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1.
湖泊沉积物-水界面磷的迁移转化机制与定量研究方法   总被引:4,自引:0,他引:4  
湖泊磷循环主要指磷在沉积物、上覆水和生物体间的迁移转化,而沉积物-水界面磷的迁移转化作为富营养湖泊磷循环的关键过程,备受关注.本文就国内外研究进展,综述了磷在上覆水、沉积物中的赋存形态和生物有效性,沉积物-水界面磷迁移转化的机制与定量研究方法.探讨沉积物性质、环境因子和生物特性对界面磷迁移的驱动机制,以及磷在浅水湖泊、深水湖泊中迁移转化机制的差异,指出现阶段迁移机制的研究多集中在单因素和定性化方面,而对多因素和定量化的研究还相对缺乏,未来可深入探究多因素耦合作用下磷的迁移规律.分析了野外调查、模拟实验、质量衡算和模型等研究方法的优缺点及适用情况,提出未来可将野外调查、模拟实验和模型法相结合,借助野外调查识别磷的迁移过程,模拟实验验证磷迁移的机制,并以野外调查和模拟实验的数据和结论为基础,构建模型量化具体迁移过程及其对湖泊磷循环的贡献,从而全面认识磷迁移转化规律.最后,提出了未来湖泊沉积物-水界面磷迁移研究需要关注的几个方面.  相似文献   

2.
浅水湖泊内源磷负荷季节变化的生物驱动机制   总被引:14,自引:5,他引:14  
谢平 《中国科学D辑》2005,35(Z2):11-23
由于磷是重要的生源要素,过量的磷促进浮游植物(包括有毒蓝藻)的生长而使水质恶化,水-泥界面的磷交换机制受到广泛关注.一般认为沉积物的磷释放模式在浅水湖泊和深水湖泊之间有很大的差异.在探讨沉积物中磷释放机制时,人们一直最关注的要素为铁和氧及其相关的环境因子(如扰动、分解),但是浅水湖泊中磷含量变化的大部分结果仍然无法解释.通过对欧洲温带浅水湖泊和亚热带气候的长江中下游浅水湖泊中有关沉积物磷释放模式的野外和实验研究结果的分析,认为在浅水湖泊内源磷负荷季节变动模式的驱动因子中,pH可能比溶氧更为重要,即浮游藻类的光合作用增强时导致水体pH值的上升,这又可改变沉积物表面的pH,从而促进沉积物中磷(特别是铁磷)的释放并基于藻类水华对沉积物中磷的泵吸作用,首次提出了浅水湖泊中内源磷负荷的季节波动与营养水平密切相关主要是由于藻类光合作用驱动的新的观点.此外,浅水湖泊中藻类水华对沉积物磷的选择性泵吸作用,一方面圆满地解释了为何在超富营养的武汉东湖通过非经典的生物操纵于20世纪80年代中期消除了东湖的蓝藻水华后水柱中总磷和活性磷含量均显著下降,另一方面也解释了为何在许多欧洲湖泊的群落季节演替过程中出现的春季浮游植物较少的清水期或通过经典的生物操纵降低浮游植物的现存量均可显著地降低湖水中的磷含量.相对于深水湖泊来说,浅水湖泊生态系统结构的改变引发的浮游植物的兴衰,能对水-泥界面磷的交换能产生更显著的影响.也就是说,生物的生命活动同样可以驱动沉积物中营养盐的释放,而且在浮游植物丰富的富营养化浅水湖泊中,这种静态释放作用更为明显.  相似文献   

