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1.
寇建林 《水文》2008,28(3):77-78
利用冉庄实验站蒸渗仪的实测资料,对土壤水资源量及其剖面分布,进行了具体分析计算.在种植小麦、玉米情况下,算得土壤水资源的剖面分布.0.3m以上的耕作层占46.4%;1m以上占84.3%;2m以上占91.8%.  相似文献   

2.
文章利用野外试验设施分别把地下水埋深控制在1.0,1.4,1.8,2.2和2.5m,研究在不同地下水埋深作用下苏打盐渍土土壤水分平衡和水分动态变化。同时,跟踪在地下水位不断波动条件下田间土壤水分的动态变化。结果表明:地下水埋深在1.0~2.5m时,苏打盐渍土土壤水和地下水的转化关系非常微弱,仅在长期干旱的条件下发生微量地下水毛细上升量;降雨和蒸散作用对苏打盐渍土体积含水量的影响深度不超过40cm,埋深大于1.0m的潜水对0~80cm深度苏打盐渍土体积含水量变化没有明显影响。  相似文献   

3.
《地下水》2021,(1)
辽宁省是全国主要的水稻生产基地,水稻作物主要分布在辽宁省的中部平原地区,这一区域地下水埋深由于地势低平一般在1.0~2.5 m之间,地下水埋深一般较高,降雨入渗系数一般在0.25~0.35之间,属于土壤水入渗补给较大的区域。本文根据不同地下水埋深下水稻作物的产量进行探讨,分析表明,随着地下水埋深的增加水稻作物每亩穗数逐步减少,地下水埋深从0 m增加到0.80 m后,每亩穗数从33.79万根减少到25.22万根,地下水埋深为0.30 m时,水稻产量最大,可达到666.1 kg,属于最适宜地下水埋深。不同土质对水稻产量相比于地下水埋深,影响程度较低。研究成果对于地下水埋深较低区域水稻生长调控措施提供参考依据。  相似文献   

4.
种植条件下土壤水与地下水相互转化研究   总被引:6,自引:2,他引:6  
选择天山北麓平原两种代表性作物冬小麦和玉米,人为控制不同潜水埋深条件下进行了种植试验,分析研究了种植条件下土壤水和地下水相互转化机理。计算了不同潜水埋深条件下冬小麦和玉米各生育期和全生长期的实际蒸发蒸腾量、潜水补耗差、包气带土壤储水量变化量及同期的潜在蒸发量,结果表明潜水埋深对土壤水和地下水相互转化及农业生态环境具有重要影响。引入了包气带一潜水系统水分转化量均衡临界深度(Z0)概念,发现潜水埋深小于Z0时,潜水向土壤水的转化起主导作用,潜水和土壤水同时对作物需水具有重要动态调节作用,潜水埋深越浅潜水的动态调节能力越强,但是潜水埋深过浅又可能引起土壤次生盐渍化等农业生态环境问题;当潜水埋深大于Z0时,土壤水向潜水的转化起主导作用,土壤水对作物需水仍具有动态调节能力,而潜水基本失去或完全失去对作物需水的动态调节作用,但是有利于潜水入渗补给,增加地下水资源。  相似文献   

5.
分析土壤盐渍化与地下水特征之间的关系对区域水土资源可持续利用具有重要意义,同时也为地下水资源管理的科学化和现代化提供技术支撑。利用136个土壤剖面的540个土壤样品及相应地下水观测数据,采用对数正态分布模型,对伊犁河流域地下水埋深、矿化度对土壤盐渍化的影响进行了研究,计算分析了防止土壤盐渍化的地下水临界深度。结果表明:研究区表层土壤含盐量随地下水矿化度的增加呈指数增加的趋势;各土层含盐量随地下水埋深的增加呈对数下降的趋势;当地下水矿化度介于1~3g/L、3~6g/L、6~10g/L与1~10g/L时,盐渍化土壤出现频率峰值所对应的地下水埋深分别为1.44 m、1.65m、1.83m与1.63m。为了防止土壤次生盐渍化,当地下水矿化度介于1~3g/L、3~6g/L、6~10g/L与1~10g/L时,地下水埋深分别控制在2.06m、2.49m、2.66m与2.24m以上。地下水矿化度越大,可在较大的地下水埋深范围内发生土壤盐渍化。对数正态分布模型分析结果与对数拟合曲线分析结果基本一致,说明研究结果是可靠的。地下水埋深2.5m可作为防止土壤盐渍化的临界地下水埋深。  相似文献   

