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1.
藏南普莫雍错流域水体离子组成与空间分布及其环境意义   总被引:18,自引:3,他引:15  
对藏南普莫雍错湖水及其周围人湖河流水体进行了离子化学成分分析,对部分湖泊和河流水样作氧同位紊分析.结果显示,不同入湖河流离子组成与湖水本身离子组成有较大差异.湖水的主要离子组合是Mg2 -Ca2 -HCO3-SO42-,而主要补给河流加曲为Ca2 -Mg2 -HCO3-.加曲人湖河口2m水深以内水化学性质差异大,湖泊其他地区差异小.加曲对河口三角洲之上湖水影响显著.其他河流对河口处湖水影响较小.Gibbs图显示湖水离子的组成主要与流域内的岩石风化有关.离子比例和三角图分析说明控制入湖河水离子主要过程是碳酸盐、黄铁矿和硅酸盐风化.湖泊与河流水体离子的组成差异较大,原因可能是蒸发浓缩导致的CaCO3的沉淀.其结果有助于正确理解湖泊沉积碳酸盐的环境指示意义.  相似文献   

2.
通过对安徽池州南郊地下水调查及样品测试分析,发现近22年来该地区地下水水化学类型已由简单变为复杂.与1990年比,2012年HCO3-Ca和HCO3-Ca+ Mg型地下水分布面积显著缩小,HCO3-Na+ Ca型地下水完全消失,HCO3 +SO4-Ca型地下水出现并大面积分布.认为造成这种现象的主要原因是该地区近年来酸雨频发及工矿企业污染物排放.  相似文献   

3.
巴丹吉林沙漠湖泊水化学空间分布特征   总被引:7,自引:2,他引:5  
通过对巴丹吉林沙漠腹地拐子湖-地质公园一线51个湖泊水,8个泉水,12个井水及1个雨水水样的水化学成分分析,初步探讨了沙漠湖泊水化学分布特征及其影响因素.结果表明由东南边缘至腹地湖泊总体上依次呈硫酸盐型-碳酸盐型-氯化物型分布.东南边缘以Na+、Cl-、SO24-为主的湖泊因矿化度分异,形成Ca2+、Mg2+含量不同的三种亚型,其中高矿化度的Na-Cl-(SO4)型湖泊在腹地湖泊群中也有出现,表现出地理上的不连续分布;边缘若干湖泊受局部地理环境的影响水离子多含Na+、Cl-、CO32-+HCO3-.综合分析表明湖泊水化学型的空间分异与区域气候差异和气候变化有关,湖水直接或间接地接受当地降水补给,但不排除外源地下水补给对其有一定贡献.通过对比不同时段部分沙漠湖泊水化学特征发现近十年以来腹地湖泊补给源或受气候干暖化影响使其水化学特性较边缘湖泊的变化大.  相似文献   

4.
为明确草海湖水及其入湖河流硝酸盐污染的主要来源,定量分析各来源的贡献率,对草海湖水与入湖河流水化学特征和水体硝酸盐的氮氧同位素组成进行了系统研究.通过对草海湖水、河水、井水丰水期水体理化参数和同位素分析发现:湖水的NO_3~-/Cl~-比值和Cl-浓度表明其主要受牲畜粪便和城镇污水输入的影响,而河水与井水则受农业活动和城镇污水的共同影响.δD-water与δ~(18)O-water显示草海水体主要源于大气降水,并有较强的蒸发作用.湖水δ~(15)N-NO_3~-和δ~(18)O-NO_3~-值分别为-5.56‰~11.30‰和0.02‰~25.40‰,较河水偏负而较井水偏正.稳定同位素混合模型(SIAR)计算结果表明草海湖水及其入湖河流硝酸盐主要源于化肥、土壤有机氮、牲畜粪便相关的农业活动,其贡献率在50%以上;城镇污水贡献率在22%左右;大气降水的贡献主要体现在湖水中.  相似文献   

