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1.
亚热带地区典型水库流域氮、磷湿沉降及入湖贡献率估算   总被引:1,自引:0,他引:1  
为了探究汤浦水库流域氮、磷湿沉降对水库水体营养的贡献率,本研究对2014 2015年的汤浦水库流域4个采样点的雨水及3条溪流进行样品收集,测定其中磷和不同形态氮的质量浓度,分析汤浦水库流域大气湿沉降中氮、磷营养盐的分布特征,并估算氮、磷营养盐湿沉降对汤浦水库入库负荷的贡献率.结果表明:湿沉降中总氮(TN)平均浓度为1.02±0.58 mg/L,氨氮、硝态氮和有机氮浓度占TN浓度的比例分别为60.65%、34.07%和5.28%;总磷(TP)平均浓度为0.033±0.028 mg/L.4个采样点湿沉降中氮、磷浓度均表现为冬春季(少雨季)高、夏秋季(多雨季)低.空间上,王化点位的各形态氮和总磷浓度显著高于其他3个采样点.TN和TP年均湿沉降通量约为18.15和0.62 kg/(hm~2·a),年均沉降总量为834.94和28.39 t;库区TN和TP水面湿沉降量为24.14和0.82 t,直接贡献率占河流输入的1.77%和3.07%.湿沉降来源的氮、磷营养盐随河流输入的间接贡献率为8.3%和4.6%.综上所述,氮、磷湿沉降是水库外源营养的重要输入部分,深入掌握其时空分布特征及入库贡献率是进一步加强流域管理和减轻水库外源营养输入的重要前提.  相似文献   

2.
密云水库区域大气-土-水污染过程复合相关源   总被引:5,自引:1,他引:5  
采用密云水库15km处WMO区域空气污染本底站——上甸子站1990~2001年降水化学资料,并结合2002~2003年现场科学试验阶段获取的大气干沉降和湿沉降资料,从大气-土-水污染过程的复合相关源角度,综合分析了大气干、湿沉降以及白河沿岸农田、矿区和城镇污染源对密云水库的水质综合影响特征.分析结果表明,该时段密云水库区域大气降水中离子以SO42?,NO3?,NH4+和Ca2+为主;密云水库湿酸沉降量夏半年(4~9月)大于冬半年(10~3月),其年际变化呈上升趋势,年平均达1038.45t,最高年份(1996)达1766.31t,最低年份(1994)为604.02t;密云水库区域大气降水pH的多年平均值为5.20,降水呈弱酸性,pH值年际变化呈下降趋势.密云水库水体不同深层的pH值均大于7.0.pH值垂直和水平空间分布呈非均一性特征,同一区域pH值随水深呈下降趋势;2002年和2003年密云水库降尘量分别为13513.08t和3577.64t,春季降尘量为全年之首,分别占其全年的61.91%和44.56%.由于大气干、湿沉降中含有多种重金属元素及有害元素,它们可能在一定程度上对库水富营养化、潜在重金属污染以及库水酸化起“加剧”作用.上述综合分析结果揭示出密云水库区域大气-土-水污染过程复合相关源特征及其多圈层相互作用效应.另外,夏季(雨季)是局地土壤污染源由于受暴雨或强降水冲刷后通过入库水系山谷坡地汇流,引起区域性大气-土-水连锁污染过程,导致水库或河流水质污染.统计分析亦发现密云水库水质污染可能与水库周边及上游局部区域降水冲刷和汇流因素相关.水库污染物浓度变化与水库上游局地区域降水量呈较显著的相关,这些相关特征揭示了水库水质污染过程大气-土-水多圈层相互作用效应.提出了水库污染复合相关源分析法观点及其追踪入库水系上游污染源空间分布技术途径.  相似文献   

3.
云南阳宗海大气氮、磷沉降特征   总被引:1,自引:0,他引:1  
大气氮、磷沉降是湖泊水体氮、磷入湖的重要途径之一.为了解阳宗海氮、磷沉降对湖泊富营养化的潜在影响,于2012年5月-2014年4月通过监测阳宗海大气氮、磷沉降,估算氮、磷的大气沉降通量,揭示阳宗海大气氮、磷沉降随时间变化的特征,分析其来源、影响因素等.由于阳宗海是磷限制湖泊,本研究在估算大气氮、磷沉降通量的基础上,特别比较了大气磷沉降入湖量与非点源磷的入湖量,以此评估大气沉降输入磷对湖泊富营养化的潜在影响.研究结果表明:阳宗海总氮年平均沉降通量为248 mg/m~2,春、夏、秋和冬季平均分别为200、306、274和214 mg/m~2,其中夏季沉降通量最大,原因与降雨量增加有关;总磷年平均沉降通量为24 mg/m~2,春、夏、秋和冬季平均分别为18、31、19和27 mg/m~2.大气磷沉降与输入阳宗海的总磷量相比很小,对阳宗海富营养化影响较小.  相似文献   

