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1.
玉米/大豆间作条件下的作物根系生长及水分吸收   总被引:11,自引:0,他引:11  
通过田间试验研究了玉米/大豆条带间作群体的根系分布及土壤水分吸收规律.结果表明:水分充足条件下,土壤剖面内玉米和大豆根系的分布模式近似于三角形;玉米根系水平分布范围较大,侧向伸展长度约为58 cm,16~22 cm土层的玉米根系侧向伸展最远,玉米根系不仅分布于间作条带行间,而且生长到大豆条带的行间;大豆根系水平分布于相对有限的区域内,侧向伸展长度约为26 cm.作物根质量密度随着距作物行(玉米或大豆)距离的增加而减少,玉米行和边行大豆根质量密度的90%分布于0~30 cm土层.距玉米行10 cm处玉米的根质量密度高于大豆,距玉米行20 cm处大豆的根质量密度大于玉米,两种作物根质量密度的85%都分布于0~30 cm土层内.间作条带内水分变化主要集中在0~30 cm土层,水分变化量依次为:玉米区域>大豆区域>条带行间.表明在水分充足条件下,间作作物优先在自己的区域吸水,根系混合区吸水滞后发生.  相似文献   

2.
冬小麦根系分布规律   总被引:24,自引:1,他引:23  
根据在郑州进行的冬小麦根系田间实测资料,研究了根长密度和根质量密度在砂壤土中的垂直分布.结果表明:冬小麦根量主要集中在上层,根长密度、根质量密度在0~50 cm土层内分别占57.7%和66.7%,而在50~100 cm层分别占23.4%和18.7%,根长密度和根质量密度随土壤深度的变化均符合指数函数形式;综合考虑根量分布、根系吸水等因素,确定了冬小麦适宜的底墒深度为100 cm.  相似文献   

3.
根据在郑州进行的冬小麦根系田间实测资料,研究了根长密度和根质量密度在砂壤土中的垂直分布。结果表明:冬小麦根量主要集中在上层,根长密度、根质量密度在0~50 cm土层内分别占57.%和66.%,而在50~100 cm层分别占23.%和18.%,根长密度和根质量密度随土壤深度的变化均符合指数函数形式;综合考虑根量分布、根系吸水等因素,确定了冬小麦适宜的底墒深度为100 cm。  相似文献   

4.
土地利用变化对土壤有机碳贮量的影响   总被引:97,自引:10,他引:87  
通过对比分析六盘山林区典型天然次生林(杂灌林、山杨和辽东栎林)与农田、草地及农田、草地与人工林(13、18和25年生华北落叶松)邻近样地土壤有机碳含量和密度及其在土壤剖面上分布的差异,研究了天然次生林变成农田或草地及农田或草地造林后对土壤有机碳贮量的影响,结果表明,土壤有机碳含量方面,农田和草地比天然次生林分别低54%和27%,差异主要在0~50cm土层;农田和草地比人工林分别低42%和26%,差异主要在0~40cm土层,土壤有机碳密度方面,农田和草地比天然次生林分别低35%和14%,差异主要在0~50cm土层;农田比人工林低23%,草地比人工林高4%,差异主要在0~30cm土层.天然次生林和人工林土壤有机碳含量和密度随土层加深而递减的幅度比农田或草地大.这些差异主要由土地利用变化引起的土壤有机碳输入与输出及根系分布的变化所致.结果说明六盘山林区天然次生林破坏变成草地或农田后土壤有机碳含量和密度(主要是0~50cm土层)将下降,而农田中造林后土壤有机碳含量和密度(主要是0~30cm土层)又将增加,草地上造林后土壤有机碳含量增加而密度变化不大。另外,土壤有机碳含量和密度在土壤剖面上的分布也将随土地利用变化而发生改变。  相似文献   

