
冯棋  杨磊  王晶  石学圆  汪亚峰 《生态学报》2019,39(18):6598-6609
黄土高原大规模植被恢复显著影响了这一区域土壤水分和有机碳(SOC),从而影响其承载的土壤水源涵养和固碳服务。明确深层土壤水分和有机碳对植被恢复的响应特征是当前黄土高原地区生态水文与生态系统服务研究的一个重要科学问题,其中植被类型以及生长年限是这一过程的重要影响因素。然而,目前关于深层土壤有机碳和土壤水分对植被恢复的响应及二者关系的研究较少。通过对陕北典型黄土丘陵区不同植被类型和生长年限下0—5 m土壤水分与有机碳的监测,分析了深层土壤水分和有机碳对植被恢复的响应及其特征。研究发现:(1)植被恢复后0—5 m土层均出现水分亏缺,土壤水分亏缺在表层1 m最低,2—3 m最高;对于不同恢复方式,林地土壤水分亏缺在恢复至21—30a时显著高于前一阶段(11—20a),而在恢复31a后水分开始恢复,而灌木、草地土壤水分亏缺程度则随恢复年限延长不断增加。(2)林地、灌木、草地0—5 m平均土壤有机碳含量为1.97、1.77、1.72 g/kg;林地土壤固碳量随恢复年限的增加而增加,并且在恢复20a时固碳量与对照农田相比出现净增;灌木土壤固碳量随恢复年限先增加后降低;草地土壤固碳量则随退耕年限增加呈下降趋势并且低于对照农田。(3)表层0—1 m土壤水分随恢复年限增加变化不显著,深层土壤水分则随恢复年限增加显著降低;相比而言,随恢复年限增加,土壤有机碳随年限的变化在各层土壤中均不显著。深层土壤水分与土壤有机碳呈现显著的正相关,且土壤有机碳的增加速率低于土壤水分,研究认为,深层土壤固碳与土壤水分关系密切,且深层土壤固碳需要充足水分参与。深层土壤水分亏缺可能限制植被细根的发展,使深层土壤有机碳输入减少。  相似文献   

17.
太湖流域丘陵区两种土地利用类型土壤水分分布控制因素   总被引:5,自引:0,他引:5  
徐飞  赖晓明  朱青  廖凯华 《生态学报》2016,36(3):592-599
为探究太湖流域丘陵区典型土地利用类型(如竹林地和茶园)土壤水分的控制因素,在不同深度土壤水分定期观测的基础上,根据前7d降雨量将研究时段划分为干旱状态和湿润状态,利用分类与回归树(CART)方法得出不同干湿状态下土壤水分分布的主控因子,并借助典范对应分析(CCA)定量分析不同土地利用类型、不同土壤深度土壤水分格局与环境因子关系。结果表明:(1)高程、土地利用类型和土层厚度对土壤水分分布的相对贡献率最大,但在不同干湿状态下其影响程度存在差异;(2)干旱状态时土壤水分主要受高程、坡度、地形湿度指数(TWI)和剖面曲率等地形因素的作用,而土层厚度和粘粒也分别为0—20 cm和20—40 cm深度土壤水分的主控因子;(3)在湿润状态下,茶园0—20 cm土壤水分的主控因素为地形因子,在20—40 cm则以土壤性质为主,竹林地两个深度的土壤水分受地形和土壤性质的作用都很强,其中20—40 cm深度土壤水分与环境因子的关系较0—20 cm深度更为复杂。  相似文献   

18.
The cycling of surface water, energy, nutrients, and carbon is different between semiarid grassland and shrubland ecosystems. Although differences are evident when grasslands are compared to shrublands, the processes that contribute to this transition are more challenging to document. We evaluate how surface redistribution of precipitation and plant responses to the resulting infiltration patterns could contribute to the changes that occur during the transition from grassland to shrubland. We measured soil water potential under grasses (Bouteloua eriopoda), shrubs (Larrea tridentata) and bare soil and changes in plant water relations and gas exchange following a 15 mm summer storm in the grassland–shrubland ecotone at the Sevilleta National Wildlife Refuge in central New Mexico USA. Following the storm, soil water potential (Ψs) increased to 30 cm depth beneath both grass and shrub canopies, with the greatest change observed in the top 15 cm of the soil. The increase in Ψs was greater beneath grass canopies than beneath shrub canopies. Ψs under bare soil increased only to 5 cm depth. The substantial redistribution of rainfall and different rooting depths of the vegetation resulted in high Ψs throughout most of the rooting volume of the grasses whereas soil moisture was unchanged throughout a large portion of the shrub rooting volume. Consistent with this pattern, predawn water potential (ΨPD) of grasses increased more than 5 MPa to greater than −1 MPa whereas ΨPD of shrubs increased to −2.5 MPa, a change of less than 2 MPa. Transpiration increased roughly linearly with ΨPD in both grasses and shrubs. In grasses, assimilation was strongly correlated with ΨPD whereas there was no relationship in shrubs where assimilation showed no significant response to the pulse of soil moisture following the storm. These data show that preferential redistribution of water to grass canopies enhances transpiration and assimilation by grasses following large summer storms. This process may inhibit shrubland expansion at the ecotone during periods without extreme drought.  相似文献   

19.
利用2004和2005年生长季(6~9月份)六盘山自然保护区的香水河小流域内华山松天然林的穿透降雨、树干径流和冠层截留量观测资料,通过对华山松林降雨再分配特征和穿透降雨空间变异及其影响因素的综合分析,所得结果表明华山松天然林的穿透降雨量、树干径流量和冠层截留量,分别占大气降雨量的84.34%、0.72%和14.94%.穿透降雨在林内具有较大的空间变异,其变异程度随降雨量的增加而减小,冠层对穿透降雨具有一定的聚集效应,降雨量越高时效应越明显; 华山松冠层结构特征是影响穿透降雨的重要因素, 叶面积指数、冠层覆盖度、冠层厚度及距树干的距离等都会影响穿透降雨的空间分布,其中以叶面积指数的影响最大.由分析结果可知,冠层结构特征是决定大气降雨再分配和空间变异的重要生态因素之一.  相似文献   

20.
中国东部森林样带典型森林水源涵养功能   总被引:24,自引:6,他引:18  
贺淑霞  李叙勇  莫菲  周彬  高广磊 《生态学报》2011,31(12):3285-3295
通过对我国东部森林样带四个森林生态系统定位研究站(长白山站、北京站、会同站和鼎湖山站)的九种森林类型水源涵养监测数据的分析,研究了水热梯度下不同森林生态系统水源涵养功能。结果表明:在生长季的5-10月份,各森林类型的水源涵养特性表现出较大差异。林冠截留率的大小依次为:阔叶红松林>杉木林>常绿阔叶林>针阔混交林>季风常绿阔叶林>落叶阔叶混交林>马尾松林>落叶松林>油松林,最高的长白山站阔叶红松林的截留率是最低的北京站油松林的2.2倍。森林降雨截留量与林外降雨量呈显著的正相关,林冠截留率与降雨量呈显著负相关。枯落物最大持水深(5-10月份)以北京站落叶阔叶林最大,为6.0mm;鼎湖山站的季风常绿阔叶林最小,为1.0mm。0-60cm土层蓄水量最大的是会同站的人工杉木林,为247mm;最小的是北京站的落叶松林,仅为45.5mm;林分总持水量依次为:杉木林>阔叶红松林>常绿阔叶林>针阔混交林>季风常绿阔叶林>落叶阔叶混交林>马尾松林>落叶松林>油松林。各林分总持水量主要集中在土壤层,占总比例的90%以上。  相似文献   

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