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1.
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   

2.
湖北浮桥河水库浮游植物初级生产力及其管理   总被引:3,自引:2,他引:1  
浮桥河水库浮游植物水柱日生产量变幅为0.34-4.99 g/(m2·d),最低值出现在下游冬季,最高值出现在中游秋季,年平均值2.75 g/(m2·d)季节变化:秋季>夏季>春季>冬季,与浮游植物叶绿素a含量和生物量的季节变化一致;水平分布:中游略高于上游,下游最低,与浮游植物叶绿素a含量的水平分布完全一致表层日生产量占水柱日生产量53.81%.与1980年同期相比,浮游植物初级生产力增加了1.2倍.分析表明,磷含量增加是浮游植物初级生产力提高的关键因子.应用能量收支法估算浮桥河水库鲢鳙渔产潜力为772t,516.0 kh/hm2.从渔业管理和水质管理角度讨论了合理利用浮游植物初级生产力的措施.  相似文献   

3.
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   

4.
兴凯湖春季水体悬浮颗粒物和CDOM吸收特性   总被引:1,自引:0,他引:1  
为了分析兴凯湖水体光学活性物质的吸收特性、来源和空间分布以及对400~700 nm范围内总吸收的贡献,于2013年5月对该水体进行野外实验,对水体中浮游藻类、非藻类颗粒物和有色可溶性有机物的吸收特性和水质参数进行测定.结果表明:总悬浮颗粒物的吸收光谱与非藻类颗粒物相似,色素颗粒物含量较少且单一,非藻类颗粒物在总悬浮颗粒物吸收中占主导地位,其贡献率始终在50%以上.CDOM吸收曲线的拟合函数斜率值Sg均高于其它水体.440 nm处总悬浮颗粒物和非藻类颗粒物的吸收系数ap(440)、ad(440)与总悬浮颗粒物、无机悬浮颗粒物和有机悬浮颗粒物浓度相关性均较好,与叶绿素a(Chl.a)浓度的相关性较差.兴凯湖与其它Ⅱ类水体的差异性表现在440 nm处CDOM吸收系数ag(440)与Chl.a浓度、溶解性有机碳(DOC)浓度均无显著相关性,说明DOC以无色部分为主.总体上,大兴凯湖各吸收系数和水质参数均值均低于小兴凯湖,后者水质受农耕区退水及周围渔业、旅游业的影响较大.  相似文献   

5.
长春市石头口门水库颗粒物光谱吸收特性   总被引:9,自引:3,他引:6  
针对东北地区水体,以长春市重要水源地石头口门水库为例,分别于2008年6月13日和9月23 日对该水库进行了水体颗牲物吸收特性研究.结果显示:2008年6月水库悬浮物含量高于9月,而叶绿素a含量低于9月:总颗粒物的吸收光谱曲线类似于非色素颗粒物,非色素颗粒物吸收对其的贡献明显大于浮游植物色素,9月份浮游植物吸收对其的贡献略有增加,吸收曲线在440nm左右能明显看到浮游植物引起的吸收峰;非色素颗粒物在440nm的吸收系数与悬浮物浓度存在较好的函数关系,而与叶绿素a浓度的相关性较弱;浮游植物色素吸收系数较低,色素组成中叶绿索a占主导地位,浮游植物在440nm和675nm的吸收系数与叶绿素a含量均存在较好的指数函数关系;6月浮游植物比吸收系数在440nm和750nm的均值分别为0.0483m2/mg和0.0263m2/mg,而9月份的均值分别为0.0337m2/mg和0.01 87m2/mg.  相似文献   