5.
根据辽东南地区10处泉水、井水的水化学组分和氢、氧同位素组成,讨论了地下水的化学类型、成因及其动态变化特征.测得水样的TDS范围为105.38~809.05 mg·L-1,主要阳离子为Na+、Ca2+,主要阴离子为SO42-、HCO3-;δ18O和δD值分别为-9.25‰~-7.53‰和-66.43‰~-54.33‰.根据Piper分类法,所采水样可划分为9种水化学类型.样品的氢氧同位素组成表明,研究区泉/井水主要来源于大气降水,并有深部流体的混入.在花岗岩分布区,大气降水经水-岩相互作用演化成F-含量较高的SO4·HCO3-Na型、HCO3-Na型或SO4-Na型水,为花岗岩裂隙水的典型特征;金州的水样因受碳酸盐岩层影响和海水入侵形成Cl-Ca·Mg型水;砂砾岩中的长石类矿物水解和粘土矿物的离子交换作用使得Na+和Ca2+相对富集形成HCO3-Na·Ca型水.地震发生前后部分泉/井出现了K+、F-和Cl-离子浓度的异常变化,这可能是深部流体混入浅层地下水造成的.K+、Mg2+、Ca2+、Cl-离子浓度变化对辽宁地震活动的响应较好.研究结果可用于辽宁地区流体地球化学地震监测、预测和水环境研究.  相似文献   

6.
为了探明达里诺尔湖流域地表水与地下水的氢(H)、氧(O)同位素的变化特征及相互补给关系,于2013年对达里诺尔湖及其周围的河水、井水、泉水中H、O同位素进行了取样分析,并结合总溶解性固体悬浮物(TDS)和区域水文地质对达里诺尔湖流域的补给关系进行讨论分析.结果表明:1)河水、泉水、井水中H、O同位素的值基本落在全球雨水线上,湖水H、O同位素落在全球雨水线的右下方,说明河水、井水、泉水没有发生蒸发分馏,而湖水则发生较大程度的蒸发分馏;对达里诺尔湖流域地表水与地下水的H、O同位素进行回归模拟,得出该区域的蒸发趋势线方程:δD=4.8753δ18O-20.139(n=32,R2=0.9968).蒸发线表明,这些水样具有相同水源的特征.2)从实地考察发现,泉水补给河水,泉水和河水补给湖水,同时井水、泉水和河水有相似的δD、δ18O和TDS值,且不随季节变化而变化,推断达里诺尔湖附近地下水补给湖水;区域水文地质条件亦证明达里诺尔湖周边地下水补给湖水.  相似文献   

7.
为深入理解纳木错湖水及入湖河流中溶解有机碳(DOC)和总氮(TN)浓度的季节变化特征及其影响因素,于2012-2013年不同季节对纳木错2个站点及流域内21条主要入湖河流进行采样及分析,采用统计学方法初步探讨纳木错水体和21条河流DOC和TN浓度季节变化特征.结果表明,河流DOC平均浓度范围为0.763~1.537 mg/L,TN平均浓度范围为0.179~0.387 mg/L.21条入湖河流DOC浓度在春末夏初和夏季达到高值,冬季为低值,TN浓度季节变化趋势大体上与DOC浓度相反.湖泊水体DOC和TN浓度范围分别为2.42~8.08和0.237~0.517 mg/L,明显分别高于河水中的浓度.湖泊DOC浓度季节变化趋势与河流一致,而TN浓度无明显的季节性变化.河水DOC浓度的季节变化和空间差异受控于河流的补给方式,湖水DOC浓度受湖泊内部藻类等水生植物活动和河流外源输入的影响.DOC等有机质的分解是影响纳木错流域湖水和河水TN浓度的重要原因.  相似文献   

8.
为深入认识鄱阳湖湿地区域水循环过程,于2019年1—12月在鄱阳湖国家级自然保护区对降水、河流水、主要碟形湖水进行系统采集,综合分析碟形湖-河流水稳定同位素的动态变化特征及其指示意义。结果表明,鄱阳湖湿地修河和赣江的同位素组成具有明显的季节性变化规律,4月河水同位素最为富集,5—7月逐渐贫化,之后呈现出不断富集的变化趋势,整体上与降水同位素的时间变化特性相似。在空间分布上,各段河水的同位素组成均具有相对稳定的沿程分布特征,赣江在修河汇入点上、下游的同位素特性在大多数月份没有呈现出明显变化。碟形湖水同位素的年内变化范围比河水大,并且相对富集。主要碟形湖水的δ2H-δ18O关系接近当地大气降水线,具有更小的蒸发线斜率以及系统性偏离的特征,反映碟形湖主要受到当地降水补给,经历了一定程度的蒸发作用。基于指数模型方法估算修河和赣江水体的平均滞留时间(mean residence time,MRT)分别为1.54和0.81年,赣江较短的MRT表明鄱阳湖流域具有不同水体组分相互快速转化的水力条件,修河上游柘林水库的调蓄作用导致其MRT明显大于赣江。通过假定...  相似文献   

