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1.
子午岭植被恢复对土壤饱和导水率的影响   总被引:11,自引:0,他引:11  
梁向锋  赵世伟  张扬  华娟 《生态学报》2009,29(2):636-642
通过对子午岭林区不同植被的土壤性质进行实验室测定和野外调查,对饱和土壤水分运动的重要参数之一土壤饱和导水率(Ks)及其相关因子进行了多元分析和通径分析,揭示了植被恢复提高土壤水分传输性能的机理,主要结论如下:土壤有机质是子午岭林区九种植被下土壤饱和导水率提高的主要驱动因子.不同植被下的土壤饱和导水率均随深度的增加而迅速降低,尽管草地和先锋草地在5~10cm深度有一强透水层.土壤饱和导水率在剖面上的平均值,从辽东栎、早期森林、灌丛、先锋草地、弃耕地到草地依次降低.灌丛与草地、弃耕地的差异达到显著水平,辽东栎顶级群落的饱和导水率最高,植被的恢复明显提高了土壤饱和导水率.土壤容重、毛管孔隙度、>0.25mm团聚体含量及粘粒含量直接影响土壤饱和导水率.土壤有机质含量的提高能够改善容重、毛管孔隙度、团聚体含量等物理性质.  相似文献   

2.
表层土壤水分物理性质对深层土壤水分的动态变化具有重要的作用,研究其空间变化特征有助于深入理解坡地降雨入渗及产流规律,实现土壤水资源的合理利用.基于网格(10m×10 m)取样,用地统计学方法研究了桂西北喀斯特地区典型灌丛坡地90 m×120 m(投影长)表层(0~10 cm)土壤含水量、容重和饱和导水率的空间变异特征.结果表明:研究区土壤含水量、容重和饱和导水率均具有明显的空间依赖性和空间结构.土壤水分含量半变异函数用高斯模型模拟较好,土壤容重与饱和导水率用指数模型拟合较好.土壤含水量表现为强烈的空间自相关性,土壤容重和导水率表现为中等的空间自相关性.土壤含水量与饱和导水率空间连续性的尺度范围较小,而土壤容重空间连续性的尺度范围较大.总体上土壤含水量沿坡向下呈递增趋势,土壤容重呈递减趋势,而土壤饱和导水率沿坡面没有明显变化规律,斑块小而多,表现为高异质性.土壤含水量与土壤容重、饱和导水率均呈极显著负相关,而土壤容重与饱和导水率之间没有明显的相关性.  相似文献   

3.
花岗岩崩岗不同部位土壤饱和导水率特征及其影响因素   总被引:2,自引:0,他引:2  
崩岗是我国南方花岗岩丘陵区普遍存在的水力-重力复合土壤侵蚀现象。为探究崩岗的土壤水力学性质与侵蚀机理的内在联系及其与影响因素之间的关系,选择桂东南活动型、半稳定型和稳定型3种花岗岩崩岗为对象,研究不同部位土壤饱和导水率的空间变化及其影响因素。结果表明:1)崩岗土壤饱和导水率在不同部位呈波动分异,其中崩壁中部为最小值,崩积堆上部为最大值,其次为洪积扇顶端。2)选取Cosby、Compbell、Julià、Hypre 4种土壤饱和导水率传递函数对该区土壤饱和导水率进行拟合,结果预测值与实测值均存在偏差。3)相关性分析表明,土壤饱和导水率与毛管孔隙度、黏粒含量呈极显著负相关关系,与非毛管孔隙和砂粒含量呈极显著正相关关系。4)通径分析表明,砂粒含量为崩岗土壤饱和导水率的主要影响因素,其次为非毛管孔隙度和土壤容重,其中砂粒含量与非毛管孔隙度对土壤饱和导水率呈正效应,容重呈负效应。研究结果可为揭示崩岗侵蚀机理和防治提供理论依据。  相似文献   