5.
植物的水分利用特征对浅层土石山区的植被恢复具有重要意义.本研究利用稳定同位素技术,通过采集降雨后丹江鹦鹉沟小流域侧柏和玉米的植物样及其植物根系周围的土壤样品,分析其氧稳定同位素特征,研究土石山区侧柏和玉米两种不同植物的土壤水分利用方式对降雨的响应特征.结果表明: 侧柏和玉米的土壤水分利用方式对降雨存在不同的响应特征.侧柏根系主要利用10~30 cm土层的土壤水分,而玉米主要利用0~20 cm土层的土壤水分.降雨量由29 mm减少至8 mm时,侧柏根系的主要吸水深度由20~30 cm减小到10~20 cm,玉米根系的主要吸水深度由10~20 cm转换为0~20 cm.降雨减少时,侧柏根系吸水的主要深度均由深层土壤向浅层土壤移动,而玉米的主要吸水深度由10~20 cm增加为0~20 cm.侧柏和玉米根系的土壤水分利用方式对降雨的响应特征较为明显.  相似文献   

6.
油蒿灌丛群落浅层土壤水分对不同降雨格局的响应   总被引:2,自引:0,他引:2  
以库布齐沙漠东缘典型分布的油蒿灌丛为对象,使用微气象观测系统连续监测2016—2018年生长季降雨及多层次土壤含水量(0~10、10~30、30~50 cm),研究不同降雨格局下荒漠土壤水分的时空动态变化,分析降雨事件对土壤水分的补给作用和水分入渗特征。结果表明: 油蒿灌丛浅层土壤含水量在降雨脉动下产生明显的季节和垂直变化,雨量和雨前土壤含水量是影响土壤水分补给和入渗的主控因素。0~10 cm土层土壤对降雨反馈迅速,>3.8 mm降雨对该层产生补给作用;10~30 cm土层土壤对降雨反馈稍显迟滞,需8.6 mm以上降雨才能产生有效补给;30~50 cm土层土壤对降雨反馈更加滞后,降雨量超过11.8 mm后才能达到该补给深度。水分入渗速率随雨量增大而升高,随土层加深而减弱,入渗深度与雨量和雨前土壤含水量均呈显著正相关。研究期间,降雨事件以<10 mm降雨为主,占总降雨次数的78.4%,降雨对土壤的补给主要作用于30 cm以内土层,对深层土壤的补给十分有限,不利于深根性植物生长,降雨格局直接影响和改变了研究区植物群落的构成、分布和演替。  相似文献   

7.
大田期烟草根系构型参数的动态变化   总被引:9,自引:1,他引:8  
采用“根箱”法研究了大田期烟草根系构型参数在时间、空间上的动态变化.结果表明, 烟草2级侧根总长度的增加明显大于1级侧根,根快速增长期分别出现在移栽后26~40和56~70 d.栽后57 d(打顶)前,烟草根系的分枝密度表现为10~20>0~10>20~30>30~40 cm,此后随土层的加深呈递减趋势.在主根上,以7~21 cm范围内的分枝密度最大.打顶前,比根长随着入土深度的加深而递增;栽后90 d,比根长随土层的加深而递减.1级侧根根长密度在0~10 cm土层内的变化呈“S”型曲线,10~20、20~30和30~40 cm内表现为双峰曲线;2级侧根根长密度随生育期的进程而增加,其中0~10 cm根长密度的变化为“S”曲线,其它层次为单峰曲线.  相似文献   

8.
唐国  胡雷  宋小艳  李香真  王长庭 《生态学报》2022,42(15):6250-6264
根系是草原生态系统中最重要的碳库之一,分析高寒草甸植物群落生物量和地下不同径级根系碳分配特征及根系的生长特征对降雨变化的响应,有利于了解全球变化背景下高寒草甸植物根系、土壤碳氮循环及其过程。采用微根管技术原位监测5种降雨处理下(增雨50%:1.5P、自然降雨:1.0P、减雨30%:0.7P、减雨50%:0.5P、减雨90%:0.1P)高寒草甸植物群落和根系属性(现存量、生产量、死亡量、根系寿命和周转速率)的变化特征,结果表明:(1)降雨变化对地上植物群落生物量无显著影响,但0.5P和0.1P显著增加禾本科生物量(P<0.05)。(2)总根系现存量在处理间无显著差异,但随着降雨量减少呈先增加后降低的趋势。土层间不同径级根系现存量差异显著,0-10 cm土层1.5P和0.7P1级根现存量显著增加,2级和3级根现存量显著降低;在10-20 cm土层,1.0P2级根系现存量显著高于其余处理(P<0.05)。(3)总根生产量与死亡量随降雨减少而降低,在0-10 cm土层,1.0P总根生产量和死亡量最高,0.1P显著降低了1级根生产量(P<0.05)。(4)0.1P显著增加10-20 cm土层1级根和总根寿命(P<0.05)。(5)根系周转随降雨量减少呈降低趋势,但无显著差异(P>0.05)。(6)结构方程模型进一步表明:根系现存量和生产量受土层和水分的直接影响,土层和养分对根系周转有负效应。综上所述,降雨量的变化并未显著改变地下总根系生物量,但少量降雨变化(0.7P、1.5P)会降低植物对2、3级根生物量的分配,投入更多资源以促进1级根的生长;而水分下降至轻度水分胁迫(0.1P),植物会减少地下各径级根系生物量的分配,保持低根系生物量消耗和低根系生长来维持其正常的生长状态,完成其正常的生态功能。  相似文献   