6.
太湖叶绿素a的时空分布特征及其与环境因子的相关关系   总被引:14,自引:3,他引:11  
王震  邹华  杨桂军  张虎军  庄严 《湖泊科学》2014,26(4):567-575
2012年3月至2013年2月逐月对太湖水体叶绿素a含量、主要环境因子及不同门类浮游植物密度进行测定,分析太湖叶绿素a含量和不同门类浮游植物密度的时空分布特征,探讨太湖叶绿素a含量和环境因子与不同门类浮游植物密度之间的相关关系并建立逐步回归方程.结果表明:太湖叶绿素a含量全年平均值为22.33±37.65 mg/m3,变幅为0.48~347.85 mg/m3;叶绿素a含量随季节变化明显,夏季最高、秋冬季次之、春季最低;在空间分布上,太湖北部和西北部最高,东部和南部最低.蓝藻门、隐藻门、硅藻门、绿藻门密度随时间呈峰型变化,均在10月份达到最大值,黄藻门、金藻门和裸藻门密度的变化趋势呈"V"型,在春、冬两季出现较大值;不同门类浮游植物密度基本在西北区出现最大值.全湖叶绿素a含量的显著影响因子有总有机碳、亚硝态氮、溶解氧、pH、水温和磷酸盐;lg(YChl.a)与lg(XTN)呈显著负相关,与lg(XTP)呈极显著正相关,与lg(XN/P)呈极显著负相关.太湖叶绿素a含量与蓝藻门、隐藻门、裸藻门与甲藻门密度有显著相关关系.  相似文献   

7.
四种浮游植物生物量计算方法的比较分析   总被引:4,自引:2,他引:2  
陈纯  李思嘉  胡韧  韩博平 《湖泊科学》2013,25(6):927-935
浮游植物是水生生态系统中重要的初级生产者,其生物量是反映其现存量的关键指标.本文利用具有3个处理组的围隔实验中的浮游植物数据,对文献中常见的计算浮游植物种群生物量和群落生物量的4种方法:标准法、细分法、粗分法和资料法进行比较,并分析采用这4种不同方法得到的浮游植物生物量与叶绿素a浓度的相关性.结果表明:粗分法是计算浮游植物生物量的高效方法,能够保证准确度和节省时间;提高浮游植物生物量计算准确度不是影响浮游植物生物量与叶绿素a浓度相关性显著程度的关键.通过比较剔除稀有种(生物量不超过群落生物量5%的种类)前后浮游植物生物量的差异,发现忽略稀有种会导致种类均匀度较高的浮游植物群落生物量严重偏低,建议浮游植物生物量的计算不能一概忽略稀有种.  相似文献   

8.
为探究呼伦湖浮游植物群落的季节变化特征及其与环境因子的关系,本研究分别于2019年3、5—10月对呼伦湖浮游植物的种类、细胞密度和生物量及湖水水质进行调查.结果显示,共鉴定出120种浮游植物,隶属于7门72属.从浮游植物群落季节组成差异上来看,春季绿藻门种类数最多,其次是硅藻门、蓝藻门;夏秋季绿藻门种类数最多,蓝藻门次之;冬季硅藻门种类数最多,绿藻门次之.呼伦湖浮游植物优势种主要为硅藻门的梅尼小环藻(Cyclotella meneghiniana)、蓝藻门的卷曲长孢藻(Anabaena circinalis)和细小平裂藻(Merismopedia minima),种类数在春季最多,秋冬季最少.浮游植物细胞密度在春季(123.52×104 cells/L)和冬季(16.41×104 cells/L)较夏季(280.80×104 cells/L)和秋季(380.63×104 cells/L)低,春冬季绿藻门细胞密度最高,夏秋季蓝藻门细胞密度最高.就浮游植物生物量而言,夏季(0.38 mg/L)最大,其次是秋季(0.26 mg/L)和春季(0.24 mg/L),冬季(0.13 mg/L)最小.香农-威纳(Shannon-Wiener)多样性指数、均匀度指数和综合营养状态指数均表明呼伦湖水体处于中营养状态.冗余分析(RDA)表明:水温、叶绿素a、pH和营养盐浓度是影响呼伦湖浮游植物群落分布的主要环境因子.  相似文献   