6.
为了确定巴丹吉林沙漠潜水蒸发强度与地下水埋深的关系,基于巴丹吉林沙漠的气候背景、砂土特征和不同地下水埋深时的典型植被特点设计了54种情景,利用Hydrus-1D建立不同情景下的SPAC水分运移模型,对周期性气象条件驱动下的潜水蒸发开展数值模拟。模拟结果表明:多年平均潜水蒸发量有着随地下水埋深增大而非线性减小的趋势;不同情景的极限埋深都大于3m,在埋深等于3m时潜水蒸发量都小于最大值的5%;当地下水埋深为0.5~1.5m时,潜水蒸发量对地下水埋深的变化最为敏感;当地下水埋深为1m时,潜水蒸发量对包气带岩性的变化也很敏感;在地下水埋深小于0.5m和大于1.5m的区间,气候、岩性、地下水埋深的变化对潜水蒸发量的影响变得微弱。另外,多年平均潜水蒸发量和地下水埋深的这种非线性关系可以用一个新提出的经验公式进行较为准确的拟合,将这个研究结果用于评价巴丹吉林沙漠湖泊集中区地下水的蒸发消耗,发现潜水蒸发总量显著大于湖面蒸发总量,前者约为后者的2.5~2.6倍,必须在沙漠水分平衡的分析中加以考虑。  相似文献   

7.
种植条件下潜水入渗和蒸发机制研究   总被引:9,自引:0,他引:9  
在天山北麓昌吉地下水均衡试验场,选择具有代表性的作物玉米进行不同埋深条件下的模拟种植试验,分析研究种植条件下不同潜水埋深水平的潜水入渗补给量、潜水蒸发损耗量、土壤水储存量和作物耗水量的变化规律。研究成果对于地下水资源和土壤水资源评价以及地下水和土壤水资源的有效调控利用具有重要实用意义。  相似文献   

8.
为研究土壤冻融过程中不同地下水位对土壤的补给规律,在室内进行了两组不同地下水边界条件下的土柱冻结试验: A组无地下水补给,土柱高度60cm;B组地下水维持在距土柱表层60cm深度处。土壤在冻结过程中水分及盐分均呈向上运移趋势,稳定浅地下水补给会加剧水分及盐分向上运移,造成上层土壤盐分的聚积,影响土壤剖面的热量平衡,引起剖面温度的重新分布,从而减缓冻结锋的推进速度。运用HYDRUS-1D冻融模块对不同地下水埋深(0.5m,1.0m,1.5m,2.0m,2.5m)情况下冻结过程中水分运移规律进行了模拟。模拟结果表明:累积补给量在埋深小于1.5 m时随埋深增加而有所增加,而当地下水埋深大于1.5 m时,累积补给量随着埋深增加而有所减小,甚至保持不变。  相似文献   

9.
为研究土壤冻融过程中不同地下水位对土壤的补给规律,在室内进行了两组不同地下水边界条件下的土柱冻结试验:A组无地下水补给,土柱高度60 cm;B组地下水维持在距土柱表层60 cm深度处。土壤在冻结过程中水分及盐分均呈向上运移趋势,稳定浅地下水补给会加剧水分及盐分向上运移,造成上层土壤盐分的聚积,影响土壤剖面的热量平衡,引起剖面温度的重新分布,从而减缓冻结锋的推进速度。运用HYDRUS-1D冻融模块对不同地下水埋深(0.5 m,1.0 m,1.5 m,2.0 m,2.5 m)情况下冻结过程中水分运移规律进行了模拟。模拟结果表明:累积补给量在埋深小于1.5 m时随埋深增加而有所增加,而当地下水埋深大于1.5 m时,累积补给量随着埋深增加而有所减小,甚至保持不变。  相似文献   