9.
本研究以科尔沁沙地典型固沙植物小叶锦鸡儿(Caragana microphylla)为对象,采用氧稳定同位素技术,比较了小叶锦鸡儿群落内3、5和9年生小叶锦鸡儿生长季内土壤水、降雨与植株木质部水的δ18O值关系,并利用多元线性混合模型定量研究了不同树龄小叶锦鸡儿用水来源;结合不同树龄小叶锦鸡儿土壤水分季节特征和根系分布分析用水来源变化原因;通过评价不同树龄小叶锦鸡儿与地区水分条件适应性,分析3种树龄小叶锦鸡儿的水分竞争关系,判断群落稳定性。结果表明:根系的分布决定了不同树龄小叶锦鸡儿对水分利用的范围和选择何种用水策略的可能性,水分的分布也一定程度上影响了小叶锦鸡儿的主要用水来源。生长季内30~80 cm土层是3年生小叶锦鸡儿主要水分利用层位;30~100 cm土层是5年生小叶锦鸡儿主要水分利用层位,其中80~100 cm土层贡献率所占较大; 0~30和100~160 cm土层是9年生小叶锦鸡儿主要水分利用层位。小叶锦鸡儿群落内,不同树龄植株之间不存在强烈的水分竞争,该地区小叶锦鸡儿群落较为稳定。  相似文献   

10.
为了探讨绿洲-荒漠过渡带上受损柽柳群落幼苗适宜生长的土壤水分条件,在塔南策勒绿洲外围设置A(不灌溉)、B(适度灌溉)、C(充分灌溉)3个处理的田间试验,于7~10月份考察了各处理柽柳幼苗粗根(>2 mm)和细根(<2 mm)生物量积累、空间分布等变化特征。结果显示:(1)随着灌溉量的增加,柽柳根系生物量积累不断增加,且在生长季末(10月份)增速最大,同时细根占总根重的比例从20.5%上升到29.8%,显著提高了幼苗吸收养分和水分的能力。(2)干旱胁迫(处理A)下柽柳幼苗根系的下扎深度大,但水平根幅的扩展却有限;适度灌溉(处理B)的生物量较处理A大,但小于处理C;根系扎根深度表现为处理A>处理B>处理C,各指标均处于中间状态;水分条件最好(处理C)时虽然垂直扎根深度小,但水平根幅最大,可以更有效利用浅层土壤资源。(3)柽柳幼苗大量根系集中在0~40 cm的土壤表层,而且水分条件越好,这种集中趋势越明显;根系生物量随土壤深度的增加呈递减变化,细根的根长密度也有相似变化,但细根的比根长变化规律不明显,这可能与各层土壤微观环境的变化有关。研究表明,灌溉对柽柳幼苗根系的生长和分布有显著影响,充分灌溉下柽柳幼苗根系生物量积累最多且空间分布最大,该灌溉量有利于柽柳幼苗根系的正常生长和合理分布。  相似文献   