9.
以呼伦湖流域为例研究该区域氢氧稳定同位素在不同水体中的分布特征,并探讨氢氧稳定同位素对在该区域水文过程的指示作用.流域湖水、入湖河水、周边地下水水样的氢氧稳定同位素分析结果表明,夏季8月份湖水中的重氢氧稳定同位素比7月份的更加富集.而河水中氢氧稳定同位素在同一时间内的河流沿程上存在明显的差异,下游水体中的氢氧稳定同位素要比上游更加富集.研究区的河水和湖水的δ~(18)O-δD关系特征显示,河水和湖水的δ~(18)O-δD的关系点全部位于当地降水线的右下方,说明流域河水和湖水水体受到明显的蒸发作用.而井水的δ~(18)O-δD的关系点大都靠近当地大气降水线,说明这一区域的地下水主要是大气降水渗入地下形成.利用氢氧稳定同位素分馏过程中的氢氧稳定同位素的比率与剩余水体的关系,并在考虑湿度因子的动力分馏模拟下,计算出河水的剩余水体比例在0.85~0.96之间,而湖水的剩余水体比例在0.71~0.77之间.最后,利用氢氧稳定同位素质量平衡法对呼伦湖多年平均蒸发量进行了估算,估算的湖泊蒸发量结果与实测值相近,相对误差为5.4%,说明方法可靠.氢氧稳定同位素对于研究区域水文过程有着重要的作用,在今后呼伦湖流域水文研究中有着更加广泛的应用空间.  相似文献   

10.
本文讨论了新疆温泉县泥火山喷出水的化学特征。于2012年10月~2014年6月测量了温泉县泥火山喷发水、明目泉泉水及附近河水的化学组分(K+、Na+、Ca2+、Mg2+、F-、Cl-、SO2-4、HCO-3♂和CO2-3)和温泉县泥火山喷发水的氢氧同位素组成(δD和δ18O)。结果表明,该泥火山喷发水的化学类型为Na-HCO3SO4,δ18O-δD值小幅度偏离大气降水线,主要形成于大气降水顺断裂或裂隙深循环过程中与围岩的水岩作用;泥火山离子浓度较高,变化幅度低于5%,背景值稳定,可作为区域地震地球化学监测的对象。  相似文献   

11.
西藏羊卓雍错流域水体水质评价及主要污染因子   总被引:4,自引:1,他引:3  
者萌  张雪芹  孙瑞  汪步惟 《湖泊科学》2016,28(2):287-294
水质是流域生态系统的重要指标,水质评价则是开展流域水体污染防治等工作的基础.基于2010-2014年羊卓雍错流域湖泊、河流水质及2012-2014年流域居民饮用井水、自来水水质监测资料,结合单因子污染评价法和内梅罗污染指数法,对流域水质现状进行分析和评价.结果表明,12处地表水体中,羊卓雍错和巴纠错受中度污染,其他水体清洁或尚清洁,硒及氟化物为主要污染因子;9处居民饮用水体中,自来水水质明显好于井水,但也仅有3处自来水达清洁标准,硒、铝及硝酸盐为主要超标项.污染因子通过水-土-植被-动物系统破坏流域生态环境、阻碍农业生产发展,并直接或间接影响人类身体健康.因此,必须做好流域环境的综合整治、控制农业面源污染、完善饮用水基础设施建设,同时继续加强水质监测.  相似文献   

12.
2009年环太湖入出湖河流水量及污染负荷通量   总被引:23,自引:8,他引:15  
通过对2009年环太湖水文巡测及同步水质监测数据整理,得到2009年环太湖河流入出湖水量以及污染负荷,并将之与前期文献资料数据进行对比.结果表明,2009年环太湖河道入出湖水量分别为88.40×108 m3、93.27×108m3.入湖水量超过5×108m3的依次为陈东港、大浦港、梁溪河、太滆运河、望虞河.出湖水量最大...  相似文献   