3.
东洞庭湖沉积物覆水后磷形态变化及其释放量   总被引:4,自引:1,他引:3  
王婷  王坤  姜霞 《湖泊科学》2018,30(4):937-947
研究干燥覆水后低流速条件下东洞庭湖沉积物中磷的形态变化及释放量,可以为轻度富营养化湖泊中磷的生物地球化学循环提供基础数据,为季节性湖泊內源营养盐的迁移转化规律研究、內源营养盐的释放风险评价提供理论依据.本文采集处于干湿交替状态的东洞庭湖表层沉积物,利用室内模拟装置,研究风干沉积物低流速条件下覆水后沉积物及上覆水中磷的形态变化.结果表明,低流速覆水后东洞庭湖沉积物中的磷向上覆水及大气中迁移释放,上覆水中磷的释放量随覆水时长增大,释放速率随覆水时长减小,上覆水流速和磷释放量相关性显著.上覆水循环过程中释放到上覆水中的溶解态有机磷比溶解态活性磷更容易吸附于颗粒物而转化为颗粒态磷.覆水后沉积物中各形态有机磷、无机磷及磷的生物有效性均发生转变,覆水初期沉积物中无机磷向有机磷转化,磷的生物可利用性增大;上覆水循环过程中有机磷向无机磷转化,磷的生物可利用性减小;覆水后沉积物的无机磷的主要组分由铝磷转变为铁磷,有机磷的主要组分有从中活性有机磷向活性有机磷转变的趋势.  相似文献   

4.
回顾了有关长江中下游地区湖泊水、生物、沉积物中营养盐的迁移、转化、循环和交换等研究工作进展.典型湖泊的研究结果显示,历史上长江中下游地区湖泊的营养本底的确较高,处于中营养和富营养状态;人类活动在最近几十年中加快了这些湖泊的富营养化进程.长江中下游地区湖泊的治理不仅要重视外源污染的削减,也要重视湖泊内源污染的控制.长江中下游地区的浅水湖泊沉积物中,一般只有30%以下的磷是以较活跃的藻类易利用态存在的,表层沉积物通过吸附-解吸等交换作用对浅水湖泊水体中磷的浓度有较大的影响.长江中下游浅水湖泊沉积物中的营养盐释放主要有静态和动态二种释放方式.前者是基于化学平衡条件下的水土界面扩散作用.决定其释放量大小的主要因子是孔隙水与上覆水之间的营养盐浓度差.后者是基于水动力扰动对水土界面物理破坏条件下的底泥悬浮释放作用.二种释放模式在浅水水体中都存在.无论是静态或动态,水土界面的氧化还原环境,铁、锰、铝等元素含量,都对释放有影响.动态释放能在短期内大大提高水体颗粒态营养盐的浓度.在动态释放的初期,将有效增加水体可溶性营养盐,但是如果沉积物中铁、铝等金属元素较丰富,水体中的溶解性营养盐将由于吸附等作用而沉淀至湖底,因此,这样的湖泊往往具有较强的自我净化能力.长江中下游地区绝大多数湖泊都属于这种类型的湖泊.用底泥疏浚方法来控制湖泊内源污染的方法只适用湖泊面积较小、还原环境强烈,或者沉积物中铁、锰含量较低、水体去除可溶性营养盐的能力较弱的水体.此外,长江中下游地区的浅水湖泊生态系统对富营养化也具有强烈的反馈作用.水华暴发期间蓝藻的暴发性生长能通过改变水体的pH而引发沉积物中磷释放数量的大幅增加,大量释放的营养盐反过来又会促使蓝藻的大量生长,从而加剧水华的暴发.研究显示污染相对较重的水域水体中营养盐的含量高,微生物的生物量及生产力也高,碱性磷酸酶的活性也高,水体营养盐的循环也就更快.这反过来又促使微生物生产力增加,营养盐循环更快,加剧富营养化的危害.今后的工作应该重点围绕生物参与下营养盐的迁移转化等方面开展工作.  相似文献   