11.
The effects of four rates (0, 5, 10 and 20%, wt/wt) of fly ash amendment in a sandy soil (top 100–120 mm) on soil properties, turf (Cynodon dactylon (L.) Pers., cv. Wintergreen) water relations, growth and colour, were assessed during 84 days of irrigation treatments (irrigated daily, every 3rd day, or every 4th day) imposed during summer in a Mediterranean-type climate. In plots irrigated at 40% of net evaporation summed and applied every 3rd day: (i) soil water contents were 14–33% higher in the fly ash amended soil zone when compared to values in plots with non-amended soil; (ii) soil water content below the root zone (i.e., 1500 mm) during that period remained low (being only 1–2% above the permanent wilting point), indicating minimal, if any, deep drainage. Extractable soil P was 2.0- to 3.8-fold higher in the fly ash amended soil compared to non-amended soil. By contrast extractable P was 1.7- to 2.1-fold higher in the soil 100–500 mm below the surface in non-amended plots, compared with fly ash amended plots. Irrigation at 40% replacement of net evaporation summed and applied every 3rd day did not adversely impact on turf growth or colour, when compared to plots irrigated daily, irrespective of fly ash treatments. However, extending irrigations (at 40% of net evaporation) to every 4th day reduced turf growth and colour, but the turf recovered fully from the mild water stress within 21 days of being irrigated daily at 100% replacement of net evaporation. Therefore, 40% replacement of net evaporation summed and applied every 3rd day was a suitable watering schedule for maintenance of turf, with minimal risks of deep drainage.  相似文献   

12.
Summary The development of the root system of some locally important vegetable crops has been studied. The crops investigated were grown under mediterranean and tropical conditions with appropriate cultural treatment.The development of root systems was more a reflection of soil conditions than a conformation to a growth pattern specific for the particular crop plant. Evidence for the restricting effect of greater soil bulk density on root development and a relation between soil bulk density and depth of root development was obtained. Frequent irrigation is considered to be a factor Inducing shallow root development and also a lack of nutrients in the deep layers of soil.Distinct asymetric development of the root system was correlated with the pattern of distribution of the irrigation water.  相似文献   

13.
根源信号参与调控气孔行为的机制及其农业节水意义   总被引:12,自引:5,他引:7  
在土壤干旱情况下,根源信号一方面向植物地上部分的长距离传输,为地上部分提供了土壤水分获取能力的测度,另一方面调控气孔开度,抑制蒸腾作用并提高植物的水分利用效率.文中综述了根源信号参与调控植物水分利用的生理机制和理论模型,指出该模型与根系吸水模型、气孔导度模型耦合,能够更好地反映植物叶片对土壤干旱以及大气干旱的响应、评述了在根源信号参与调控植物水分关系的基础上发展的调亏灌溉(RDI)、部分根系干旱(PRD)和控制性交替灌溉(CAI)等有效灌溉手段,有助于合理配置根系层供水量,通过根土相互作用和信号物质的传输,降低蒸腾和提高水分利用效率、另外,根源信号在调控根系生长发育、延缓地上部分生长以调节根冠比例,优化资源分配以利于生殖生长等方面均有所为,为全面提高农田水分利用效率提供节水生理基础。  相似文献   

14.
Alternate partial root zone irrigation (APRI) is a new water-saving irrigation technique. It can reduce irrigation water and transpiration without reduction in crop yield, thus increase water and nutrient use efficiency. Understanding of soil moisture distribution and dynamic under the alternate partial root zone drip irrigation (APDI) can help to develop the efficient irrigation schemes. In this paper, a two-dimensional (2D) root water uptake model was proposed based on soil water dynamic and root distribution of grape vine, and a function of soil evaporation related to soil water content was defined under the APDI. Then the soil water dynamic model of APDI (APRI-model) was developed based on the 2D root water uptake model and soil evaporation function combined with average measured soil moisture content at 0–10 cm soil layer. Soil water dynamic in APDI was respectively simulated by Hydrus-2D model and APRI-model. The simulated soil water contents by two models were compared with the measured value. The results showed that the values of root-mean-square-error (RMSE) range from 0.01 to 0.022 cm3/cm3 for APRI-model, and from 0.012 to 0.031 cm3/cm3 for Hydrus-2D model. The average relative error between the simulated and measured soil water content is about 10% for APRI-model, and from 11% to 29% for Hydrus-2D model, indicating that two models perform well in simulating soil moisture dynamic under the APDI, but the APRI-model is more suitable for modeling the soil water dynamic in the arid region with greater soil evaporation and uneven root distribution.  相似文献   