4.
连栽桉树人工林土壤大孔隙特征及其对饱和导水率的影响   总被引:1,自引:0,他引:1  
速生人工林多代连栽容易导致土地水源涵养能力下降。土壤大孔隙以优先流的形式补充地下水,是定量研究土壤水分运动的重要指标。以连栽1-4代桉树人工纯林为研究对象(记录为Ⅰ、Ⅱ、Ⅲ、Ⅳ),采用水分穿透曲线法,绘制水分穿透曲线,结合Poiseulle方程计算出大孔隙数量、半径及饱和导水率等指标,对土壤大孔隙特征及其对饱和导水率的影响进行研究。结果表明:(1)桉树人工林土壤的出流速率总体表现先匀速增加后趋于稳定,稳定出流速率总体表现为I > II > III > IV。(2)大孔隙半径范围在0.3-1.5 mm,主要集中于0.4-0.6 mm,随土层深度增加显著减小(P<0.05)。大孔隙数量范围在3.56×104-4.81×105个/m2。随着连栽代次的增加,大孔隙孔径范围变小,同一孔径范围的大孔隙数量减少。土壤容重与大孔隙特征呈极显著负相关关系;有机质含量与大孔隙特征呈极显著正相关关系。(3)各样地土壤饱和导水率范围在0.41-4.50 mm/min,并随着连栽代次增加而降低。将大孔隙的总数量、平均体积与土壤饱和导水率进行线性拟合,拟合方程为:y=ax+b=,(R2>0.66)。综上,随着桉树人工林连栽代次的增加,土壤大孔隙孔径范围缩小、同等半径的大孔隙数量减少,饱和导水率降低,土壤入渗及导水性能减弱,容易造成水土流失。  相似文献   

5.
三峡库区森林土壤大孔隙特征及对饱和导水率的影响   总被引:13,自引:0,他引:13  
刘目兴  吴丹  吴四平  廖丽娟 《生态学报》2016,36(11):3189-3196
土壤大孔隙是土体内孔径较大能优先传导水分的根孔、洞穴或裂隙,大孔隙内优先流的产生是土壤水分运动研究由均衡走向非均衡的标志。利用原状土柱的水分穿透试验,对三峡库区山地不同林型覆盖下土壤的大孔隙结构进行了研究,分析了温性阔叶林棕壤、针阔混交林黄棕壤、暖性针叶林黄壤及弃耕草地剖面内大孔隙的剖面分布特征及其对土壤饱和导水率的影响。结果表明:研究区内森林土壤的大孔隙当量孔径在0.3—3 mm之间,占土壤总体积的0.15%—4.72%。大孔隙中孔径0.3—0.6 mm的大孔隙密度最大,占大孔隙总数量的72.2%—90.4%;而孔径1 mm的孔隙仅占大孔隙总数量的1.26%—8.55%。土壤大孔隙密度和大孔隙面积比的顺序为:温性阔叶林棕壤针阔混交林黄棕壤针叶林黄壤弃耕坡地。各孔径段的大孔隙密度在不同样点均呈现A层-B层-C层逐渐减小的趋势,大孔隙密度与有机质含量呈显著正相关关系。土壤饱和导水率与不同孔径大孔隙的密度、面积比均成显著正相关关系,孔径1mm的大孔隙仅占大孔隙总数量的1.26%—8.55%,但决定了饱和导水率84.7%的变异。此外,森林土壤饱和导水率与各土壤层的有机质含量成显著正相关关系,有机质的增多有利于改善土壤的入渗性能。  相似文献   