10.
赵辉  陈文芳  崔亚莉 《地学前缘》2010,17(6):159-165
研究采用理论分析和实践成果相结合、区域宏观分析与典型地区深入剖析相结合的研究方法,从地下水不合理开发利用引起的环境问题出发,选取华北地区、西北地区以及沿海地区作为典型区,分析地下水位对环境的控制作用,提出了具有针对性的地下水位控制阈值。华北平原有利于山前调蓄的地下水位埋深为10m、中东部平原浅层控制土壤盐渍化水位埋深为2~3 m、防止地裂缝的水位埋深为7 m、深层控制地面沉降水位埋深为50 m、浅埋岩溶区地下水位应控制在岩溶含水层上覆的松散岩类的底板高程(2 m)之上;西北地区控制天然植被衰败的地下水位埋深为2.0~4.5 m和人工绿洲灌溉期控制土壤盐渍化的地下水位埋深为1.2~1.5 m,非灌溉期中冻结期地下水位埋深1.3~1.5 m,冻融期为2.2~2.7 m;沿海地区防止海水入侵的地下水位阈值应控制在漏斗中心水位高程-5~-6 m,最大不超过-8 m。上述地下水位控制阈值的确定,为实施地下水总量控制和水位控制管理提供了科学依据。  相似文献   

11.
基于野外调查、取样分析以及遥感影像等,介绍了银川平原水文地质条件及水资源利用概况,探讨了土壤盐渍化、湖泊湿地萎缩、地下水盐化、地下水超采以及土地荒漠化等水环境问题及其演化成因。结果表明:银川平原地下水主要接受渠系渗漏及灌溉入渗、大气降水入渗、平原周边地下侧向径流、洪水散失、黄河水等补给,地下水排泄方式主要是排水沟排泄、蒸发和人工开采等,大部分地区潜水埋深在3 m以内;地表水主要来源于黄河引水,水资源利用效率不高;土壤盐渍化总面积8.17×104hm2,呈逐年缩减的趋势,主要分布于银川平原北部,平原南部仅分布在邵岗东部、灵武东部秦渠和东干渠等;湖泊湿地总体呈逐渐减少趋势,主要分布在银川平原北部,永宁以北、平罗以南区域比较集中,滩涂沿黄河两岸分布;潜水总含盐量自西向东、自南向北不断增大;银川和石嘴山深层地下水超采严重,地下水降落漏斗面积已超过500 km2;沙漠化土地分布在银川平原的东西两侧;土壤盐渍化及地下水盐化主要由潜水位埋深过浅,蒸发强烈造成的。最后,提出了防治上述水环境问题的对策:进一步加强水资源管理以及地表水与地下水联合调配;提高农业水资源利用效率;完善田间工程配套,实现渠道防渗管道化;改进田间灌溉技术;严格污水排放,积极开展污水净化处理,实行污水资源化;加强对水土环境质量的系统监测。  相似文献   

12.
柴达木盆地鱼卡河流域水资源开发利用与生态保护   总被引:2,自引:0,他引:2  
鱼卡河流经2个次级断陷盆地,流域地表水资源总量为10 236.58×104 m3;地下水资源总量为17 764.55×104 m3。其中鱼卡盆地地表水资源量为10 123.06×104 m3,地下水量为6 967.85×104 m3;马海盆地地表水资源量为9 145.44×104 m3,地下水量为10 796.7×104 m3。鱼卡盆地地下水开采量为226.3×104 m3,占地下水资源量3.2%;马海盆地地下水开采量为619.8×104 m3,占地下水资源量5.7%。通过对流域地下水资源利用研究表明,随着流域地下水资源开发力度加大,下游出现了地下水资源短缺,造成生态环境恶化。例如,流域地下水不能得到合理开发利用,将进一步加剧下游生态环境更加恶化,破坏生态平衡。因此,合理开发利用流域地下水资源,是关系到流域下游工农业可持续发展的主要问题。  相似文献   