5.
长江中下游湖泊沉积物中磷的形态及藻类可利用量   总被引:13,自引:1,他引:13  
调研了长江中下游地区25个浅水湖泊的35个样点表层沉积物中磷的地球化学形态特征,以及太湖沉积物中藻类可利用磷(AAP)的空间分布,垂向分布特征及其蓄积量,探讨了浅水湖泊表层沉积物中磷的赋存量,地球化学形态及其与水草,湖水磷浓度,叶绿素(Chl-a)浓度之间的关系.结果表明,长江中下游地区浅水湖泊的表层沉积物中可交换态磷(Ex-P)含量与水体总磷(TP),溶解性总磷(DTP)及溶解性反应活性磷(SRP)浓度关系密切,有水草湖区的沉积物中生物易利用磷(Bio-P)含量显著低于无水草湖区及藻型湖区.太湖梅梁湾沉积物泥芯中,表层3 cm沉积物中Ex-P含量显著增高,而夏季还原条件下容易转变为溶解态磷的铁磷(Fe-P)含量峰值则出现在4~10cm深度.太湖表层沉积物的Bio-P含量与夏季叶绿素浓度密切相关,说明表层沉积物的Bio-P及AAP可以作为沉积物内源释放风险的指示参数.太湖表层1 cm底泥中所含有的AAP量估计多达268.6吨,风浪扰动能将大量的AAP带入水体,对太湖蓝藻水华暴发起着不可忽视的作用.  相似文献   

6.
浅水湖泊中的初级生产者主要由分布在底栖生境中的底栖植物和生活在敞水生境中的浮游植物组成.底栖植物主要包括维管束沉水植物和底栖藻类等,浮游植物则主要为浮游藻类.贫营养浅水湖泊湖水营养盐浓度低,透明度高,底栖植物因能直接从沉积物中获取营养盐,往往是浅水湖泊的优势初级生产者.随着外源营养盐负荷的增加,湖水中的营养盐浓度不断升高,浮游植物受到的营养盐限制作用减小,加上其在光照方面的竞争优势,逐步发展成为湖泊的优势初级生产者,湖泊逐步从底栖植物为优势的清水态转变为浮游植物为主的浑水态,即稳态转换.在稳态转换过程中,浅水湖泊生态系统结构与功能发生了一系列变化,本文综述了浅水湖泊沉积物性质和生物(浮游植物、底栖植物、底栖动物和鱼类等)群落结构的变化,分析了这些变化对底栖植物、浮游植物之间竞争优势和底栖敞水生境间磷交换的影响,探讨了富营养化驱动的底栖敞水生境耦合过程变化和稳态转换机理.了解浅水湖泊底栖敞水生境耦合过程与稳态转换机理对富营养化浅水湖泊修复有重要意义.富营养化浅水湖泊修复实际就是重建其清水态,在制定修复目标时应该关注评价清水态的指标,如透明度、浮游植物生物量、底栖植物的覆盖度或优势度等.在开展湖泊修复技术研发与工程应用时,应该重点关注对底栖敞水生境耦合有重要影响的关键技术,如沉积物磷释放和底栖生物食性鱼类控制以及底栖植物(尤其是沉水植物)恢复等有关技术.  相似文献   

7.
应用化学提取法分析了红枫湖主要出入湖河口及湖心沉积物生物可利用磷(BAP)的含量,并探讨了BAP空间分布与总磷(TP)和粒度组成之间的关系.研究结果表明,各形态BAP含量顺序为:藻类可利用磷(AAP)NaHCO3可提取磷(Olsen-P)水溶性磷(WSP)易解吸磷(RDP).沉积物柱芯中BAP迅速降低,剖面变化比TP更为明显.各形态BAP与TP显著相关,除RDP与AAP外,其它形态BAP之间也显著相关.Olsen-P是评价红枫湖沉积物磷的生物有效性的最佳指标.红枫湖沉积物颗粒组成以粘土及粉砂为主,湖心沉积物比河口粒度小.表层(0-5cm)沉积物中Olsen-P和AAP的含量与细组分(粘土)的比例呈正相关,而RDP、WSP与细组分呈负相关性,表明沉积物细组分对深水湖泊富营养化的重要性.  相似文献   