6.
冻融条件下生物结皮覆盖对土壤饱和导水率的影响   总被引:3,自引:0,他引:3  
生物结皮(BSC)是广泛分布的地被物,每逢冬春季节,受冻融交替作用影响,结皮土壤的理化性质和水文学特征明显改变且与裸土差异显著,从而影响该地区土壤可蚀性评估和土壤侵蚀防治。采用室内模拟实验,以蓝藻结皮土壤为对象,研究不同冻融交替次数和初始含水量下,土壤三相对温度变化的响应特征并定量分析结皮覆盖土壤在此条件下饱和导水率(Ks)的变化趋势和突变点。结果表明:初始含水量对Ks无显著影响(P>0.05),冻融交替次数对Ks有极显著影响(P<0.01),冻融条件下裸土的平均Ks为1.941 mm/min,结皮覆盖土壤平均Ks为0.325 mm/min,两者具有极显著差异(P<0.01),且随交替次数增加,Ks差异逐渐增大,并在10次时达到最大值为10.13倍。不同冻融含水量下的结皮土壤的Ks在冻融10—20次时趋近,平均值为0.219mm/min。冻融作用显著改变土壤结构,且在冻融7次时土壤结构变化较明显,冻融过程中<0.1 mm的土壤颗粒显著变化。试验条件下,Ks受因子影响程度大小为:冻融交替次数>土壤结构>结皮厚度>结皮容重>下层土壤容重>...  相似文献   

7.
为深入解析热带地区胶农复合林土壤饱和导水率(Ks)的空间分布特征,及应对橡胶林的土地退化和季节性干旱问题,本研究在云南省勐腊县中国科学院西双版纳热带植物园橡胶-益智(Hevea brasiliensis-Alpinia oxyphylla)复合林建立试验小区(25 m×11 m),随机选取40个小样方,测定Ks、土壤容重、非毛管孔隙度和田间持水量,采用普通克里金插值法、地统计学、通径分析方法解译和分析橡胶-益智复合林土壤饱和导水率的空间分布格局、变异特征及其影响因子。结果表明:益智种植带Ks显著大于橡胶种植带(P<0.01),且Ks随距益智种植带的距离增大而降低;受结构性因素影响,Ks与田间持水量都表现出强烈的空间自相关性(块金系数C0/(C0+C)≤25%);Ks与土壤容重呈显著负相关(-0.613,P<0.01),与非毛管孔隙度(0.408,P<0.01)、田间持水量(0.352,P<...  相似文献   

8.
受旱玉米植株木质部汁液中的ABA浓度是高水分处理的5倍,土壤容重每增加0.12g·cm-3,木质部液汁中ABA浓度约增加1倍。在相同土壤基质势下,植株的气孔导度和蒸腾速率随土壤容重的增大而下降,而容重对植株的叶水势没有影响。生长在混合容重(一边为1.20g·cm-3,另一边为1.45g·cm-3)土壤上的植株中,ABA浓度和气孔导度与全部根系处在高容重土壤中的植株接近。  相似文献   

9.
黑河上游山区土壤水分表现为非饱和特征,准确估算该区域表层土壤非饱和导水率(K10)可提高山区生态水文模型的可靠性.本研究野外测定了黑河上游排露沟流域的K10,并利用土壤传递函数(PTFs)以土壤机械组成、容重及土壤平均粒径作为分析因子进行模拟估算,结果表明:排露沟流域森林、草地、退耕裸地的K10均值分别为(0.21±0...  相似文献   

10.
秦岭火地塘林区土壤大孔隙分布特征及对导水性能的影响   总被引:8,自引:0,他引:8  
陆斌  张胜利  李侃  马国栋 《生态学报》2014,34(6):1512-1519
大孔隙广泛分布于森林土壤中,是定量研究与土壤水分运动有关的重要因素,其研究可深化森林涵养水源机理的认识。基于田间持水量到饱和含水量之间的土壤孔隙作为大孔隙的标准,利用土壤水分穿透曲线和Poiseulle方程研究了秦岭火地塘林区森林土壤大孔隙分布特征及其对土壤饱和导水率的影响。结果表明,林区土壤大孔隙当量孔径主要分布在0.3—3.8 mm之间;当量孔径1.5 mm的大孔隙密度较小,其数量仅占大孔隙总数量的5.37%;各当量孔径的大孔隙密度随土层分布基本呈现为上层大、下层小的特点,且垂直分布差异显著,其与有机质含量分布有极显著的相关性。0—60 cm土层大孔隙平均面积比顺序为:针阔混交林油松林落叶阔叶林华山松林。不同当量孔径的大孔隙密度与饱和导水率呈显著正相关关系,当量孔径大于1.5 mm的大孔隙密度决定了饱和导水率84%的变异;大孔隙率平均在1.6%—13.3%之间,当其小于5%时,饱和导水率随着大孔隙率增大而增大。  相似文献   