13.
冉蛟  肖克彦  向蓉  郑丙辉 《湖泊科学》2023,35(6):1960-1969
邛海是云贵高原水域面积>25 km2的11个天然湖泊之一。基于邛海入湖河流与湖区水质监测数据,揭示入湖河流水质特征,并探究其湖区响应。结果表明:2021年,邛海入湖河流水质空间异质性显著,且分为自然型、农业型和城镇型3种类型河流。官坝河等3条自然型河流水质优良,而高仓河等8条城镇型和农业型河流(R4~R11)水质较差,污染物浓度超标严重。2011—2021年,邛海主要入湖河流(官坝河、鹅掌河、小青河)的营养盐浓度呈下降或先增加后下降趋势,水质逐渐改善。流域土地利用变化是导致邛海入湖河流水质空间异质性的主要因素,同时也是河流水质在2011—2021年改善的原因之一。受湖泊水文环境与入湖河流污染类型影响,2017—2021年邛海湖区水环境及其与河流水质响应关系差异性明显:高枧湾水域(L5)水深浅、水环境容量小,主要受纳城镇污水,因而湖区营养盐与叶绿素a浓度高,在2021年达富营养状态;官坝河、鹅掌河与小青河入湖影响区(L1~L3)与小渔村(L4)水域湖水深、水环境容量大,污染物浓度与营养状态指数低,但因汇入的河流污染类型不同,湖区营养水平与河流水质响应存在季节性...  相似文献   

14.
The Sanchahe River in southwest China is a tributary of the Wujiang River and experiences high erosion rates. Geochemical analysis was conducted on Sanchahe River basin samples collected in the wet and dry seasons of 2014 in order to better understand local chemical weathering processes, anthropogenic influences, and associated CO2 consumption. The samples' total dissolved solid concentrations were found to be significantly higher than that of the global river average. Ca2+was the dominant cation in the samples and accounted for 64 % and73 % of the total cations in the dry and wet seasons,respectively. HCO3-and SO42-were the dominant anions,accounting for 92 % of the total anions. Stoichiometry analyses of the river waters suggested that the water chemistry is controlled by carbonate dissolution by both carbonic and sulfuric acid. The chemical weathering rates of carbonate and silicate evaporites in the Sanchahe River basin were estimated to be approximately 109.2 and 11.0 t/(km2a), respectively, much higher than both the global mean values and the Wujiang River, a typical karstic river.The CO2 consumption by carbonate and silicate weathering are estimated to be 597.4 9 103 and 325.5 9 103mol/(km2a), which are much higher than corresponding values in the Wujiang River, indicating a high erosion rate in the Sanchahe River basin.  相似文献   

15.
Jun Xiao  Fei Zhang  Zhangdong Jin 《水文研究》2016,30(25):4855-4869
Hydrochemistry methods were used to decipher the weathering and geochemical processes controlling solute acquisition of river waters in the dry season in the middle Loess Plateau (MLP), one of the most severely eroded areas and turbid riverine systems in the world. River waters were neutral to slightly alkaline with pH varying from 7.6 to 9.6. The total dissolved solids decreased from northwest to southeast with a mean value of 804 mg/l, much higher than the global average and other large rivers in China. Ternary diagram showed that river waters were dominated by Na+, HCO3?, and Cl? with the main water‐type of HCO3?–Cl?–Na+. Saturation index values, Mg2+, Ca2+, and HCO3? analyses indicated the preferential Ca2+ removal by calcite precipitation. Gibbs plots and stoichiometry plots indicated that the dissolved solutes were mainly derived from rock weathering with minor anthropogenic and atmospheric inputs. Samples in the northwestern basin are also influenced by evaporation. A forward model of mass budget calculation showed that, owing to high soluble characteristics, evaporite dissolution was a major feature of river waters and contributed 41% to the total dissolved cations on average, while carbonate and silicate weathering contributed 28%,and 25% on average, respectively. Besides evaporite dissolution, cation exchange is also responsible for the high concentrations of Na+ in river water. Spatial variations showed that evaporite dissolution and silicate weathering were higher in the northern basin, whereas carbonate weathering was higher in the southern basin. Different from most rivers in the world, the physical erosion rates (varying from 117.7 to 4116.6 t/km2y) are much higher than the chemical weathering rates (varying from 3.54 to 6.76 t/km2y) in the MLP because of the loose structure of loess and poor vegetation in the basin. In the future, studies on comparison of water geochemistry in different seasons and on influence of different types of land use and soil salinization on water geochemistry, denudation rates, and water quality should be strengthened in the MLP. These results shed some lights on processes responsible for modern loess weathering and also indicate the importance of time‐series sampling strategy for river water chemistry. Copyright © 2016 John Wiley & Sons, Ltd.  相似文献   