13.
以生态输水为代表的湿地修复工程在西北内陆流域得到了广泛应用,生态输水情形下地下水与湿地植被的交互作用决定着湿地生态系统的演化过程。以西北典型内陆流域—石羊河流域青土湖湿地为研究区,基于地下水-湿地生态系统多要素一体化动态监测网络,结合稳定同位素和卫星遥感技术手段,分析生态输水情形下的地下水动态变化与湿地植被恢复情况,从...  相似文献   

14.
Tritium is a short-lived radioactive isotope (T 1/2=12.33 yr) produced naturally in the atmosphere by cosmic radiation but also released into the atmosphere and hydrosphere by nuclear activities (nuclear power stations, radioactive waste disposal). Tritium of natural or anthropogenic origin may end up in soils through tritiated rain, and may eventually appear in groundwater. Tritium in groundwater can be re-emitted to the atmosphere through the vadose zone. The tritium concentration in soil varies sharply close to the ground surface and is very sensitive to many interrelated factors like rainfall amount, evapotranspiration rate, rooting depth and water table position, rendering the modeling a rather complex task. Among many existing codes, SOLVEG is a one-dimensional numerical model to simulate multiphase transport through the unsaturated zone. Processes include tritium diffusion in both, gas and liquid phase, advection and dispersion for tritium in liquid phase, radioactive decay and equilibrium partitioning between liquid and gas phase. For its application with bare or vegetated (perennial vegetation or crops) soil surfaces and shallow or deep groundwater levels (contaminated or non-contaminated aquifer) the model has been adapted in order to include ground cover, root growth and root water uptake. The current work describes the approach and results of the modeling of a tracer test with tritiated water (7.3×108 Bq m−3) in a cultivated soil with an underlying 14 m deep unsaturated zone (non-contaminated). According to the simulation results, the soil’s natural attenuation process is governed by evapotranspiration and tritium re-emission. The latter process is due to a tritium concentration gradient between soil air and an atmospheric boundary layer at the soil surface. Re-emission generally occurs during night time, since at day time it is coupled with the evaporation process. Evapotranspiration and re-emission removed considerable quantities of tritium and limited penetration of surface-applied tritiated water in the vadose zone to no more than ∼1–2 m. After a period of 15 months tritium background concentration in soil was attained.  相似文献   