11.
The impact of heating on the peristence of water repellency, saturated hydraulic conductivity, and water retention characteristics was examined on soils from both forest and meadow sites in southwest Slovakia shortly after a wet spell. The top 5 cm of meadow soils had an initial water drop penetration time WDPT at 20°C of 457 s, whereas WDPT in the pine forest was 315 s for the top 5 cm and 982 s if only the top 1 cm was measured. Heating soils at selected temperatures of 50, 100, 150, 200, 250 and 300°C caused a marked drop in water drop penetration time WDPT from the initial value at 20°C. However, samples collected in different years and following an imposed cycle of wetting and drying showed much different trends, with WDPT sometimes initially increasing with temperature, followed by a drop after 200–300°C. The impact of heating temperature on the saturated hydraulic conductivity of soil was small. It was found for both the drying and wetting branches of soil water retention curves that an increase in soil water repellency resulted in a drop in soil water content at the same matric potential. The persistence of soil water repellency was strongly influenced by both the sampling site and time of sampling, as it was characterized by the results of WDPT tests.  相似文献   

12.
The objective of this study was to estimate the hydraulic conductivity of sandy soil under different plant cover at the locality Mláky II at Sekule (southwest Slovakia). Two sites were demarcated at the locality, with mainly moss species at glade site, and pine forest at forest site. The estimation of unsaturated hydraulic conductivity was conducted by (a) minidisk infiltrometer and (b) the analysis of a dye tracer total resident concentration. The latter approach assumed the applicability of the stochastic—convective flow theory in the sandy soil. In the dye tracer experiment, two plots (1 × 1 m each) were established in both sites, and 100 mm of dye tracer (Brilliant Blue FCF) solution was applied on the soil surface. Similar results were obtained in both plots, with more than 70 % area of horizons stained in the depth of 30–50 cm. In some cases, the predicted and measured hydraulic conductivity were found within an order of magnitude, thus revealing similar impact of different plant cover on hydraulic properties of sandy soil studied. In contrast to sandy soils used for agriculture, the influence of the plant/surface humus and topsoil interface extended in the form of a highly heterogeneous matrix flow to the depth of 50–60 cm, where it was dampened by horizontal layering.  相似文献   

13.
保护性耕作对陇中旱作农田水分特征的影响   总被引:2,自引:0,他引:2  
陇中旱农区生产力水平低而不稳,而保护性耕作措施是农业可持续发展的重要途径.本研究依托2001年建立在陇中旱农区的长期不同耕作措施的定位试验,研究了不同耕作措施对土壤水分入渗、蒸发、作物产量和水分利用效率的影响.该试验共设6个处理,分别为传统耕作(T)、免耕秸秆覆盖(NTS)、免耕(NT)、传统耕作+秸秆翻入(TS)、传统耕作+覆膜(TP)、免耕覆膜(NTP),春小麦和豌豆年间轮作.结果表明:与T处理相比, NTS处理的小麦地和豌豆地的土壤容重显著降低,总孔隙度显著增加.保护性耕作措施降低了豌豆地0~5 cm土壤渗吸率,NTS处理渗吸率比T处理降低56.2%.保护性耕作提高了土壤饱和导水率,无论小麦地和豌豆地,NTS均比T处理显著提高了饱和导水率,增幅为52.8%~107.1%.保护性耕作显著降低了作物生育期棵间蒸发量,NTP、TP、NTS比T处理降低了14.4%~50.8%,并减弱了雨后土壤蒸发.保护性耕作提高了作物产量和水分利用效率,NTS、TP、NTP的产量比传统耕作提高了9.5%~62.8%,水分利用效率比传统耕作提高了0.4%~50.9%.因此,在陇中旱农区,保护性耕作措施可以提高水分利用效率,增加作物产量.  相似文献   