9.
太湖浮游植物细胞裂解速率的酯酶活性法初步研究   总被引:1,自引:1,他引:0  
本研究从2009年8月至2010年10月,每月采集太湖3个不同富营养化湖区水样,运用酯酶活性法,测定了颗粒态酯酶、溶解性酯酶活性以及酯酶衰变周期,估算了太湖浮游植物细胞裂解速率.研究结果表明,太湖颗粒态酯酶活性为0.58~35.15 nmol FDA/(L.h),溶解性酯酶活性为0.55~7.59 nmol FDA/(L.h),酯酶衰变周期为7~75 h,细胞裂解速率为0.02~0.77 d-1,三个采样点细胞裂解速率没有显著差异.颗粒态酯酶活性与叶绿素a浓度之间具有显著的线性关系,说明运用酯酶活性法估算太湖浮游植物细胞裂解速率是可行.此外,叶绿素a浓度与温度变化趋势基本一致,梅梁湾和湖心叶绿素a浓度具有显著差异.贡湖湾叶绿素a浓度与细胞裂解速率之间具有显著的反比例关系,说明细胞裂解速率也是影响太湖藻类生物量的重要因素.  相似文献   

10.
滆湖是我国长江中下游典型的浅水型湖泊,为了解其治理后浮游植物群落时空分布规律,2013年1 12月对其北部区浮游植物及环境因子进行调查.调查期间共检出浮游植物7门43属61种,春、冬季以栅藻(Scenedesmus)和小环藻(Cyclotella)为主要优势种属,夏、秋季以微囊藻(Microcystis)和颗粒直链藻(Melosira granulata)为主要优势种属,采样期间浮游植物生物量最高值为90.6 mg/L,出现在8月份,铜绿微囊藻(Microcystis aeruginosa)占绝对优势.浮游植物平均密度呈现由西向东递减的趋势,植被覆盖区低于敞水区.环境因子分析表明:总氮浓度、总磷浓度、水温是影响滆湖北部区浮游植物密度和生物量的主要因子.比较相同月份湖区内部菱角芦苇区和未治理的敞水区的平均生物量,菱角区生物量较敞水区低约72.7%~91.1%,芦苇区生物量较敞水区低约63.9%~83.7%.在8、9月湖区内敞水区暴发水华时菱角区浮游植物生物量仅为敞水区的14.6%,芦苇区为敞水区的30.3%.  相似文献   

11.
Multidisciplinary studies of the dispersed sedimentary matter (suspended particulate matter) were carried out in the Volga delta during spring flood in two areas of the Astrakhan State Biosphere Reserve (Obzhorovskii and Damchikskii), allowing the authors to reveal some regularities in sedimentation conditions. Considerable differences were found to exist in the supply of sedimentary material into the sea through the branches and arms of the eastern and western parts of the river delta. Typical of the eastern part are appreciably higher concentrations of suspended particulate matter, biogenic components, and phytopigments, as well as greater phytoplankton abundance and biomass, and sedimentary material fluxes. A relationship was found to exist between the concentration of suspended particulate matter and the phytopigments under consideration. In May, almost entire chlorophyll “a” in suspended particulate matter was concentrated in the cells of small diatom algae, where it was distributed in proportion to diatom biomass. Overall, the suspended matter of the delta is mostly represented by mineral detrital particles (quartz and carbonates) with a relatively small share of clay materials against the background of a huge amount of diatom cells and biogenic detritus.  相似文献   

12.
淀山湖不同季节营养盐含量与藻类群落的相互关系   总被引:5,自引:0,他引:5  
于2009年1月至12月对淀山湖浮游藻类生物量及水体中N、P营养元素含量进行连续监测,并利用典范对应分析(CCA)对浮游藻类种类分布与环境营养因子间的相关性进行研究.结果表明:淀山湖全年藻类生物量呈现两次大规模增长时期,分别为春季的4月份(以绿藻为主)和初秋的8月份(以蓝藻为主),其中春季藻类群落最大生物量(39.68...  相似文献   