8.
生物操纵与非经典生物操纵的应用分析及对策探讨   总被引:8,自引:2,他引:6  
刘恩生 《湖泊科学》2010,22(3):307-314
分析了生物操纵(biomanipulation)和非经典生物操纵(non-traditional biomanipulation)理论的原理、应用条件及局限性,提出了在局部水体治理湖泊富营养化的对策.分析认为:生物操纵的核心内容是利用浮游动物控制藻类;但浮游动物不能有效控制丝状藻类和形成群体的蓝藻水华;我国的大型浅水湖泊浮游动物数量一般并不多,对浮游植物摄食压力不大;在浅水湖泊,浮游动物摄食藻类后很快分解、释放又进入物质循环,因此不能治理湖泊富营养化;浮游动物是浮游植物和鱼类等经济水生动物之间重要的营养通道,过分追求保护浮游动物是值得思考和研究的问题.而非经典生物操纵的核心内容是利用鱼类直接控制蓝藻水华;当鲢、鳙鱼达到阈值密度可以控制蓝藻水华,但很难控制所有藻类和降低N、P治理湖泊富营养化.在局部水体治理湖泊富营养化的对策是:把鱼类控藻、水生植被恢复和局部水域生态系统重建相结合,形成具有利用与控制蓝藻生产鱼类、吸收氮磷净化水质功能的"水质生物调控单元".  相似文献   

9.
夏季梅梁湾水体中生物有效磷的分布及来源   总被引:8,自引:1,他引:8  
2004年夏季在太湖梅梁湾应用一种新型氧化铁/醋酸纤维素复合膜(FeO/CAM)对水体生物有效磷浓度(FeO-P)进行了调查和连续监测. 发现水体溶解态(FeO-DP)、颗粒态(FeO-PP-)生物有效磷浓度与其总浓度在空间上有着相似的平面分布. 在梅梁湾北部入湖河口附近生物有效磷浓度最高, 随离河口或湖岸距离的增加逐渐减小, 湖心区域的水体生物有效磷浓度差异不大. 在观测期间, 梅梁湾北部多数水域的叶绿素a含量较高, 出现藻类水华现象. 但在几个主要入湖河口附近叶绿素a含量并不是最高, 尽管其水体生物有效磷浓度最高. 在受河流输入影响较小的梅梁湾开阔水域, 叶绿素a含量与生物有效磷浓度呈显著正相关性. 在风浪引起的沉积物再悬浮过程中, 水体生物有效磷浓度会出现短促的升高. 结果表明, 河流磷输入对河口水体生物有效磷浓度起主要贡献作用, 而内源磷释放则是开阔水域生物有效磷的主要来源. 在富营养的浅水湖泊中, 蓝藻水华暴发可以通过改变pH值引发内源磷的释放. 所研制的FeO/CAM膜材料能够用来监测水体生物有效磷浓度变化规律, 并为湖泊富营养化控制策略提供科学依据.  相似文献   

10.
湖泊氮素生物地球化学循环及微生物的作用   总被引:19,自引:2,他引:19       下载免费PDF全文
氮素是影响湖泊富营养化的关键元素之一,对湖泊中氮素生物地球化学循环整个过程进行全面的了解,有利于对湖泊富营养化进行控制和治理.本文综述了湖泊生态系统(特别是富营养化湖泊)中氮素的输入、输出及其在沉积物-水界面的迁移转化规律,着重分析和比较了藻型湖泊和草型湖泊的不同食物链中的氮素营养循环过程,重点讨论了微生物参与的硝化作用、反硝化作用、生物固氮和厌氧氨氧化等过程的最新研究进展,并对氮循环相关的研究方法和技术进行了小结.最后指出当前国内外研究中亟待解决的问题,并对湖泊氮循环今后的研究方向提出了建议.  相似文献   