14.
Li  Yan  Wallach  Rony  Cohen  Yehezkel 《Plant and Soil》2002,243(2):131-142
A multiplexed TDR system and a heat-pulse system for stem sap flow measurements were used to determine the spatial and temporal pattern of root water uptake in field-grown corn. The TDR probes, 0.15 and 0.30 m in length, were buried vertically in the soil profile to a depth of 0.95 m below the soil surface and heat-pulse sensors were installed on the plant base. Nocturnal readings from TDR probes were used successfully to differentiate the two components of moisture change: root uptake and net drainage. The instantaneous rate of water extraction by the plant measured by the heat-pulse system agreed well with the integrated rate of root water uptake measured frequently (at half-hour or hourly intervals) by the TDR probes. This agreement enabled further exploration into the cause of the evolution of the spatial and temporal patterns of root water uptake during a drying cycle. The results indicated that right after irrigation in the well-watered soil profile, it is the spatial distribution of the roots that mainly determines the typical pattern of root extraction, in addition to the fact that the roots near the plant base are more effective than those farther away. The higher density and effectiveness of the roots near the plant base dry the soil rapidly so that soil hydraulic conductivity soon becomes a limiting factor for water uptake. Further analysis revealed that a decrease in root uptake occurs near the plant base under a given atmospheric demand when the relative bulk soil hydraulic conductivity decreases to 0.002K r. This suggests that low conductivity (high resistance) in the soil near the plant base is the initial cause for downward and lateral shifting of the root uptake pattern. Note that this critical value of hydraulic conductivity is not universal since it depends on the soil type and atmospheric water demand during the period under observation. Therefore, prior to the application of moisture content or suction head as measures of water availability or to control irrigation scheduling, it is suggested that these parameters be calibrated by the soil K() or K() curves, respectively, for the expected atmospheric water demand for the specific crop and growing period.  相似文献   

15.
The effect of three‐dimensional heterogeneity of saturated hydraulic conductivity on the vertical transport of solutes in soils is examined by means of controlled numerical experiments. Saturated hydraulic conductivity, an important transport parameter that controls the dispersion of pollutants in heterogeneous soils, is assumed to be composed of a homogeneous mean value and a perturbation caused by the vertical variability of soil properties, producing a stochastic process in the mean flow direction. The spatial heterogeneity of porous soils is characterized by the variance and correlation scale of the saturated hydraulic conductivity in the transport domain. Numerical experiments are carried out to evaluate the extent of contaminant dispersion in Hawaiian Oxic soils when uncertainty exists as a result of the spatial heterogeneity of saturated hydraulic conductivity. Statistical analysis of the saturated hydraulic conductivity measurements on undisturbed soil cores from two locations in Hawaiian Oxic soils indicated two different soils with the same mean and different variances. The partial differential equations describing three‐dimensional transient flow and solute transport in soils with a random conductivity field were solved to evaluate the effect of these two variance levels on the transport of a contaminant plume originating from the surface. The significance of the variance on the spatial and temporal distribution of tracer concentrations is demonstrated using solute breakthrough curves at various depths in the soil profile. The longitudinal macrodispersivity resulting from tracer spreading in the heterogeneous soils with a finite local dispersivity is also analyzed. The analysis shows a similar solute dispersion behavior for the two variances. However, there is an overall reduction in the dispersion of solutes resulting from a uniform velocity field with the same mean. Macrodispersivity values in heterogeneous soils are proportional to the variance at smaller travel distances but converge to the same value at larger travel distances.  相似文献   

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