15.
The Beijing-Tianjin-Hebei Plain (BTHP) is the political, economic and cultural center of China, where groundwater is the main source of water supply to support social and economic development. Continuous overdraft of the resources has caused a persistent decline of groundwater level and formed a huge cone of depression at a regional scale. This paper addresses current groundwater situation over the BTHP area. The paper also delineates the groundwater flow field, using groundwater level data, in order to provide an effective method for the restoration of groundwater level and associated water resources management. Based on the analysis of multiple factors, such as groundwater level, soil salinization, ground subsidence, groundwater recharge and storage, urban underground space security, formation of fractures, and seawater intrusion, the threshold for groundwater level restoration is defined, and some measures for groundwater over-exploitation management are accordingly proposed. The study shows that: (i) Since the 1980s to 2020, shallow groundwater level in the western part of the BTHP area has dropped by 25 m to 60 m, while the cumulative decline of deep groundwater in the central and eastern regions is in the range of 40–80 m; (ii) The water table of the shallow groundwater within the depression zone over the Western Piedmont Plain should be controlled in the range of 15–30 m below ground level (mbgl), while the depth of groundwater level in large and medium-sized urban areas should be controlled within 20–30 mbgl. The groundwater level in the resource preservation area should be controlled within 10–15 mbgl, and the groundwater level in the area with identified soil salinization in the central and eastern plain should be controlled within 3–10 mbgl. However, for the deep groundwater in the central and eastern plainwater, the main focus of the resources management is to control the land subsidence. The water level in the severe land subsidence area should be controlled within 45–60 mbgl, and in the general subsidence area should be controlled within 30–45 mbgl; (iii) Based on the water level recovery threshold and proposed groundwater overdraft management program, if the balance of abstraction and recharge is reached in 2025, the shallow groundwater abstraction needs to be gradually reduced by about 2×108 m3. Meanwhile, the ecological water replenishment of rivers through the South-to-North Water Transfer Project should be increased to 28.58×108 m3/a, and the deep groundwater abstraction needs to be gradually reduced by 2.24×108 m3. To reach the target of shallow groundwater level in 2040, surface water replacement is recommended with a rate of 25.77×108 m3/a and the ecological water replenishment of rivers in the South-to-North Water Diversion Project should reach 33.51×108 m3/a. For deep groundwater recovery, it is recommended to replace the deep freshwater extraction with the utilization of shallow salt water by 2.82×108 m3 , in addition to the amount of 7.86×108 m3 by water diversion. The results are of great significance to the remediation of groundwater over-exploitation, the regulation of water resources development and utilization, and ecological protection in Beijing-Tianjin-Hebei plain.  相似文献   

16.
The aquifer Westliches Leibnitzer Feld, Austria, is a significant resource for regional and supraregional drinking water supply for more than 100,000 inhabitants, but the region also provides excellent agricultural conditions. This dual use implicates conflicts (e.g., non-point source groundwater pollution by nitrogen leaching), which have to be harmonized for a sustainable coexistence. At the aquifer scale, numerical models are state-of-the-art tools to simulate the behavior of groundwater quantity and quality and serve as decision support system for implementing groundwater protecting measures. While fully and iteratively coupled simulation models consider feedback between the saturated and unsaturated zone, sandy soil conditions and groundwater depths beneath the root zone allow the use of a unidirectional sequential coupling of the unsaturated water flow and nitrate transport model SIMWASER/STOTRASIM with FEFLOW for the investigation area. Considering separated inputs of water and nitrogen into groundwater out of surface water bodies, agricultural, residential and forested areas, first simulation results match observed groundwater tables, but underestimate nitrate concentrations in general. Thus, multiple scenarios assuming higher nitrogen inputs at the surface are simulated to converge with measured nitrate concentrations. Preliminary results indicate that N-input into the groundwater is strongly dominated by contributions of agricultural land.  相似文献   

17.
The presence of groundwater is strongly related to its geological and geohydrological conditions.It is,however,important to study the groundwater potential in an area before it is utilized to provide clean water.Werner-Schlumberger’s method was used to analyze the groundwater potential while hydraulic properties such as soil porosity and hydraulic conductivity were used to determine the quality and ability of the soil to allow water’s movement in the aquifer.The results show that the aquifer in the Sekara and Kemuning Muda is at a depth of more than 6 meters below the ground level with moderate groundwater potential.It is also found that the aquifer at depths of over 60 m have high groundwater potential.Moreover,soil porosity in Kemuning is found to be average while the ability to conduct water was moderate.This makes it possible for some surface water to seep into the soil while the remaining flows to the rivers and ditches.  相似文献   

