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1.
赵紫涵  宋贵生  赵亮 《海洋学报》2020,42(10):144-154
溶解氧(DO)是海洋生物生存不可缺少的要素。随着人类活动的增加,全球近岸海域低氧情况愈发严重,已经成为威胁海洋生态系统健康的重要因素。通过对2017年5?9月秦皇岛外海区域的观测调查,探讨了该海域低氧与酸化的形成机制并计算了月平均耗氧速率。结果表明,5月秦皇岛外海水体混合较为均匀,表、底层DO浓度一致,均大于8 mg/L;6月开始形成密度跃层,与此同时底层DO浓度和pH开始下降;8月底层呈现明显的低氧和酸化状态,DO浓度下降至2~3 mg/L,pH下降至7.8以下;9月随着层化消失,底层水体DO浓度和pH逐渐升高。相关性分析显示,DO和叶绿素a (Chl a)以及pH具有良好的耦合性,说明秦皇岛外海区域的低氧发生过程主要为局地变化。同时表明DO浓度和pH主要受水体中浮游植物的光合作用和有机物有氧分解的影响。通过箱式模型计算得到2017年6?8月密度跃层以下水体及沉积物耗氧速率为951~1193 mg/(m2·d)[平均为975 mg/(m2·d)]。综合来看,水体分层是秦皇岛外海低氧和酸化发生的先决条件,跃层以下的有机物分解耗氧则是底层水体发生低氧和酸化的重要原因。  相似文献   

2.
近50年来长江口及邻近海域溶解氧的时空分布变化   总被引:2,自引:0,他引:2  
长江口及邻近海域是我国最重要的河口海岸区域之一。基于多源、长时间序列的溶解氧资料,本文对近50年来长江口及邻近海域溶解氧的时空分布特征进行了研究。结果表明,近50年来,长江口及邻近海域表层溶解氧基本保持稳定,仅冬季呈现出一定的上升趋势。冬、春两季溶解氧浓度范围在7-11 mg/L,夏、秋两季为6-8 mg/L。长江口及邻近海域低氧值首先出现于5月,浙闽沿岸底层海域形成低氧水舌。水舌在夏季不断向北推进,北部断面低氧程度明显高于南部断面。到了秋季,低氧区逐渐消退,至冬季完全消失。在过去的50年中,长江口及邻近海域的低氧现象始于20世纪80年代。2000年起,低氧程度逐渐加深,低氧分布深度逐渐升高。本文基于大量的溶解氧历史数据开展研究,研究结论对于探讨长江口及邻近海域低氧区的发展变化具有非常重要的意义。  相似文献   

3.
文章利用2017年11月(秋季)和2018年4月(春季)对惠州考洲洋海域开展的两个航次水环境调查数据,分析了考洲洋海域表层溶解氧(DO)、化学需氧量(COD)、无机氮(DIN)、无机磷(DIP)和石油类(OIL)等典型水质因子的水平分布和季节变化情况。结果表明,秋季溶解氧、化学需氧量、石油类分别在盐洲岛以东附近海域、考洲洋湾顶海域和盐洲岛东南海域出现高值区,而无机氮在整个考洲洋无明显区域分布差异,无机磷含量呈现考洲洋内湾到湾口逐渐递减的趋势;春季化学需氧量、无机磷均在考洲洋湾顶出现高值区域,无机氮在盐洲岛以东附近海域出现高值区,而溶解氧和石油类无明显变化。从季节变化来看,秋季考洲洋海域溶解氧、化学需氧量和石油类平均含量均比春季高;无机氮、无机磷则相反,平均含量秋季低于春季。同时,文章还分别利用单因子和综合因子方法对海水有机污染状况进行评价并对其进行比较分析,结果表明,有机污染评价指数法可充分考虑多种水质因子,更适合对考洲洋水环境质量进行评价,得到较为客观的综合评价结果。  相似文献   