4.
广州麓湖大气多环芳烃的干湿沉降   总被引:8,自引:2,他引:6  
以广州麓湖为小型城市湖泊的代表,对大气中多环芳烃的颗粒态沉降进行了连续一年的采样与分析. 结果表明,年均颗粒态多环芳烃的沉降通量为0.47mg/( m2·a). 全年直接由大气输入到麓湖的颗粒态多环芳烃总量约为0.1kg. 不同季节相比,夏季多环芳烃的沉降通量略高于秋季,而冬春季最高. 对比大气总悬浮颗粒物中多环芳烃的组成发现,当降雨量增大时,沉降颗粒物中多环芳烃的组成逐渐趋近于大气总悬浮物中多环芳烃的组成. 广州地区雨热同期、干冷咸至的季风气候特点,以及由此导致的大气颗粒物粒径变化和PAHs的气-粒分配变化,与大气PAHs污染程度一起,共同控制着沉降颗粒物中PAHs相对组成的季节变化.  相似文献   

5.
太湖梅梁湾上空颗粒态磷浓度2003年春季的变化   总被引:1,自引:1,他引:0  
太湖水体氮磷营养盐的研究比较多,但对大气营养物质的输入研究方面仍鲜有报道.通过定期采集太湖梅梁湾地区上空颗粒物,测定颗粒中各种形态磷(可溶性无机磷、有机磷、难溶性磷)浓度,探讨大气磷输入对梅梁湾水质的磷的贡献.结果表明2003年春季梅梁湾上空平均颗粒态磷浓度分别为0.157μg/m3,其中水溶性无机磷的含量在15.6%-51.0%.最后估算了春季大气总磷输入量,春季两次采样周期中大气磷沉降通量相差不大.进一步估算了大气总磷的沉降通量最大为0.57kg(hm2·a)(6.84t/a),显示大气沉降对太湖水体的影响.  相似文献   

6.
乌梁素海大气重金属沉降入湖通量初步估算   总被引:1,自引:1,他引:0  
重金属元素以大气颗粒物为载体,最终以沉降的方式进入湖泊水体,会引起湖泊的重金属污染.为调查大气沉降对乌梁素海重金属污染的贡献,于2013年7月1日至30日围绕乌梁素海进行大气沉降样品采集,分别测定Cu、Zn、Pb、Cd、Cr、Hg、As 7种重金属元素的含量,并在此基础上估算7月大气重金属沉降通量及入湖量.结果表明,乌梁素海重金属元素大气沉降通量大小依次为:ZnPbCuCrAsHgCd.结合社会调查情况及数据分析显示,大气微粒携带重金属借助风力迁移,较大的沉降通量出现在主风向的下风向区域,说明风向是影响乌梁素海大气重金属沉降通量的主要因素之一.排干输入与大气沉降方式下的乌梁素海重金属入湖量比较发现,大气沉降是除排干输入外湖泊的另一重要重金属污染源.Zn、Pb、Cu、Cr、As、Hg、Cd等重金属元素月入湖量分别为10.6、1.04、1.02、0.833、0.342、0.00514、0.00281t/月.通过估算底泥重金属增量来评价大气沉降对湖泊重金属的贡献表明,大气Hg、Zn、Pb、Cu、As、Cd、Cr等重金属沉降对湖泊贡献率分别为46.4%、44.7%、14.1%、12.0%、8.48%、4.75%、4.03%.  相似文献   

7.
张晨  宋迪迪  廉铁辉 《湖泊科学》2020,32(2):370-379
2014年南水北调中线一期工程通水后,天津市的水源结构发生变化,由单一滦河水源变为双水源.引水结构变化导致于桥水库入库水量变化,从而影响水库的总磷(TP)滞留.一般认为,入库总磷负荷随入库水量减少而降低,且水力停留时间越长,将越有利于总磷滞留,从而水库TP浓度降低.但根据统计数据发现,南水北调通水后于桥水库入库水量降低,TP负荷反而升高,水库TP浓度升高.何种TP滞留机制造成了这样的结果?本文通过分析2001-2018年间入库水量(W_(IN))、入库总磷负荷(TPL_(IN))在南水北调通水前后的变化规律,采用Vollenweider模型推求水库TP浓度和磷滞留量(R_P),探讨水力停留时间(T)对库区总磷滞留量的影响机制,并估算双水源新情势下控制于桥水库磷滞留量的生态水量.结果表明:TPL_(IN)随W_(IN)呈先降低后升高趋势;引水期τ与R_P之间存在显著的正相关关系,随着τ增加,正相关性下降,但同时考虑非引水期和引水期τ时,R_P受较小的TPL_(IN)影响与τ呈负相关.根据上述关系推算,在双水源新情势下,为保持于桥水库中贫营养状态,控制磷滞留量为南水北调通水前水平,建议每年入库生态水量大于5亿m~3,出库生态水量约为入库水量的80%,配合新建前置库工程运行将有效保障水库水源功能.  相似文献   

