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1.
孙双来  胡景鹏  何平 《地下水》2010,32(1):113-114
氟化物是水质的毒理学指标,生活饮用水标准中氟化物不能大于1.0mg/L,由于水文地质原因,一些地区地下水氟化物严重超标,部分高氟地区氟化物达到5.0mg/L以上,给当地居民安全引水带来很大困难,通过对国内外高氟水的降氟调查研究,提出无论采取哪种方法降氟,均可采用饮水和生活用水分质提供方案,投入相对较少资金,对专用饮水进行降氟处理。  相似文献   

2.
大荔县为地方性氟中毒病高发区,主要因长期饮用氟含量高的地下水所致。通过分析大荔县269件地下水样品中氟含量,查明地下水氟含量为0.01~11.8mg/L,均值为1.91mg/L,氟含量高于1.0mg/L的水样样本达70.6%。调查分析发现,大荔县地下水氟含量在空间分布上具有北高南低的特征,富集最严重的区域出现在渭河二、三级阶地的东端,高氟地下水区域占到全区总面积的63%。大荔县丰富的氟源、特定的地形地貌、干燥的气候环境以及缓慢的地下水力更替过程是造成地下水中氟富集的主要因素。  相似文献   

3.
刘俊龙  王广才  孟炜 《地下水》2010,32(1):129-130
以南皮县寨子镇联村集中供水工程安装50m^3/h大型火山岩分子筛吸附降氟设备,使原来含氟量5.8mg/L的水通过降氟措施,降为0.6~0.7mg/L,群众饮用上安全水。并对降氟改水工艺、制水成本、供水模式及管理办法进行概括总结。  相似文献   

4.
刘春华  王威  卫政润  尚浩  张卓 《地球学报》2018,39(3):351-357
依据2006—2016年间采集的区内475件地下水无机分析数据以及钻探岩心易溶盐测试数据,详细研究了微山湖流域高氟地下水的分布特征和富集机制。结果表明:微山湖流域高氟地下水的分布有明显的东西分区特征,湖西冲积、湖积平原区有大范围的高氟地下水,在深度0—40 m的浅层孔隙地下水中,氟含量以1~2 mg/L为主,仅现代黄河影响带地下水氟含量小于1 mg/L,金乡、单县、嘉祥局部超过3 mg/L,最大值9.5 mg/L;在深度150—400 m的深层孔隙地下水中,氟含量以1~1.5 mg/L为主,菏泽—单县条带氟含量超过2 mg/L,最大值3.5 mg/L。微山湖东冲积、洪积平原浅层孔隙地下水、深层岩溶地下水氟含量均小于1 mg/L。湖西冲积、湖积平原沉积物中可溶性氟含量随深度增加而降低。微山湖流域湖西高氟地下水形成受物质来源、淋滤和蒸发浓缩等三方面因素共同控制,CaF_2的溶解平衡是控制地下水F–含量的重要因素。  相似文献   

5.
活性氧化铝除氟性能的试验研究   总被引:1,自引:0,他引:1  
通过静态试验,研究了活性氧化铝对F-的吸附性能,分析了原水氟离子浓度、pH值、活性氧化铝的投加量和吸附时间对吸附性能的影响。研究结果表明:在原水浓度0~50mg/L范围内,活性氧化铝吸附量与原水浓度基本成线性增加的关系;活性氧化铝除氟的最佳pH值为5~7,最佳投加量为10g/L。测定了在25℃时活性氧化铝除氟的吸附等温线,并对吸附等温线进行拟合,证明其符合Langmuir吸附等温式。  相似文献   

6.
本文对印度拉贾斯坦邦北部以地下水为主要饮用水源的一些乡村进行了地下水氟化物污染评价。分析了利用手压泵从深含水层采集的水样的氟化物含量。目前,研究区内记录在案的氟化物的浓度范围为1.01m4.78mg/L。研究区地下水中氟化物的平均浓度为2.82mg/L。根据世界卫生组织(WHO)或者印度标准办公署制定的饮用水中氟化物的期望浓度(desirable limit)和最大容许浓度,研究区内约95%的地下水不适于饮用。在研究区,由于饮用水中氟化物的浓度很高,目前氟斑牙和氟骨征患者正以惊人的速率增长。在印度最北部的哈努芒加尔县的中部和东部地区,由于地下水中氟化物的浓度相对较高(3-4mg/L),因此,可把这些地区列为氟中毒高风险地区。对本项研究所得数据进行评价后得出结论,在研究区采取改良措施来预防居民氟中毒刻不容缓。  相似文献   