13.
Seasonal and spatial aspects of the net settling velocities of particles in Lake Constance were investigated by measurements of settling fluxes and estimates of the concentrations of suspended matter. Annual mean sinking velocities ranged from 2.6 m d?1 in the euphotic zone to 7.5 m d?1 in the aphotic zone. Summer maxima of 36.6 m d?1 were caused by settling calcite crystals, while minima of 0.4 m d?1 during the clear water phase resulted from particulate matter consisting mostly of phytoplankton and organic debris. Winter settling velocities averaged 1,2 m d?1. The mean residence time for the bulk of particles calculated on an annual basis was 27.8 days. The net settling velocities in this study were higher than those calculated for phytoplankton in other investigations but agreed with estimates for particles from Lake Zürich obtained by an approach similar to this study.  相似文献   

14.
《Continental Shelf Research》1999,19(14):1783-1808
Concentrations of Al, Cd and Mn were determined in water and particles collected from water bottles over one year during 19 surveys of a silled fjord. Nutrient and hydrographic data were also collected. Particle fluxes were determined at one site using a sediment trap array. Concentrations of dissolved Al showed the strongest (negative) relationship to salinity (r=0.91). This correlation decreased with the onset of the diatom bloom and was insignificant immediately post bloom. Removal of dissolved Al was coincident with an increase in particulate Al concentrations. The degree of removal could be predicted from previously reported Al/Si uptake ratios. Concentrations of leachable P in particulate material from the sediment traps increase at the onset of the bloom and decrease coincident with rapid regeneration as the bloom crashed. Particulate leachable Cd showed a lag in apparent uptake and regeneration relative to particulate leachable P. A substantial amount (ca. 53%) of the annual particle flux of Mn to the deepest trap is material recycled at the sediment surface and is not accumulated in the bottom sediment. Dissolved and particulate Mn levels in the loch have a strong seasonal pattern with low values prior to the spring phytoplankton bloom and increased values after the bloom crash. Maximum concentrations were observed in late autumn. Levels decreased to near pre-bloom values early the following year. This suggests bacterial decay of deposited organic carbon associated with the spring bloom-maintained suboxic conditions at or near the seawater-sediment interface throughout the majority of the year. After exhaustion of this organic matter pool recycling ceased for a brief (2–3 months) winter period.  相似文献   

15.
The retention of particulate matter of the Odra River in flooded areas was estimated by determining suspended particulate matter (SPM) elimination and particle-bound nutrient retention in a polder area of the Lower Odra Valley national park. Water and suspended matter samples collected before, during, and after the 1997 summer flood at the inlet and the outlet of the investigated polder (Polder A/B close to Schwedt) offer the opportunity to balance the matter retention inside the floodplain. The maximum level of retained SPM (more than 80%) was calculated for the record flood of summer 1997, while in ordinary winter floods retention differs between 33% and 70%. Basic properties of the flowing particles like settling velocity, density, loss on ignition etc. change on their way through the polder area. In the investigated Polder A/B a retention of at least 50% of particle-bound phosphorus which was independent of the incoming suspended matter load from the Odra River was observed. The retention of particle-bound nitrogen and carbon varied seasonally to different extents. The presented balance demonstrates that particle-bound nutrient retention in polders is an important factor in the self-purification process of the river system. Some additional effort was done to study changes of plankton composition: during a joint field experiment in spring 1998, the authors determined biological parameters (abundance and biomass of phytoplankton and zooplankton) of water samples at polder inflow and outflow points.  相似文献   