8.
江西省万安水库对氮、磷营养盐的滞留效应   总被引:6,自引:0,他引:6  
以江西省万安水库为研究对象,于2007-2009年丰、枯水期对水库进行了人库、出库水样采集,研究了万安水库对氮、磷营养盐的滞留效应.结果表明,万安水库对氮、磷营养盐存在显著滞留作用.DIN浓度和输送通量整体均表现为入库>出库,受径流量季节变化的影响.不同时期DIN的滞留情况整体表现为枯水期<丰水期;TP浓度和输送通量整...  相似文献   

9.
大气湿沉降向太湖水生生态系统输送氮的初步估算   总被引:30,自引:3,他引:27  
测定和分析了2002年7月至2003年6月太湖周边地区太湖站、拖山岛、东山站、无锡、苏州、湖州、常州等7个站点大气降水化学组成,计算了水气界面TN、NH4 -N、NO3--N、T1N、TON的湿沉降率。结果表明,大气降水的TN浓度变化范围为2.06±0.30(常州)-3.71±0.43(拖山岛),太湖流域大气降水已呈富营养化水质的特征;大气降水TN、NH4 -N、NO3--N、TIN、TON的年均湿沉降率分别为2806.75kg/km2、1458.81kg/km2、631.67kg/km2、2090.48kg/km2和716.28kg/km2;每年由湿沉降直接进入太湖水体的TN约为6562.2t,NH4 -N为3410.7t,NO3--N为1476.8t,TIN为4887.5t,TON为1674.7t;TN占入湖河道年输入污染物总量的13.6%.大气湿沉降中,TIN对TN的贡献比较大,平均约占TN的78.78%.TIN的湿沉降率具有季节性分布,夏季高,春季次之,冬秋季低。这种现象无疑对太湖水体的蓝藻爆发和富营养化具有潜在的促进作用.  相似文献   

10.
广东流溪河水库湖沼学变量的时空动态特征   总被引:16,自引:7,他引:9  
流溪河水库县位于北回归线上的大型山谷型水库,是一座典型的热带-亚热带过渡区水体.为了解该水库的特点,于2006年对水库的水文、营养盐状况及相关理化因子进行了逐月监测,对其主要的湖沼学变量的季节动态和空间分布进行了分析,探讨了湖沼学特征和生态过程的主要驱动因子.流溪河水库全年表层水温在14.9-31.6℃之间,水柱热分层开始于3月初,一直持续到12月,呈单循环混合模式.水库的水动力学主要受降水和水库用水的影响,2006年全年降雨量为2960mm,平均水力滞留时间长170d;降雨量集中在丰水期(4-9月),导致丰水期水力滞留时间短(65d),丰水期与枯水期水文水动力季节性差别显著,水文水动力学变化剧烈.2006年全年湖泊区的TN、TP、Chl.a、SD的平均值分别为0.66mg/L,0.016mg/L,2.2mg/m3,3.1m,指示该水库为贫中营养型水体.N/P的质量比为41:1,DIN/DIP的质量比为78:1,说明该水库浮游植物生长在强烈的磷限制性水体中,较高的N/P比是由流域中热带-亚热带红壤中营养盐组成特点所决定.营养盐、透明度和叶绿素a等变量的分布具有明显的时空异质性,丰水期初期(4-5月)营养盐浓度显著地高于其它月份,说明地表径流是输送营养盐入库的主要途径;沿入库河流至水库大坝方向,营养盐和Chl.a具有递减规律,即:河流区>过渡区>湖泊区.受季风的影响,丰水期的降水集中加上水库的本身形态是导致流溪河水库湖沼学特征呈显著的季节性和空间梯度的关键因素.  相似文献   