7.
内蒙古苏尼特地下水氟污染形成机理研究   总被引:4,自引:1,他引:3  
为了研究内蒙古苏尼特地区地下水氟污染机理,本文运用水文地球化学分类方法,从水文地质、水化学特征两方面研究其地下水的水质特征、氟的起源、分布规律及污染形成机理。研究结果发现:高氟地下水的主要水质类型为HCO3—Na型,pH值在7.08~9.38之间,氟浓度与井深有关,即井越浅,氟浓度越高;地下水中氟浓度最高达14.78mg/L,5~9月地下水氟浓度相对增长率在7.8~23.1之间;F-浓度与Li+、Br-相关系数达0.89和0.82,受断层影响的深层地下水中F-浓度几乎与Li+、Br-没有相关关系,这暗示着氟来源于浅部,并受到强烈的蒸发作用影响而使水中的氟浓缩;地质调查发现该地区还有数个萤石矿存在,显微镜分析结果证实表层土壤中普遍存在CaF2,地下水中的氟来自CaF2。高氟地下水存在于潜水层,深部含水层的地下水可供开采。从断层带涌出的水对潜水层有稀释作用。  相似文献   

8.
松嫩平原氟中毒区地下水氟分布规律和成因研究   总被引:6,自引:0,他引:6       下载免费PDF全文
自中新生代以来,在松嫩平原巨大的断陷盆地内沉积了巨厚的古近-新近系和第四系沉积物,形成了由潜水和承压水组成的大型蓄水构造。该区潜水和第四系承压水氟含量较高,在194个样品中,氟的均值为3.45mg/L,范围值为0.25~14mg/L。饮用高氟地下水导致氟中毒大规范流行。研究表明高氟地下水主要分布在山前补给区-蒸发排泄区的过渡带和盆地中部地下水强烈蒸发带,地下水化学类型为HCO3-Na·Mg和HCO3-Cl·Na型,总溶解性固体含量为689.84~2005.6mg/L。高氟水的形成与气候、水文、地质构造、岩石与土壤、水文地质和水化学条件等自然因素有关,同时受不合理开采地下水等人为因素的影响。开展氟病区地下水环境特征和高氟水成因研究对于有效实施安全供水有重要意义。  相似文献   

9.
浅层高氟地下水元素的组分存在形式与地方性氟病之关系   总被引:4,自引:0,他引:4  
对邢台山前平原浅层高氟地下水中F,Ca,Mg的组分存在形式与地方性氟病患病率之相关性研究结果表明,F,Ca,Mg元素对地方性氟病之影响不仅取决于F,Ca,Mg的总浓度,而且与各种元素在地下水中的组分存在形式密切相关。元素的给分存在形式不同,对地方性氟病的影响不也不。根据患病率与aMgF^+成正相关,与aF^-/aMgF^+成负相关,以及浅层高氟地下水中MgF^+活度高的异常情况可以说明MgF^+对  相似文献   

10.
阜阳高氟地下水形成的地质环境浅析   总被引:7,自引:0,他引:7  
蔡珩 《地下水》1999,21(3):129-132
阜阳市松散岩土含水系统广泛赋存着高氟地下水,氟含量一般在1.0~3.80mg/l最高可达6.90mg/l,本文通过对高氟地下水赋存的地质环境及地球化学特征等综合分析,认为本区高氟水的形成与其赋存的地球化学环境及水动力条件密切相关。  相似文献   

11.
The groundwaters from Zhongxiang City, Hubei Province of central China, have high fluoride concentration up to 3.67 mg/L, and cases of dental fluorosis have been found in this region. To delineate the nature and extent of high fluoride groundwaters and to assess the major geochemical factors controlling the fluoride enrichment in groundwater, 14 groundwater samples and 5 Quaternary sediment samples were collected and their chemistry were determined in this study. Some water samples from fissured hard rock aquifers and Quaternary aquifers have high fluoride concentrations, whereas all karst water samples contain fluoride less than 1.5 mg/L due to their high Ca/Na ratios. For the high fluoride groundwaters in the fissured hard rocks, high HCO3 concentration and alkaline condition favor dissolution of fluorite and anion exchange between OH in groundwater and exchangeable F in some fluoride-bearing minerals. For fluoride enrichment in groundwaters of Quaternary aquifers, high contents of fluoride in the aquifer sediments and evapotranspiration are important controls.  相似文献   