4.
基于2021年4~12月山东半岛烟台-威海北部海洋牧场区域4处连续观测站的长期观测数据, 研究了该海域底层溶解氧(dissolved oxygen, DO)浓度的季节变化特征, 并探讨了物理机制。该海域底层DO从春季到夏季逐渐降低, 而从夏季到秋季逐渐升高, 主要受温度控制; 各观测站DO均在8月达到最低值, 受垂向层结增强和底层生物化学耗氧增多的共同影响。底层DO浓度在东西方向差异较小, 而在南北方向上差异明显; 在春季和秋季DO浓度南高北低, 是由于层结较弱, 海水垂向混合向底层提供DO, 且南边水深更浅, DO更容易达到饱和或过饱和状态, 而水深更深处DO仍处于不饱和状态; 夏季DO浓度南边大于北边是季节性层结强度的空间差异所致, 同时南边底层DO浓度下降更快, 使其南北差异在夏季有所减小。在11月中旬, 近岸3个观测站底层DO快速增多, 可能是由于此前的大风过程引起浮游植物繁殖, 晴朗天气促进其光合作用使海水中DO增多, 之后海水层结消失, 海水充分垂向混合使丰富的DO到达底层。  相似文献   

5.
山东半岛沿岸海域陆海相互作用强烈,有着复杂水动力环境的同时也是我国重要的渔业资源区和水产养殖区,针对其DO时空变化特征及影响机制的研究具有重要意义。本文基于2015—2017年期间的监测数据,研究了山东半岛东部近海海水溶解氧的时空变化特征,并结合实测的温度、盐度、pH数据探究其影响机制。结果表明:表、底层溶解氧的空间分布形态基本一致,水平上呈现出北高南低、外海高近岸低、湾内低于湾外的块状分布特点,垂向上表层高于底层。在监测期间内,溶解氧的季节变化规律为春季最高,夏季最低,具体表现为3月>5月>10月>8月,乳山湾等海湾处的季节波动较大;表底层溶解氧的年际变化略有不同,但均趋于稳定,靖海湾和五垒岛湾近海溶解氧的年际变化显著。表观耗氧量在整个研究阶段的均值为–0.33 mg/L,呈现出基本平衡状态,但乳山湾沿岸海域受到陆源输入有机物的显著影响,贫氧状况频发。监测期间,溶解氧与海水温度呈显著负相关,两者相关系数高达–0.95,其中成山头至石岛海域的溶解氧浓度高值区与当地的低温海水相对应;盐度对溶解氧的影响则相对较弱;有机污染物的聚集常造成乳山湾近岸海域的pH异常,其大量耗氧是导致当地为溶解氧浓度低值区的重要原因。  相似文献   

6.
利用2018年夏季在西南黄海的现场调查资料,分析了海温、盐度和溶解氧(dissoloved oxygen,DO)分布特征。海区西侧的江苏沿海有明显的冷水带,冷水带对应表层较高的DO浓度。在海区南侧的长江口附近,盐度由南向北升高,上部海水DO浓度高,下部海水DO浓度低。综合现场观测数据、CCMP (Cross Calibrated Multi-Platform)海面风场遥感数据、AVHRR (NOAA-Advanced Very High Resolution Radiometer)海表温度遥感数据、SMAP (Soil Moisture Active and Passive)海表盐度遥感数据,初步分析了DO的影响因素:夏季偏南风产生从黄海向江苏沿海的上升流,可能有利于形成冷水带和DO高值区;长江冲淡水主要在海水上部向西南黄海扩展,它对水动力的影响及携带的营养盐是形成上层DO高值和底层缺氧现象的重要原因。  相似文献   

7.
乳山湾邻近海域低氧现象及成因浅析   总被引:1,自引:0,他引:1  
根据2009-06-2009-09及2010-05-2010-06在乳山湾及其毗邻海域的综合调查,分析了该海域溶解氧的变化,初步探讨了影响溶解氧变化及底层低氧形成的原因。结果表明,夏季乳山湾邻近海域存在季节性低溶解氧区,溶解氧在6,7月份相对较高,而在8,9月份相对较低,最低值出现在8月份,为3.21mg/L(饱和度为35.5%),表观耗氧量为5.82mg/L。乳山湾外邻近水域溶解氧略高于湾口和湾内。底层溶解氧水平受到潮汐的影响,具有较大的周日波动性,变化范围介于3.74~8.26mg/L;在落潮时质量浓度降低而在涨潮时质量浓度升高。在这一区域存在较为强烈的温、盐跃层,从而限制了表、底层溶解氧的交换,而COD质量浓度的升高为这一区域的耗氧过程提供了一定的物质基础。潮汐、黄海冷水团的顶托作用、有机物质在底层水域的氧化作用以及底泥耗氧过程导致底层溶解氧的亏损。  相似文献   

8.
根据“908”ST04区块调查的夏、冬、春、秋季四个航次和“908”补充调查的8月航次资料对长江口及邻近海区表层水体溶解氧及其饱和度进行了探讨.研究表明东海北部表层水体在夏季和春季以浮游植物光合作用为主要控制过程,特别是7、8月份长江口外、杭州湾外及浙江近海存在大范围的强光合作用区;秋季以有机质氧化分解过程为主,表层溶...  相似文献   