11.
长江中下游浅水湖泊富营养化发生机制与控制途径初探   总被引:191,自引:22,他引:169  
秦伯强 《湖泊科学》2002,14(3):193-202
长江中下游地区是我国淡水湖泊比较集中的地区。该地区绝大多数湖泊为浅水湖泊,所有的城郊湖泊都已经富营养化,其他湖泊的营养状况均为中营养-富营养,处于富营养化的发展中,这些湖泊富营养化的原因同流域上的人类活动有很大的关系。一方面,工业,农业和城市生活污水正源源不断地向湖泊中排放。另一方面,人类通过湖泊围垦、湖岸忖砌,水产养殖等破坏自然生态环境,减少营养盐输出途径。国际上对于浅水湖泊富营养化治理的经验表明,即使流域上的外源污染排放降到历史最低点,湖泊富营养化问题依然突出,其原因与浅水湖泊底泥所造成的内源污染有关。动力作用导致底泥悬浮,,影响底泥中营养盐的释放,也影响水下光照和初级生产力。控制浅水湖泊富营养化,除了进行外源性营养盐控制之外,还必须进行湖内内源营养盐的治理。治理内源营养盐的有效途径是恢复水生植被,控制底泥动力悬浮与营养盐释放。而要进行水生植被恢复,必须进行湖泊生态系统退化机制及生态修复的实验研究。  相似文献   

12.
This paper is a review of research works concerning the nutrient transportation, transformation and exchange between water, sediment and biota in the lakes from the middle and lower reaches of the Yangtze River conducted in the context of project entitled "The Processes and Mechanism of Lake Eutrophication in Middle and Lower Reaches of Yangtze River". All the lakes from this area are shallow lakes. According to the typical lake site research, the lakes from the middle and lower reaches of Yangtze River have a higher baseline of nutrition in the history. Normally the trophic status of these lakes can be categorized into medium-trophic or eutrophic. Human activities have been enhanced during the last decades, which speed up the lake eutrophic process. Lake eutrophication control needs to reduce not only the external nutrient inputs from watershed but also the internal loading from the sediments. Investigations revealed that the lake sediments in this area are considerablly high in nutrition in which at most about 30% of phosphorus exists in the form of bio-available in the sediment. The surface sediment will exert great effects on the nutrient exchange between water-sediment interface via adsorption and release of nutrient. The nutrient release from the sediment in these shallow lakes is mainly in two ways, i.e. in the undisturbed condition the nutrient is released through diffusion created by the nutrient gradient from sediment to overlying water; whereas in disturbed condition, the nutrient release is determined by the hydrodynamic forcing intensity and the sediment resuspension. Metallic elements such as the iron, manganese and aluminium and the aerobic-anaerobic ambience will affect the release of nutrients. The disturbed release will increase the total nutrients in the water column significantly in the short period. At the beginning of sediment resuspension, the dissolved nutrient concentration will increase. This increase will be damped if the ferric oxide and aluminium are rich in sediment because of the adsorption and flocculation. This means that the lakes have capability of eliminating the nutrient loadings. Investigations for the lakes from middle and down stream of Yangtze River have suggested that most lakes have the self-cleaning capability. Dredging the control of the internal loading, therefore, is only applicable to the small lakes or undisturbed bays which normally are situated nearby the city or town and rich in organic materials in the sediment. In addition, the strong reduction condition and weak aeration of these lakes and bays make these small lakes and bays release much more bio-available nutrient and without much self-eliminating capability. Moreover, eutrophication induced algal bloom in these lakes will change the pH of water, which further induces the increase in the nutrient release. In turn, the increase in nutrient release promotes the growth of phytoplankton and results in severe algal bloom. For the heavily polluted water, research suggests that the biomass of bacteria and alkaline phosphatase activity will be higher corresponding to the higher concentration of nutrients, which accelerates the nutrient recycling between water, sediment and biota. Quick recycling of nutrient, in turn, promotes the production and biomass growth of microorganism and leads to more severe eutrophication. Further research work should focus on the nutrient transformation mechanism and the effects of microbial loop on the eutrophication.  相似文献   

13.