12.
More and more data indicated that high- or low-fluoride-bearing drinking water led to endemic diseases in which fluoride poisoning was caused by high levels of fluoride (fluoride ion content >1.0 mg/I) in drinking water. Fluoride poisoning in North China is characterized by pathological changes of bones and teeth. Much attention has been devoted to the study of fluoride-bearing groundwater in North China because regionally groundwater has been the main source of water supply, and fluoride poisoning has developed to the extent that it affects human health seriously. Results from the studies in North China summarized in this article indicate that regional high-fluoride-bearing groundwater has a regular distribution corresponding with the development of endemic fluoride poisoning and has something to do with paleogeographic and paleoclimatic conditions, geology, and hydrogeology, especially with types of hydrogeochemistry, pH value of groundwater, degree of mineralization, and so forth. High-fluoride-bearing groundwater in relation to fluorosis occurs mainly in North China, and many effective measures have been taken to reduce the fluoride content in drinking water and to cure the disease after analyzing the distribution and environmental characteristics of high-fluoride-bearing groundwater.  相似文献   

13.
A total of 194 groundwater samples were collected from wells in hard rock aquifers of the Medak district, South India, to assess the distribution of fluoride in groundwater and to determine whether this chemical constituent was likely to be causing adverse health effects on groundwater user in the region. The study revealed that the fluoride concentration in groundwater ranged between 0.2 and 7.4 mg/L with an average concentration of 2.7 mg/L. About 57% of groundwater tested has fluoride concentrations more than the maximum permissible limit of 1.5 mg/L. The highest concentrations of fluoride were measured in groundwater in the north-eastern part of the Medak region especially in the Siddipeta, Chinnakodur, Nanganoor and Dubhaka regions. The areas are underlain by granites which contain fluoride-bearing minerals like apatite and biotite. Due to water–rock interactions, the fluoride has become enriched in groundwater due to the weathering and leaching of fluoride-bearing minerals. The pH and bicarbonate concentrations of the groundwater are varied from 6.6 to 8.8 and 18 to 527 mg/L, respectively. High fluoride concentration in the groundwater of the study area is observed when pH and the bicarbonate concentration are high. Data plotted in Gibbs diagram show that all groundwater samples fall under rock weathering dominance group with a trend towards the evaporation dominance category. An assessment of the chemical composition of groundwater reveals that most of the groundwater samples have compositions of Ca2+–Mg2+–Cl? > Ca2+–Na+–HCO3 ? > Ca2+–HCO3 ? > Na+–HCO3 ?. This suggests that the characteristics of the groundwater flow regime, long residence time and the extent of groundwater interaction with rocks are the major factors that influence the concentration of fluoride. It is advised not to utilize the groundwater for drinking purpose in the areas delineated, and they should depend on alternate safe source.  相似文献   

14.
Geochemical study of groundwater from 58 selected fluoride-rich areas in different parts of India that includes eight states indicates that: 1. These groundwaters are alkaline in pH (7.4-8.8) and their electrical conductivity varies from 530-2,680 µS/cm and fluoride concentration from 1.7-6.1 mg/l. Presence of fluoride-bearing minerals in the host rocks and their interaction with water is considered to be the main cause for fluoride in groundwater. 2. The decomposition, dissociation and dissolution are the main chemical processes for the occurrence of fluoride in groundwater. During rock-water interaction, concentration of fluoride in rock, aqueous ionic species and residence time of interaction, etc. are also important parameters. 3. This study indicates that 85% groundwater samples have EC: 1,000-2,000 µS/cm, pH: 7.5-8.5, and HCO3/Ca (epm ratio): 0.8-2.3. 4. The Ca and HCO3 contents of groundwater samples have shown good correlation with fluoride.  相似文献   