9.
Eutrophication often causes hypoxia in estuarine and coastal systems, but the mechanisms that control hypoxic events vary among estuaries and are often difficult to discern. We monitored surface and bottom dissolved oxygen (DO) in the Upper Newport Bay (UNB), a tidally mixed estuary in southern California subject to anthropogenic nutrient loading, eutrophication and hypoxia. Our goal was to identify the environmental factors regulating DO dynamics. Six hypoxic events occurred between June and November and were associated with a combination of low solar radiation, increased freshwater discharge following precipitation, and enhanced haline stratification during reduced tidal range periods. At the head of the estuary, high macroalgal biomass and pronounced haline stratification resulted in high DO in the surface layer and low DO in the bottom layer. Oxygen-rich and oxygen-poor waters were transported down-estuary by ebb tides, resulting in DO heterogeneity throughout the UNB. Cross-wavelet analysis illustrated the down-estuary propagation of high/low DO signal correlated with the phases of diurnal photosynthetic and semi-diurnal tidal cycles.  相似文献   

10.
叶文建  杜萍  寿鹿 《海洋学研究》2021,39(4):91-100
夏季,长江口底层极易发生大面积低氧甚至缺氧.比较2016和2017年夏季长江口缺氧区(DO<2 mg/L)、低氧区(2 mg/L3 mg/L)浮游动物群落(>160μm)特征发现:2016年群落丰度和生物量均表现为缺氧区明显高于低氧区和正常海区;中小型桡足类、胶质浮游动物丰度表现为缺氧区和低氧区均高于正常海区;胶质浮游动物的组成,在低氧程度较严重的2016年夏季,以滤食性的海樽纲和有尾纲为主,在2017年夏季,以肉食性毛颚动物为主.  相似文献   

11.
根据1987年6,8,11月和1988年2月4个航次珠江口伶汀洋的调查资料,分析了溶解氧的特征。结果表明:溶解氧含量表层均高于底层,周年变化呈现从夏季到冬季逐渐上升,且明显受珠江径流的影响,溶解氧(基本上是不饱和状态)与盐度成负相关。有机物和营养盐均影响溶解氧,但水温仍为溶解氧主要影响因素。  相似文献   

12.
大亚湾水域营养盐的分布变化   总被引:13,自引:0,他引:13  
本文通过对大亚湾水域溶解氧,氮、磷、化学耗氧量、盐度、PH等环境因子的调查,对该水域溶解氧的含量分布和季节变化进行了分析,同时,对湾内NO3-N、NO2-N、NH4-N及PO4-P的时空分布以及季节变化规律进行了讨论,并以氧的饱和度、PH、化学耗氧量、无机氮等单项指标和综合指标研究了该水域的富营养状况。  相似文献   

13.
基于2020年夏季的大面航次观测数据,分析了烟台—威海北部海洋牧场及邻近海域海水溶解氧浓度垂向分布最小值(氧最小值层)的空间分布特征,并探讨了影响因素。从6月至8月,海水溶解氧浓度不断减小,垂向结构亦存在显著变化。海水溶解氧浓度垂向分布的最小值主要集中于7月的近岸海域,最小值大致从外海向近岸方向减小,其距离海底高度及与底层溶解氧浓度之差的绝对值均于双岛湾邻近海域为最大。海水溶解氧浓度垂向分布的最小值位于最强密度层结以下。但是海水溶解氧浓度垂向分布最小值的强度向北减小,而密度层结向北增大,两者的空间分布基本相反,说明密度层结抑制垂向湍流扩散可极大减少深层海水溶解氧的来源,是海水溶解氧浓度垂向分布最小值形成的必要条件,但不是主导因素。在海水溶解氧浓度垂向分布的最小值层,表观耗氧量存在垂向分布的最大值,大部分站点的pH存在垂向分布的最小值,说明局地增强、持续的生物地球化学耗氧是控制海水溶解氧浓度垂向分布最小值形成和空间分布的一个重要过程。研究结果表明氧最小值层是夏季烟台—威海北部近岸海水溶解氧垂向结构的典型特征之一。  相似文献   