16.
Strontium (Sr) concentrations and isotopic ratios have been measured in a series of water and rock samples from most of the major tributaries of the Lake Qinghai basin on the north‐eastern Tibetan Plateau. Dissolved Sr and 87Sr/86Sr show ranges of 488–12 240 nmol/l and 0·710497–0·716977, respectively. These data, together with measurements of major cations and anions in rivers and their tributaries and various lithologies of the catchment, were used to determine the contributions of Sr and its isotopic expense to rivers and lakes. Our results demonstrate that the chemical components and 87Sr/86Sr ratios of the alkaline waters are derived from mixing of carbonate and silicate sources, with the former contributing 72 ± 18% dissolved Sr to rivers. The difference in tributary compositions stems from the lithology of different river systems and low weathering intensity under a semi‐arid condition. Variation in 87Sr/86Sr ratios places constraint on the Sr‐isotopic compositions of the main tributaries surrounding Lake Qinghai. The water chemistry of the Buha River, the largest river within the catchment underlain by the late Paleozoic marine limestone and sandstones, dominates Sr isotopic composition of the lake water, being buffered by the waters from the other rivers and probably by groundwater. However, the characteristic chemical composition of the lake itself differs remarkably from the rivers, which can be attributed to precipitation of authigenic carbonates (low‐magnesium calcite, aragonite, and dolomite), though this does not impact the Sr isotope signature, which may remain a faithful indicator in paleo‐records. Regarding the potential role of groundwater input within the Lake Qinghai systems in the water budget and water chemistry, we have also determined the Sr concentration and 87Sr/S6Sr ratio of groundwater from diverse environments. This has allowed us to further constrain the Sr isotope systematic of this source. A steady‐state calculation gives an estimate for the groundwater flux of 0·19 ± 0·03 × 108 m3/yr, accounting for about 8% of contemporary lake Sr budget. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

17.
新疆博斯腾湖水盐变化及其影响因素探讨   总被引:16,自引:5,他引:11  
李卫红  袁磊 《湖泊科学》2002,14(3):223-227
在博斯腾湖水文和水化学实测资料的基础上,研究了博斯腾湖水盐的年际和年内变化。近40年来,水质年际变化经历了好→中→差→中的过程;年内变化与区内最大补给源开都河不同季节河流来水量变化以及湖周农田排盐水等因素直接相关,而湖水的矿化度与水位变化呈负相关。对湖水主要离子含量变化特点和湖区矿化度变化规律的研究表明,湖水补给源及湖水循环状况是影响湖水水质变化的主要因素。  相似文献   

18.
The paper presents a new approach to calculating the erosion and deposition values of floodplain lake basins, the erosion–deposition index (EDI). The EDI is a sum of the basin geometry indices (BGIs), which can be calculated for a separate cross section of the lake. The distribution of processes within the basin was investigated in two selected floodplain lakes with the use of BGIs. Field research was carried out in the Bug River valley from 1 November 2006 to 31 October 2011. The highest erosion was observed in the lakes located close to the parent river. Deposition processes were observed in lakes with high inflow of groundwater. The results showed that EDI values of 48 out of the 71 floodplain lakes ranged from ?0.2 to 0.2. Spatial distribution of erosion and deposition processes within the lake basins resulted from a velocity of water inflowing or flowing through the basin. This was observed especially in contrafluent–confluent lake. Inflow of rivers water via upstream crevasse occurred later than via downstream one, but energy of flowing water was higher, which favoured erosion of this part of the lake basin. Copyright © 2013 John Wiley & Sons, Ltd.  相似文献   

19.
Abstract

A time series survey was carried out in 2002 to understand the hydrogeochemical processes taking place in the Achankovil River of the Western Ghats Range. The water is neutral with pH and EC ranges from 6.32 to 7.56 and 24–54 µS cm?1, respectively. Chloride and sodium are the dominant anion and cation in the water respectively. Correlation analysis of the chemical parameters of the water shows that few ions have additional sources. The majority of carbonate is derived from carbonate weathering followed by silicate weathering. Cation concentrations show decreasing trend from upstream to downstream in contrast to the increasing trend in the major world rivers. Dissolved silica in pre-monsoon water is low. The river chemistry is dominated by rock weathering induced by precipitation. Thermodynamic plots show that dolomite, kaolinite, albite and chlorite are in equilibrium with the river water. Chemical weathering is predominant here compared to physical weathering. The overall material transport seems to be lower compared to the other Indian rivers; nevertheless, the solute loads are comparable to certain large rivers such as the River Cauvery in southern India. The solute flux including the nutrient flux is very high among the Western Ghats rivers in relation to its size, which will certainly supplement the productivity of the lake/estuary and the coastal waters. Since this study is restricted to a one-year period, long-term data procurement and analysis along with micro nutrients studies are needed, which are lacking in the present study, to gain insight into the material flux by this river into the Arabian Sea.  相似文献   

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