15.
Fluoride in drinking water has both beneficial and detrimental effects on public health, and a narrow range between .6 and 1.5 mg/L is optimal for consumption. However, natural groundwater sources exceed these guidelines affecting the entire population. This study aims to assess the distribution and controlling factors of fluoride concentration in the Tamiraparani River basin, South India. A total of 124 groundwater samples were analyzed for their fluoride content and other hydrogeochemical parameters. The fluoride concentration in the study area varied from .01 to 1.67 mg/L, and the highest concentrations were measured in the northern and central parts of the study area, which is underlain by charnockites and hornblende biotite gneiss. The sampling indicated (as per the Bureau of Indian Standards) that 53.9% of the area has fluoride concentrations below levels that are protective of teeth from dental caries (<.6 mg/L). .1% of the area is considered to be at risk of dental fluorosis, and the remaining 46% of the area is considered to have fluoride levels at desirable to permissible limit in groundwater. The groundwater in the study area belongs to Ca–Mg–Cl–SO4 and Ca–Mg–HCO3 types. A positive correlation between fluoride and TDS, Na+, K+ and HCO3 ? indicates its geogenic origin, and positive loading between pH and fluoride shows that alkaline environment enhances the dissolution of fluoride-bearing minerals into the groundwater. An empirical Bayesian kriging model was applied to interpolate the fluoride concentration in the study area. This geostatistical model is found to be better than other kriging methods, and it yielded an average standard error of .332 and root-mean-square standardized value of .986.  相似文献   

16.
The occurrence of dental/skeletal fluorosis among the people in the study area provided the motivation to assess the distribution, severity and impact of fluoride contamination in groundwater of Bankura district at Simlapal block, West Bengal, India. To meet the desired objective, groundwater samples were collected from different locations of Laxmisagar, Machatora and Kusumkanali regions of Simlapal block at different depths of tube wells in both pre- and post-monsoon seasons. Geochemical results reveal that the groundwaters are mostly moderate- to hard-water type. Of total groundwater samples, 37% are situated mainly in relatively higher elevated region containing fluoride above 1.5 mg/L, indicating that host aquifers are severely affected by fluoride contamination. Machatora region is highly affected by fluoride contamination with maximum elevated concentration of 12.2 mg/L. Several symptoms of fluorosis among the different age-groups of people in Laxmisagar and Machatora areas are indicating consumption of fluoridated water for prolonged period. The groundwater samples were mainly Na–Ca–HCO3 type and rock dominance indicating the dissolution of minerals taking place. Ion exchange between OH? ion and F? ion present in fluoride-bearing mineral is the most dominant mechanism of fluoride leaching. High concentration of Na+ and HCO3 ? increases the alkalinity of the water, providing a favorable condition for fluoride to leach into groundwater from its host rocks and minerals.  相似文献   

17.
大同盆地高氟地下水水化学特征及其成因   总被引:4,自引:0,他引:4  
为查明控制大同盆地高氟地下水形成的主要地球化学过程,对大同盆地地下水高氟区31个水样进行了水化学特征及因子分析研究.结果表明,研究区浅层和深层地下水中均检测出氟,且氟含量高,最大ρ(F)达10.37 mg/L.该区高氟地下水以Na-HCO3型水为主,具有典型的富Na特征.PHREEQC饱和指数计算结果表明,地下水中萤石为不饱和状态,地下水中ρ(F)主要受到萤石溶解影响.因子分析研究表明,水一岩相互作用、碳酸盐矿物溶解沉淀及Na- Ca离子交换作用是控制大同盆地地下水氟富集的主要水化学过程.  相似文献   

18.
天然成因的高氟地下水是世界范围内备受关注的环境问题和饮用水安全问题。前人对高氟地下水的形成过程已开展了大量研究,但是对于高原盆地复杂水文地质条件下不同类型含水层组(第四系松散层含水层、基岩裂隙或岩溶含水层以及新生代古近纪以来的碎屑岩含水层)高氟地下水的分布和形成过程尚不明确。本文以化隆—循化盆地为研究区,通过采集、测试研究区内的各类地下水样品,分析研究区内不同类型含水层中地下水的化学特征及同位素特征。结果表明,高氟地下水(1.007.73 mg/L)主要分布在沿黄河的河谷区域和巴燕低山丘陵区域的泉水和潜水中以及深部的承压水中,在垂向上高氟地下水无明显分布规律。接受黄河水入渗补给的河谷潜水中氟离子浓度较低,补给黄河的河谷潜水中氟离子浓度较高。贫钙富钠的弱碱性苏打型水有利于地下水中氟的富集。泉水和潜水中氟主要来源于萤石的溶解,而承压水中氟除了来源于萤石外,还来源于其他含氟矿物。对于潜水和第四系松散层泉水,蒸发浓缩作用促进了地下水中氟的富集。另外,阴离子竞争吸附作用、阳离子交换吸附作用是泉水(第四系松散层泉水和基岩裂隙泉水)和潜水中氟元素富集的主要原因,而承压水中氟离子浓度受竞争吸附作用影响较大,阳离子交换吸附作用影响较小。研究成果可为化隆—循化盆地低氟地下水的勘查和开发提供科学依据。  相似文献   