11.
The comprehensive impact of atmospheric dry deposition and wet deposition and the pollution sources of farmlands, mining areas, and towns along the Baihe River on the water quality of Miyun reservoir is investigated from the angle of the complex sources of air-soil-water pollution processes, in the context of the 1990-2001 precipitation chemical data at Shangdianzi station--a WMO regional background air pollution monitoring station 15 km far from the Miyun reservoir, in conjunction with the atmospheric dry deposition and wet deposition data of the 2002-2003 Beijing City Air Pollution Observation Field Experiment (BECAPEX). Analysis results suggest that the major ions in precipitation in the Miyun reservoir region in this period were SO, NO, NH and Ca2+; wet acid deposition quantity of Miyun reservoir in the summer half year (April to September) was greater than the quantity in the winter half year (October to March), and the annual wet acid deposition in the reservoir exhibited a rising trend with the mean 1038.45 t, the maximum 1766.31 t occurred in 1996, and the minimum 604.02 t in 1994; the long-term averaged pH of atmospheric precipitation in the Miyun reservoir region was 5.20, i.e. weakly acidic, and the interannual variation of pH values displayed a falling trend. pH values of water body at various depths in the Miyun reservoir were all greater than 7.0, but they exhibited vertical and horizontal nonhomogeneity, and at the same region pH decreased vertically with depth; the 2002 and 2003 annual dustfalls in the Miyun reservoir were 13513.08 t and 3577.64 t, respectively, and the spring dustfall was the number one in a year, accounting for the 61.91% and 44.56% of the annual totals of 2002 and 2003, respectively. Because the atmospheric dry deposition and wet depositions contain multiple types heavy metal elements and harmful elements, they to some extent exacerbated the eutrophication, acidification and potential heavy metal pollution of the reservoir water. The above comprehensive analysis results reveal the complex source characters of the air-soil-water pollution process and the multi-sphere interaction effect. Besides, summer (rainy season) is a season when local soil pollutants enter the water system of reservoir after being washed out by torrential rain or heavy precipitation, which starts the air-soil- water chaining pollution processes, and results in the water pollution of rivers and reservoirs. It is found from the statistical analysis in this paper that the water pollution of Miyun reservoir was correlated with the rain wash-out and confluent flow in the peripheral and upstream local region of the reservoir, and the pollutant concentration of the reservoir water was significantly correlated with the upstream local region precipitation. Those correlation characters reveal the effect of the air-soil-water multi-spheric interaction of reservoir water pollution process. This paper presents the point of view of the complex source analysis of reservoir water pollution and a technical approach for tracing the spatial distribution of the upstream pollution source of the water systems of reservoir.  相似文献   

12.
磷(P)是长江流域备受关注的污染物。乌江是长江八大支流之一,位于三峡水库近库尾江段。武隆断面是乌江入长江控制断面。对1998—2019时期武隆断面径流量、悬浮泥沙浓度(SS)与输沙量、磷浓度与通量(包括总磷(TP)、溶解态磷(DP)和颗粒态磷(PP))年际变化及季节特征进行研究,并基于河流基流分割原理对磷的来源进行了解析。结果表明,(1)1998—2019年,乌江武隆断面径流量在一定幅度内上下波动,而悬浮泥沙浓度和输沙量下降剧烈。(2)22年来,乌江TP和DP浓度与通量总体上呈先升高后下降的趋势,2009—2013年为磷污染峰值期,TP和DP浓度与通量远高于其它时期。(3)2007年是一个重要的时间节点,该节点前,TP的赋存形态以颗粒态为主,颗粒态磷在总磷中的占比均值为65%;该节点后,TP的赋存形态转变为以溶解态为主,颗粒态磷占比均值下降为16%,相应地,溶解态磷占比由35%上升为84%。水沙条件改变是磷形态发生显著变化的主要驱动力,磷污染程度亦是磷形态变化的重要影响因素。(4)磷通量在年内的季节分布发生了显著变化,丰水期磷通量减少,枯水期磷通量增加。(5)1998—2012、2009—2013和2014—2019年3个时期点源负荷占比分别为23.5%、36.8%和62.1%,呈增加趋势。(6)建议制定适宜的总磷控制目标,结合目前所存在的磷污染风险点,进一步强化监管,侧重源头治理。  相似文献   