15.
为了明确华北严重缺水区晚播冬小麦灌水对根系时空分布和土壤水分利用规律的影响,以冬小麦石麦15为材料,利用田间定位试验研究了不同灌水处理(春季不灌水W0;春季灌拔节水75mm,W1;春季灌起身水、孕穗水和灌浆水共225mm,W3)对根系干重密度(DRWD)、根长密度(RLD)、体积密度、分枝数等在0—200cm土层的垂直分布、动态变化及其对耗水和产量的影响,结果表明:随着春季灌水量的减少,开花后0—80cm土层的根干重密度、根长度密度、体积密度和分枝数密度均显著减少,80cm—200m土层的根干重密度、根长度密度、体积密度和分枝数密度却显著增加,并且显著增加冬小麦在灌浆期间对100cm以下深层土层水分的利用,总耗水量W1和W0分别比W3减少70.9mm、115.1mm,土壤耗水量分别比W3增加79.1mm、108.9mm,子粒产量W1和W0分别比W3减少653.3kg/hm2、1470kg/hm2,水分利用效率(WUE)则分别比W3提高0.09kg/m3、0.06kg/m3。晚播冬小麦春季灌1水(拔节水)可以促进根系深扎,增加深土层的根系分布量,提高对深层土壤贮水的吸收利用量,有利于实现节水与高产的统一。  相似文献   

16.
Correct modeling of root water uptake partitioning over depth is an important issue in hydrological and crop growth models. Recently a physically based model to describe root water uptake was developed at single root scale and upscaled to the root system scale considering a homogeneous distribution of roots per soil layer. Root water uptake partitioning is calculated over soil layers or compartments as a function of respective soil hydraulic conditions, specifically the soil matric flux potential, root characteristics and a root system efficiency factor to compensate for within-layer root system heterogeneities. The performance of this model was tested in an experiment performed in two-compartment split-pot lysimeters with sorghum plants. The compartments were submitted to different irrigation cycles resulting in contrasting water contents over time. The root system efficiency factor was determined to be about 0.05. Release of water from roots to soil was predicted and observed on several occasions during the experiment; however, model predictions suggested root water release to occur more often and at a higher rate than observed. This may be due to not considering internal root system resistances, thus overestimating the ease with which roots can act as conductors of water. Excluding these erroneous predictions from the dataset, statistical indices show model performance to be of good quality.  相似文献   

17.
Root growth and water uptake in winter wheat under deficit irrigation   总被引:20,自引:0,他引:20  
Root growth is critical for crops to use soil water under water-limited conditions. A field study was conducted to investigate the effect of available soil water on root and shoot growth, and root water uptake in winter wheat (Triticum aestivum L.) under deficit irrigation in a semi-arid environment. Treatments consisted of rainfed, deficit irrigation at different developmental stages, and adequate irrigation. The rainfed plots had the lowest shoot dry weight because available soil water decreased rapidly from booting to late grain filling. For the deficit-irrigation treatments, crops that received irrigation at jointing and booting had higher shoot dry weight than those that received irrigation at anthesis and middle grain filling. Rapid root growth occurred in both rainfed and irrigated crops from floral initiation to anthesis, and maximum rooting depth occurred by booting. Root length density and dry weight decreased after anthesis. From floral initiation to booting, root length density and growth rate were higher in rainfed than in irrigated crops. However, root length density and growth rate were lower in rainfed than in irrigated crops from booting to anthesis. As a result, the difference in root length density between rainfed and irrigated treatments was small during grain filling. The root growth and water use below 1.4 m were limited by a caliche (45% CaCO3) layer at about 1.4 m profile. The mean water uptake rate decreased as available soil water decreased. During grain filling, root water uptake was higher from the irrigated crops than from the rainfed. Irrigation from jointing to anthesis increased seasonal evapotranspiration, grain yield, harvest index and water-use efficiency based on yield (WUE), but did not affect water-use efficiency based on aboveground biomass. There was no significant difference in WUE among irrigation treatments except one-irrigation at middle grain filling. Due to a relatively deep root system in rainfed crops, the higher grain yield and WUE in irrigated crops compared to rainfed crops was not a result of rooting depth or root length density, but increased harvest index, and higher water uptake rate during grain filling.  相似文献   