18.
包气带在干旱半干旱地区地下水补给研究中的应用   总被引:3,自引:0,他引:3  
在干旱半干旱地区,包气带的溶质和同位素剖面不但可以提供较长时间尺度上的地下水补给信息,而且记录了过去气候变化与环境变化信息。本文基于学科组近10年的研究成果,以鄂尔多斯盆地为例(包括南部的黄土高原和北部的沙漠高原),将包气带和饱和带结合起来,利用多种环境示踪技术,提升了包气带在干旱半干旱地区地下水研究中的潜力,并将其应用到地下水补给历史重建、地下水补给机制确定、植被变化对地下水补给影响评价和地下水污染物全过程示踪中。研究表明,由于在干旱半干旱地区,包气带较厚且补给量有限,地下水和现今的浅表水文过程未达到水力平衡,如在沙漠高原西部,近2 500 a降水尚储存在包气带13 m以浅,地下水是4 000 a以前补给的,其水化学特征与浅部包气带水差异巨大;而在黄土高原,补给量较大,但包气带巨厚,年降水仍需要几十到上百年时间入渗到地下水(但并不意味着没有补给,其土壤水在包气带中平均入渗速率为0.1~0.3 m·a-1),包气带浅部溶质含量较深部和地下水中的高;典型黄土塬区的地下水均不含氚,地下水年龄在几百到上万年。黄土内部层状均匀的土壤质地特征和相对较老的地下水年龄揭示的均匀活塞流入渗是黄土塬区浅层地下水补给的主要方式。黄土高原退耕还林还草和沙漠区植被恢复导致地下水补给呈现不同程度的减少,反映在包气带上表现为溶质含量的增加,可用于定量化确定地下水补给量的变化。本文强化了包气带在干旱半干旱地区地下水补给研究中的作用,在未来地下水资源评价、地下水污染全过程刻画中应得到重视。  相似文献   

19.
苏州城市规划区Ⅱ承压水开采与地面沉降预防控制研究   总被引:2,自引:1,他引:2  
在孔隙承压水开采与地面沉降的关系上存在2种观点。水、土应力平衡理论认为:只要开采承压水,就会引发应力失衡并导致地面沉降;而水、土动态平衡理论则认为:除非开采水压力至水、土应力平衡面以下,否则不会引发地面沉降。苏州城市规划区第Ⅱ承压水开采水位与地面沉降动态观测表明,在-33m处存在一个天然动态水、土应力平衡面。第Ⅱ承压含水层形成后,经上覆堆积物自重压力长期压缩作用,其水压力具较高的压强.这种天然状态下产生的弹性释放储存量可开采利用多少,取决于开采状态下水、土应力平衡时可消耗压力水柱高度中的水头值。因而地面沉降的根本原因是开采水位超过了-33m,突破了天然状态水、土应力平衡面水位。Ⅱ承压含水层在天然状态受上覆堆积物重力产生的高压强弹性释放储存量现象,可以帮助我们确立该地区孔隙Ⅱ承压水开采不产生地面沉降的临界水位(水、土应力平衡面)。这一点对承压水开采条件、可开采资源性质具有重大实际意义。同样可以应用于饱受地面沉降困扰的无锡、常州及周边地区,为地下水开发利用政策由单一的封井停采转为目标水位控制开采提供了科学依据。同时也为此政策在承压水动力学机制上找到了内在原因。  相似文献   

20.
Many cities and towns in South and Southeast Asia are unsewered, and urban wastewaters are often discharged either directly to the ground or to surface-water canals and channels. This practice can result in widespread contamination of the shallow groundwater. In Hat Yai, southern Thailand, seepage of urban wastewaters has produced substantial deterioration in the quality of the shallow groundwater directly beneath the city. For this reason, the majority of the potable water supply is obtained from groundwater in deeper semi-confined aquifers 30–50 m below the surface. However, downward leakage of shallow groundwater from beneath the city is a significant component of recharge to the deeper aquifer, which has long-term implications for water quality. Results from cored boreholes and shallow nested piezometers are presented. The combination of high organic content of the urban recharge and the shallow depth to the water table has produced strongly reducing conditions in the upper layer and the mobilisation of arsenic. A simple analytical model shows that time scales for downward leakage, from the surface through the upper aquitard to the semi-confined aquifer, are of the order of several decades. Electronic Publication  相似文献   

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