This paper is a review of research works concerning the nutrient transportation, transformation and exchange between water, sediment and biota in the lakes from the middle and lower reaches of the Yangtze River conducted in the context of project entitled “The Processes and Mechanism of Lake Eutrophication in Middle and Lower Reaches of Yangtze River”. All the lakes from this area are shallow lakes. According to the typical lake site research, the lakes from the middle and lower reaches of Yangtze River have a higher baseline of nutrition in the history. Normally the trophic status of these lakes can be categorized into medium-trophic or eutrophic Human activities have been enhanced during the last decades, which speed up the lake eutrophic process. Lake eutrophication control needs to reduce not only the external nutrient inputs from watershed but also the internal loading from the sediments. Investigations revealed that the lake sediments in this area are considerablly high in nutrition in which at most about 30% of phosphorus exists in the form of bio-available in the sediment. The surface sediment will exert great effects on the nutrient exchange between water-sediment interface via adsorption and release of nutrient. The nutrient release from the sediment in these shallow lakes is mainly in two ways, i.e. in the undisturbed condition the nutrient is released through diffusion created by the nutrient gradient from sediment to overlying water; whereas in disturbed condition, the nutrient release is determined by the hydrodynamic forcing intensity and the sediment resuspension. Metallic elements such as the iron, manganese and aluminium and the aerobic-anaerobic ambience will affect the release of nutrients. The disturbed release will increase the total nutrients in the water column significantly in the short period. At the beginning of sediment resuspension, the dissolved nutrient concentration will increase. This increase will be damped if the ferric oxide and aluminium are rich in sediment because of the adsorption and flocculation. This means that the lakes have capability of eliminating the nutrient loadings. Investigations for the lakes from middle and down stream of Yangtze River have suggested that most lakes have the self-cleaning capability. Dredging the control of the internal loading, therefore, is only applicable to the small lakes or undisturbed bays which normally are situated nearby the city or town and rich in organic materials in the sediment. In addition, the strong reduction condition and weak aeration of these lakes and bays make these small lakes and bays release much more bio-available nutrient and without much self-eliminating capability. Moreover, eutrophication induced algal bloom in these lakes will change the pH of water, which further induces the increase in the nutrient release. In turn, the increase in nutrient release promotes the growth of phytoplankton and results in severe algal bloom. For the heavily polluted water, research suggests that the biomass of bacteria and alkaline phosphatase activity will be higher corresponding to the higher concentration of nutrients, which accelerates the nutrient recycling between water, sediment and biota. Quick recycling of nutrient, in turn, promotes the production and biomass growth of microorganism and leads to more severe eutrophication. Further research work should focus on the nutrient transformation mechanism and the effects of microbial loop on the eutrophication.

  相似文献   

14.
Phosphatase may accelerate the process of lake eutrophication through improving phosphorus bioavailability. This mechanism was studied in three Chinese eutrophic shallow lakes (Lake Taihu, Lake Longyang and Lake Lianhua). Phosphatase activity was related to the concentration of soluble reactive phosphorus (SRP) and chlorophyll a. Stability of dissolved phosphatase in reverse micelles may be attributed to molecular size, conformation and active residues of the enzyme. At the site with Microcystis bloomed in Lake Taihu, dissolved phosphatase activity was higher and more stable in micelles, SRP concentrations were lower in interstitial water, the contents of different forms of phosphorus and the amounts of aerobic bacteria were lower while respiration efficiency was higher in sediments. Phosphobacteria, both inorganic and organic and other microorganisms were abundant in surface water but rare in sediments. Therefore, internal phosphorus may substantially flux into water column by enzymatic hydrolysis and anaerobic release, together with mobility of bacteria, thereby initiating the bloom. In short, biological mechanism may act in concert with physical and chemical factors to drive the internal phosphorus release and accelerate lake eutrophication.  相似文献   