18.
地下滴灌条件下三倍体毛白杨根区土壤水分动态模拟   总被引:7,自引:0,他引:7  
在根系分布试验观测的基础上,提出了三倍体毛白杨一维根系吸水模型,在考虑根系吸水情况下利用HYDRUS模型模拟了地下滴灌条件下三倍体毛白杨根区的土壤水分动态,通过田间试验对模型进行验证,并利用HYDRUS研究了不同灌水技术参数对土壤湿润模式的影响.结果表明:在灌溉结束和水分再分布24 h后,土壤含水量模拟结果的相对平均绝对误差(RMAE)分别为7.8%和6.0%,均方根误差(RMSE)分别为0.036和0.026 cm3·cm-3,说明HYDRUS模型能很好地模拟地下滴灌条件下三倍体毛白杨根区的短期土壤水分动态,且所建根系吸水模型合理;与2、4 L·h-1的滴头流速和连续性灌溉相比,流速1 L·h-1和脉冲式灌溉(每隔30 min灌水30 min)能增大土壤湿润体体积,且可以减少水分深层渗漏量,因此,对试验地三倍体毛白杨根区进行地下滴灌应首选流速1 L·h-1的脉冲式灌溉.  相似文献   

19.
Root zone solute dynamics under drip irrigation: A review   总被引:19,自引:1,他引:18  
Mmolawa  Khumoetsile  Or  Dani 《Plant and Soil》2000,222(1-2):163-190
Infiltration and subsequent distribution of water and solutes under cropped conditions is strongly dependent on the irrigation method, soil type, crop root distribution, and uptake patterns and rates of water and solutes. This review discusses aspects of soil water and solute dynamics as affected by the irrigation and fertigation methods, in the presence of active plant uptake of water and solutes. Fertigation with poor quality water can lead to accumulation of salts in the root zone to toxic levels, potentially causing deterioration of soil hydraulic and physical properties. The high frequency of application under drip irrigation enables maintenance of salts at tolerable levels within the rooting zone. Plant roots play a major role in soil water and solute dynamics by modifying the water and solute uptake patterns in the rooting zone. Modeling of root uptake of water and solutes is commonly based on incorporating spatial root distribution and root length or density. Other models attempt to construct root architecture. Corn uptake rate and pattern of nitrate nitrogen was determined from field studies of nitrate dynamics under drip irrigation using TDR monitoring. The determined nitrate nitrogen uptake rates are within literature values for corn. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

20.
Effects of partial root-zone irrigation (PRI) on the hydraulic conductivity in the soil-root system (L(sr)) in different root zones were investigated using a pot experiment. Maize plants were raised in split-root containers and irrigated on both halves of the container (conventional irrigation, CI), on one side only (fixed PRI, FPRI), or alternately on one of two sides (alternate PRI, APRI). Results show that crop water consumption was significantly correlated with L(sr) in both the whole and irrigated root zones for all three irrigation methods but not with L(sr) in the non-irrigated root zone of FPRI. The total L(sr) in the irrigated root zone of two PRIs was increased by 49.0-92.0% compared with that in a half root zone of CI, suggesting that PRI has a significant compensatory effect of root water uptake. For CI, the contribution of L(sr) in a half root zone to L(sr) in the whole root zone was ~50%. For FPRI, the L(sr) in the irrigated root zone was close to that of the whole root zone. As for APRI, the L(sr) in the irrigated root zone was greater than that of the non-irrigated root zone. In comparison, the L(sr) in the non-irrigated root zone of APRI was much higher than that in the dried zone of FPRI. The L(sr) in both the whole and irrigated root zones was linearly correlated with soil moisture in the irrigated root zone for all three irrigation methods. For the two PRI treatments, total water uptake by plants was largely determined by the soil water in the irrigated root zone. Nevertheless, the non-irrigated root zone under APRI also contributed to part of the total crop water uptake, but the continuously non-irrigated root zone under FPRI gradually ceased to contribute to crop water uptake, suggesting that it is the APRI that can make use of all the root system for water uptake, resulting in higher water use efficiency.  相似文献   

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