14.
基于2006-2007年在南黄海冷水团海域开展的4个季度月的调查资料, 重点研究了该海域溶解氧(DO)、叶绿素a(Chl a)最大值现象和营养盐累积的季节演变规律。结果表明:春至秋季黄海冷水团海域DO和Chl a最大值层深度具有先加深后变浅的趋势, 出现最大值层的海域面积呈现出先增大后缩小的变化过程, DO和Chl a最大值层的深度及面积在夏季均达到最大, 至冬季DO和Chl a最大值现象消失;夏季冷水团海域深水区DO最大值处的氧含量整体高于春季, 而冷水团边界附近氧最大值处的氧含量整体低于春季;春至秋季冷水域深水区次表层Chl a最大值处的Chl a含量先降低后升高, 于夏季时最低, 入秋后开始升高, 而一年四季中冷水域边界附近Chl a最大值处的Chl a含量却在夏季时最高, 而且显著高于深水区。黄海冷水团海域的底层营养盐储库具有一定的空间异质性, 冷水域底层通常分别在深水区和西部边界处存在营养盐高值核心, 其中位于深水区的高值核心位置季节变化不明显, 而位于冷水域西部边界附近的高值核心位置则呈现出自春季至夏季向西移动、入秋后又向东部移动的季节变化特征。水文物理因素和生物化学过程对DO、Chl a最大值及营养盐储库的季节演变具有重要的调控作用。  相似文献   

15.
The concentration distribution was studied for dissolved oxygen, phosphorus forms, and particulate matter in Curonian Bay of the Baltic Sea in poorly known consolidated ice cover conditions during the winter seasons of 2010, 2011, and 2013. The surface and near-bottom waters were sampled at 51 stations. The ice cover exerts no significant effect on the typical seasonal variation of all considered parameters in the basin. The concentrations of mineral and organic phosphorus in the bay appeared to be lower by factors of 2–4 compared to summer values. A two- to threefold decrease in the concentrations of organic phosphorus since 2010 to 2011 and then to 2013 was recorded in the bay, which resulted from a decrease in phosphorus production by phytoplankton. Despite water being isolated from air by ice, the absence of wave mixing, and the decrease in oxygen production owing to the seasonal winter decrease in the intensity photosynthetic processes, no oxygen deficiency was found in the basin. This is because oxygen supplied to the bay by river runoff and production by photosynthesis in the bay exceed the utilization for oxidation of organic matter resulting from low bioproductivity of the waters during winter. The winter decrease in the fraction of biogenic particulate matter is seen as a four- to sevenfold drop in its total concentration in the waters compared to summer seasons. The absence of wave roiling of bottom sediments also caused a decrease in the secondary supply of biogenic particulate matter from sediments into near-bottom waters. No negative trends of geoecological conditions in the bay were revealed by the studied parameters under consolidated ice cover conditions.  相似文献   

16.
北黄海夏季溶解氧与表观耗氧量年际变化时空模态   总被引:1,自引:0,他引:1       下载免费PDF全文
根据北黄海夏季断面1976~2015年历年8月监测资料,采用时空分析等方法,研究了北黄海夏季断面溶解氧含量和表观耗氧量年际变化时空模态.溶解氧含量与表观耗氧量年际变化分别有3种主要时空模态,第一、二模态是近底层水体低氧、贫氧年际变化的主要影响分量,第三模态是混合层水体高氧、富氧年际变化主要影响分量.生物活性组分(BAC)耗-生氧与海洋环流输送增减氧过程是夏季溶解氧含量与表观耗氧量年际变化主要影响因素,温跃层强度年际变化不是主要影响因素.2001年后,表层月海气氧通量年际变化由氧汇分布为主转变为氧源分布,表层溶解氧含量增大以及生物活性组分生氧作用增强年际变化是这种转变的原因.北黄海夏季断面年平均溶解氧含量、表观耗氧量空间分布相似性较低,夏季断面年平均温度、盐度以及沉积物需氧、风生环流是年平均溶解氧含量、表观耗氧量分布的主要影响因素.生物活性组分耗-生氧过程是断面各层月平均溶解氧含量、表观耗氧量年际变化主要影响因素,温度变化是次要因素.由于断面水体低氧幅度与贫氧面积显著线性增大,与30多年前比较,黄海溶解氧含量、表观耗氧量场季节变化空间分布与时间形态已经发生改变.  相似文献   