13.
V. Hrissanthou 《水文研究》2006,20(18):3939-3952
The Yermasoyia Reservoir is located northeast of the town of Limassol, Cyprus. The storage capacity of the reservoir is 13·6 × 106 m3. The basin area of the Yermasoyia River, which feeds the reservoir, totals 122·5 km2. This study aims to estimate the mean annual deposition amount in the reservoir, which originates from the corresponding basin. For the estimate of the mean annual sediment inflow into the reservoir, two mathematical models are used alternatively. Each model consists of three submodels: a rainfall‐runoff submodel, a soil erosion submodel and a sediment transport submodel for streams. In the first model, the potential evapotranspiration is estimated for the rainfall‐runoff submodel, and the soil erosion submodel of Schmidt and the sediment transport submodel of Yang are used. In the second model, the actual evapotranspiration is estimated for the rainfall‐runoff submodel, and the soil erosion submodel of Poesen and the sediment transport submodel of Van Rijn are used. The deposition amount in the reservoir is estimated by means of the diagram of Brune, which delivers the trap efficiency of the reservoir. Daily rainfall data from three rainfall stations, and daily values of air temperature, relative air humidity and sunlight hours from a meteorological station for four years (1986–89) were available. The computed annual runoff volumes and mean annual soil erosion rate are compared with the respective measurement data. Copyright © 2006 John Wiley & Sons, Ltd.  相似文献   

14.
A mass balance model of the main Pb stores and fluxes for a typical organic‐rich upland catchment in the Peak District, UK, has been produced. The model, based on the Howden reservoir catchment, reveals that the majority of Pb in the catchment is stored within the soil (approximately 8·63 t km?2). Soil Pb levels are extremely high and can only be explained as the result of centuries of atmospheric Pb deposition from surrounding urban–industrial conurbations, and mining and smelting activity within the Peak District National Park. The atmospheric Pb flux onto the Howden catchment is approximately 107 kg a?1. The aquatic Pb flux is estimated at between 29·9 and 71·7 kg a?1; thus, at present, catchment soils are acting as a sink for Pb pollution. The Howden reservoir acts as a secondary store for Pb eroded and leached from catchment soils, with approximately 80% re‐deposited in its sediments. It is estimated that 2·3% of the catchment soil Pb pool has been retained in the reservoir sediments over its 91 year lifespan. Although the catchment is currently acting as a Pb sink, the rate of change in the soil Pb pool is very small. Future change in climate or deposition chemistry could, however, transform catchment soils into a significant source of Pb to the aquatic environment and water supply. Copyright © 2008 John Wiley & Sons, Ltd.  相似文献   

15.
The atmospheric chemistry and deposition model has been applied for calculation of nitrogen and sulphur depositions to the entire North Sea area for the year 1999. The total atmospheric nitrogen and sulphur depositions to the North Sea area were determined to 709 kton (kt) N and 551 kt S, respectively. Since the North Sea area was calculated to be 747,988 km2, this is equivalent to an average deposition of 0.9 ton N km?2 and 0.7 ton S km?2, respectively. The depositions decrease strongly from the south end (about 2–3 kt N km?2) to the north end (about 0.2 kt N km?2) of the North Sea, due to increasing distance to the large source areas in the northern part of the European continent. The territorial waters of Belgium, the Netherlands and Germany receive about 50% higher deposition densities than the average value for the entire North Sea area. For the remaining territorial waters of the North Sea the depositions follow more or less the fraction of the area. The results furthermore show that about 60% of the total nitrogen deposition is related to emissions from combustion sources (nitrogen oxides) and about 40% from emissions related to agricultural activities (ammonia).  相似文献   

16.
张晨  周雅迪  宋迪迪 《湖泊科学》2023,35(6):1949-1959
基于1990—2018年于桥水库流域入库河流与水库的逐月总氮(TN)和总磷(TP)监测数据,整理并分析了1990-2002、2003—2014和2015—2018年3个时段TN、TP浓度和氮磷比(TN/TP)的时空变化特征,探究流域内点面源污染削减、调水、氮磷滞留等对营养盐浓度变化的影响。结果表明,1990—2018年于桥水库TN浓度年均值在1.14~3.74 mg/L之间,水库TP浓度年均值在0.025~0.131 mg/L之间,多年TN/TP平均值为45,远高于淡水磷限氮磷比,是磷限水库。于桥水库流域5个测点中,沙河TN浓度最高,黎河TP浓度最高,入库TN、TP浓度大于库区,水库TP滞留率略大于TN。水库TN、TP浓度在2000s中后期下降,之后出现反弹。原因是2003年水源保护工程实施后,入库营养物浓度降低;2014年底南水北调中线一期工程通水后,于桥水库的引滦水量减少,TN的稀释效应弱化,上游来水TP浓度上升与水库内夏秋两季浮游植物的增殖,导致第三时段水库内TP浓度上升。基于月尺度水质分析,夏季水库TN浓度最低,TP浓度达到峰值,主成分分析表明,历年6—10月的水库Chl.a浓...  相似文献   

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