16.
Phytoplankton size structure plays a significant role in controlling the carbon flux of marine pelagic ecosystems. The mesoscale distribution and seasonal variation of total and size-fractionated phytoplankton biomass in surface waters, as measured by chlorophyll a (Chl a), was studied in the Southern Yellow Sea using data from four cruises during 2006–2007. The distribution of Chl a showed a high degree of spatial and temporal variation in the study area. Chl a concentrations were relatively high in the summer and autumn, with a mean of 1.42 and 1.27 mg m−3, respectively. Conversely, in the winter and spring, the average Chl a levels were only 0.98 and 0.99 mg m−3. Total Chl a showed a clear decreasing gradient from coastal areas to the open sea in the summer, autumn and winter cruises. Patches of high Chl a were observed in the central part of the Southern Yellow Sea in the spring due to the onset of the phytoplankton bloom. The eutrophic coastal waters contributed at least 68% of the total phytoplankton biomass in the surface layer. Picophytoplankton showed a consistent and absolute dominance in the central region of the Southern Yellow Sea (>40%) in all of the cruises, while the proportion of microphytoplankton was the highest in coastal waters. The relative proportions of pico- and nanophytoplankton decreased with total biomass, whereas the proportion of the micro-fraction increased with total biomass. Relationships between phytoplankton biomass and environmental factors were also analysed. The results showed that the onset of the spring bloom was highly dependent on water column stability. Phytoplankton growth was limited by nutrient availability in the summer due to the strong thermocline. The combined effects of P-limitation and vertical mixing in the autumn restrained the further increase of phytoplankton biomass in the surface layer. The low phytoplankton biomass in winter was caused by vertical dispersion due to intense mixing. Compared with the availability of nutrients, temperature did not seem to cause direct effects on phytoplankton biomass and its size structure. Although interactions of many different environmental factors affected phytoplankton distributions, hydrodynamic conditions seemed to be the dominant factor. Phytoplankton size structure was determined mainly by the size-differential capacity in acquiring resource. Short time scale events, such as the spring bloom and the extension of Yangtze River plume, can have substantial influences, both on the total Chl a concentration and on the size structure of the phytoplankton.  相似文献   

17.
Bulk suspended particulate matter (SPM), chlorophyll a (Chl a), ignition loss, particulate organic carbon (POC), organic nitrogen, inorganic phosphorus (PIP), and organic phosphorus were investigated in the heavily eutrophic Arakawa River estuary, Japan. Chl a was high (approximately 35 microg l(-1)) in summer and low (approximately 6.7 microg l(-1)) in winter and autumn. POC from living phytoplankton accounted for approximately 34% and approximately 70% of total POC during low- and high-biomass seasons, respectively. During the low-biomass season, detrital POC distribution was conservative, and less reactive, land-derived materials mainly composed particulate organic materials (POM), but complex mixing of land-derived POM and autochthonous planktonic detritus caused nonconservative detrital POC behavior during the high-biomass season. PIP concentration in SPM decreased with increasing salinity, likely by desorption of soluble orthophosphate (ortho-P). The ortho-P released from SPM, 56% of the ortho-P input from the Arakawa River to the bay, was a significant potential source of biologically available phosphorus causing eutrophication of coastal environments.  相似文献   

18.
Ecological restoration of eutrophic lakes using aquatic macrophytes is an important and practical technology. Here, we investigated the response of phytoplankton and zooplankton to a large-scale 2015-built aquatic macrophyte enclosure (AME, 200,000 m2) screened of by a PVC net in Baima Lake, a eutrophic lake, from spring to autumn of 2019. AME significantly improved water quality by increasing water transparency, and reducing total nitrogen, total phosphorus, and chlorophyll-a content during the growing season. AME significantly decreased phytoplankton abundance and biomass and marginally increased zooplankton abundance and biomass. Phytoplankton and zooplankton communities were closely related to environmental factors, such as water temperature, conductivity, total phosphorus, chemical oxygen demand, and chlorophyll-a inside and outside the AME. The zooplankton:phytoplankton biomass ratio inside was slightly higher than outside the AME. Zooplankton and phytoplankton biomass were significantly positively correlated inside and outside the AME, as were chlorophyll-a and total phosphorus. We found phosphorus to be a key factor limiting primary productivity in Baima Lake, and that bottom-up effects were the main driver to control phytoplankton in the AME. Using aquatic macrophytes to reduce nutrient loads is an effective way to manage eutrophication in Baima Lake.  相似文献   

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