15.
Forms of phosphorus in sediments from 25 lakes in the middle and lower reaches of Yangtze River were analyzed by the sequential extraction procedure. Contents and spatial distrubution of algal available phosphorus (AAP) in sediments of Lake Taihu, the third largest freshwater lake of China, were also studied. Relationships between phosphorus forms in sediment and macrophytes coverage in sample sites, as well as phosphorus forms in sediments and chlorophyal contents in lake water were discussed. Exchangeable form of phosphorus (Ex-P) in surface sediments was significantly positive correlative to total phosphorus (IP), dissolved total phosphorus (DTP) and soluble reactive phosphorus (SRP) contents in the lake water. Bioavailable phosphorus (Bio-P) contents in sediments from macrophytes dominant sites were significantly lower than that in no macrophyte sites. In Lake Taihu, Ex-P content in top 3 cm sediment was highest. However, content of ferric fraction phosphorus (Fe-P) was highest in 4 - 10 cm. Bioavalilble phosphorus (Bio-P) contents in surface sediments positively correlated to Chlorophyll a contents in water of Lake Taihu with significant difference. Therefore, contents of Bio-P and AAP could be acted as the indicators of risks of internal release of phosphorus in the shallow lakes. It was estimated that there were 268.6 ton AAP in top 1 cm sediments in Lake Taihu. Sediment suspension caused by strong wind-induced wave disturbance could carry plenty of AAP into water in large shallow lakes like Lake Taihu.  相似文献   

16.
Forms of phosphorus in sediments from 25 lakes in the middle and lower reaches of Yangtze River were analyzed by the sequential extraction procedure. Contents and spatial distrubution of algal available phosphorus (AAP) in sediments of Lake Taihu, the third largest freshwater lake of China, were also studied. Relationships between phosphorus forms in sediment and macrophytes coverage in sample sites, as well as phosphorus forms in sediments and chlorophyal contents in lake water were discussed. Exchangeable form of phosphorus (Ex-P) in surface sediments was significantly positive correlative to total phosphorus (TP), dissolved total phosphorus (DTP) and soluble reactive phosphorus (SRP) contents in the lake water. Bioavailable phosphorus (Bio-P) contents in sediments from macrophytes dominant sites were significantly lower than that in no macrophyte sites. In Lake Taihu, Ex-P content in top 3 cm sediment was highest. However, content of ferric fraction phosphorus (Fe-P) was highest in 4–10 cm. Bioavalilble phosphorus (Bio-P) contents in surface sediments positively correlated to Chlorophyll a contents in water of Lake Taihu with significant difference. Therefore, contents of Bio-P and AAP could be acted as the indicators of risks of internal release of phosphorus in the shallow lakes. It was estimated that there were 268.6 ton AAP in top 1 cm sediments in Lake Taihu. Sediment suspension caused by strong wind-induced wave disturbance could carry plenty of AAP into water in large shallow lakes like Lake Taihu.  相似文献   