19.
The study evaluated the sources and controlling factors of the groundwater contaminants in an agroeconomic region of Lower Ganga Basin using principal component analysis (PCA), multivariable linear regressions (MLR), correlation analysis, and hierarchical cluster analysis, and evaluated the public health risks using the Latin Hypercube Sampling, goodness-of-fit statistics, Monte Carlo simulation and Sobol sensitivity analysis based on the 1000 samples collected in two sampling cycles (N = 1000). The study reveals that the dissolution of fluoride-bearing minerals and semi-arid climate regulate the fluoride concentrations (0.10–18.25 mg/L) in groundwater. Extensive application of inorganic nitrogenous fertilizers and livestock manure mainly contributed to elevated nitrate levels (up to 435.0 mg/L) in groundwater. The health risks analysis indicates that fluoride exposure is more prevalent in the residents of each age group than the nitrate and both contaminants exhibited higher non-carcinogenic health risks on the infant and child (minor) age groups compared to adolescents and adults. Based on the cokriging interpolation mapping, the minor residents of 17.88%–23.15% of the total area (4545.0 km2) are vulnerable to methemoglobinemia whereas the residents of all age-groups in 38.47%–44.45% of the total area are susceptible to mild to severe dental/skeletal fluorosis owing to consumption of untreated nitrate and fluoride enriched groundwater. The Sobol sensitivity indices revealed contaminant levels, groundwater intake rate and their collective effects are the most influential factors to pose potential health risks on the residents. Artificial recharge and rainwater harvesting practices should be adopted to improve the groundwater quality and the residents are advised to drink purified groundwater.  相似文献   

20.
High fluoride and arsenic concentrations in groundwater have led to serious health problems to local inhabitants at Yuncheng basin, Northern China. In this study, groundwater with high fluoride and arsenic concentration at Yuncheng basin was investigated. A majority of the samples (over 60%) belong to HCO3 type water. The predominant water type for the shallow groundwater collected from southern and eastern mountain areas was Ca/Mg-Ca-HCO3 types. For the shallow groundwater from flow through and discharge area it is Na-HCO3/SO4-Cl/SO4/Cl type. The predominant water type for the intermediate and deep groundwater is of Na/Ca/Mg-Ca-HCO3 type. According to our field investigation, fluoride concentration in groundwater ranges between 0.31 and 14.2 mg/L, and arsenic concentration ranges between 0.243 and 153.7 μg/L. Out of seventy collected groundwater samples, there are 31 samples that exceed the World Health Organization (WHO) standard of 1.5 mg/L for fluoride, and 15 samples exceeds the WHO standard of 10 μg/L for arsenic. Over 40% of high fluoride and arsenic groundwater are related to the Na-HCO3 type water, and the other fifty percent associated with Na-SO4-Cl/HCO3-SO4-Cl type water; little relation was found in calcium bicarbonate type water. A moderate positive correlation between fluoride and arsenic with pH were found in this study. It is due to the pH-dependent adsorption characteristics of F and As onto the oxide surfaces in the sediments. The observed negative correlation between fluoride and calcium could stem from the dissolution equilibrium of fluorite. The high concentration of bicarbonate in groundwater can serve as a powerful competitor and lead to the enrichment of fluoride and arsenic in groundwater. Most of the groundwater with high fluoride or arsenic content has nitrate content about or over 10 mg/L which, together with the observed positive correlations between nitrate and fluoride/arsenic, are indicative of common source of manmade pollution and of prevailing condition of leaching in the study area.  相似文献   

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