17.
Between 1989 and 1998 the small eutrophic stratified Lake Belau was investigated intensively and multidisciplinarily. This article is a short, comprehensive summary and re‐evaluation of the hydrochemistry of the lake, with focus on nitrogen and phosphorus. In several aspects the lake can be regarded as a typical example of the glacial north German lakes. The 1960's and 1970's are characterised by heavy nutrient inputs and fast eutrophication. During the last two decades the external nutrient load, especially the phosphorus load into Lake Belau was significantly reduced. But phosphorus‐rich sediments and large areas with summerly anoxic sediment surface conditions cause intensive release of phosphorus from older deeper sediment layers. Annual budgets reveal that despite an average sediment accumulation of 3 mm a?1 the lake has lost its function as net phosphorus sink and it is very likely that internal eutrophication by the sediments will keep the lake in its eutrophic state during the next decades. Despite that, monthly budgets of five vertical layers show that the main phosphorus supplier for the phosphorus depleted epilimnion during summer is the creek Alte Schwentine. The annual nitrogen budget indicates groundwater and interflow water as well as atmospheric input as additional important nitrogen sources. 36% (98 μmol m ?2 h?1 N) of all nitrogen input is lost to atmosphere mainly due to denitrification. The example of a heavy storm shows that about 10% of the annual nitrogen loss to the atmosphere can take place during a single day and in form of ammonia. The storm further made obvious that these unpredictable events can have strong impact on nutrient cycling and ecology in Lake Belau and the lake can become an unexpected nutrient source for downstream systems.  相似文献   

18.
Phosphatase may accelerate the process of lake eutrophication through improving phosphorus bioavailability. This mechanism was studied in three Chinese eutrophic shallow lakes (Lake Taihu, Lake Longyang and Lake Lianhua). Phosphatase activity was related to the concentration of soluble reactive phosphorus (SRP) and chlorophyll a. Stability of dissolved phosphatase in reverse micelles may be attributed to molecular size, conformation and active residues of the enzyme. At the site with Microcystis bloomed in Lake Taihu, dissolved phosphatase activity was higher and more stable in micelles, SRP concentrations were lower in interstitial water, the contents of different forms of phosphorus and the amounts of aerobic bacteria were lower while respiration efficiency was higher in sediments. Phosphobacteria, both inorganic and organic and other microorganisms were abundant in surface water but rare in sediments. Therefore, internal phosphorus may substantially flux into water column by enzymatic hydrolysis and anaerobic release, together with mobility of bacteria, thereby initiating the bloom. In short, biological mechanism may act in concert with physical and chemical factors to drive the internal phosphorus release and accelerate lake eutrophication.  相似文献   

19.
Because of the obvious importance of P as a nutrient that often accelerates growth of phytoplankton (including toxic cyanobacteria) and therefore worsens water quality, much interest has been devoted to P exchange across the sediment-water interface. Generally, the release mode of P from the sediment differed greatly between shallow and deep lakes, and much of the effort has been focused on iron and oxygen, and also on the relevant environmental factors, for example, turbulence and decomposition, but a large part of the P variation in shallow lakes remains unexplained. This paper reviews experimental and field studies on the mechanisms of P release from the sediment in the shallow temperate (in Europe) and subtropical (in the middle and lower reaches of the Yangtze River in China) lakes, and it is suggested that pH rather than DO might be more important in driving the seasonal dynamics of internal P loading in these shallow lakes, i.e., intense photosynthesis of phytoplankton increases pH of the lake water and thus may increase pH of the surface sediment, leading to enhanced release of P (especially iron-bound P) from the sediment. Based on the selective pump of P (but not N) from the sediment by algal blooms, it is concluded that photosynthesis which is closely related to eutrophication level is the driving force for the seasonal variation of internal P loading in shallow lakes. This is a new finding. Additionally, the selective pump of P from the sediment by algal blooms not only explains satisfactorily why both TP and PO4-P in the hypereutrophic Lake Donghu declined significantly since the mid-1980s when heavy cyanobacterial blooms were eliminated by the nontraditional biomanipulation (massive stocking of the filter-feeding silver and bighead carps), but also explains why TP in European lakes decreased remarkably in the spring clear-water phase with less phytoplankton during the seasonal succession of aquatic communities or when phytoplankton biomass was decreased by traditional biomanipulation. Compared with deep lakes, wax and wane of phytoplankton due to alternations in the ecosystem structure is also able to exert significant influences on the P exchange at the sediment-water interface in shallow lakes. In other words, biological activities are also able to drive P release from sediments, and such a static P release process is especially more prominent in eutrophic shallow lakes with dense phytoplankton.  相似文献   

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