17.
The thermohaline and hydrochemical characteristics of the Lena River’s estuarine zone were investigated in the Buor-Khaya Bay and the southeastern Laptev Sea in September of 2005. A tongue of river water with high nutrient content and increased turbidity was identified in the bay. It is shown that the two-layer structure in the bay is disturbed by warm freshwater lenses. The strong vertical stratification in the shelf zone results in sharply contrasting characteristics of the surface and bottom waters. It is established that the concentrations of biogenic elements regularly change depending on the thermohaline characteristics of the waters and their stratification degree. Stagnant bottom waters with low dissolved oxygen contents and high concentrations of phosphates, nitrates, and ammonium are recorded in the eastern part of the bay. The bottom waters have different hydrochemical characteristics due to their different origin.  相似文献   

18.
Observation data obtained in the 32°N transect (transect E) in 1975–1995 were used to analyze the long-term changes in dissolved oxygen (DO) concentration and near-bottom hypoxic water in the East China Sea (ECS). A declining trend in annual average DO concentration and the degree of DO saturation was observed. Consequently, the apparent oxygen utilization in the western waters of transect E was on the rise. There was a seasonal hypoxic phenomenon in near-bottom water in the western water of transect E. The width of hypoxic water formed in summer gradually extended eastward along the continental shelf (transect E) at the rate of 3.12 km year−1. Three potential reasons might have caused the formation and maintenance of near-bottom hypoxic water. First, the special hydrological topography and hypoxic deep water of the Taiwan Warm Current provided a backdrop for the hypoxic zone. Second, in summer, the strength of water column stratification restricts water exchange. Third is the occurrence and decay of the phytoplankton bloom. In surface water, nutrient concentrations increased gradually, and chlorophyll (Chl a), primary production, and phytoplankton biomass in summer increased. On the other hand, the community structure of phytoplankton, zooplankton, and zoobenthos became simple. Blooming phytoplankton consumed plenty of nutrients in the surface, but the upwelling of nutritious bottom water was suppressed by the strong thermocline. As a result, sinking of phytoplankton was enhanced because of nutrient deficiency. In recent years, a serious lack of zoobenthos in the study area corresponded to a higher degree of hypoxia. This phenomenon would have a major effect on the evolution of ecological dynamic systems in the ECS.  相似文献   

19.
为探讨2013年长江口及其邻近海域游泳动物中无脊椎动物群落特征,作者根据5月(春季)和11月(秋季)长江口渔业资源综合调查数据,探讨无脊椎动物优势种分布和群落结构与环境因子的关系。结果显示, 2013年共采集无脊椎动物25种,隶属于2纲5目11科,甲壳动物为优势类群。春季优势种为三疣梭子蟹(Portunus trituberculatus)和日本枪乌贼(Loliolus japonica);秋季优势种为三疣梭子蟹、中华管鞭虾(Solenocera melantho)、口虾蛄(Oratosquilla oratoria)和双斑蟳(Charybdis bimaculata),其中三疣梭子蟹在两季节优势度均为最高。春、秋两季无脊椎动物群落差异极显著,两个季节都存在南、北两个群聚组。无脊椎动物资源量主要集中在优势种群,秋季丰度和生物量均高于春季。无脊椎动物群落季节内站位之间相似性较低,季节间差异较高,表现出较明显的空间异质性和季节演替。冗余分析(RDA)结果显示,春、秋季无脊椎动物群落时空差异显著,两季节均存在南、北两个群聚组。优势物种对悬浮物的选择性不同,三疣梭子蟹、口虾蛄和双斑蟳丰度的高值区均集中在高浊度海域,日本枪乌贼和中华管鞭虾更倾向于分布在清澈的海域。温度主要影响物种的季节洄游而驱动无脊椎动物群落的时间变异,悬浮物含量主要影响动物生存条件而驱动群落的空间变异。  相似文献   

20.
Coastal marine environments are important links between the continents and the open ocean. The coast off Mangalore forms part of the upwelling zone along the southeastern Arabian Sea. The temperature, salinity, density, dissolved oxygen and stable oxygen isotope ratio (δ18O) of surface waters as well as those of bottom waters off coastal Mangalore were studied every month from October 2010 to May 2011. The coastal waters were stratified in October and November due to precipitation and runoff. The region was characterised by upwelled bottom waters in October, whereas the region exhibited a temperature inversion in November. The surface and bottom waters presented almost uniform properties from December until April. The coastal waters were observed to be most dense in January and May. Comparatively cold and poorly oxygenated bottom waters during the May sampling indicated the onset of upwelling along the region. δ18O of the coastal waters successfully documented the observed variations in the hydrographical characteristics of the Mangalore coast during the monthly sampling period. We also noted that the monthly variability in the properties of the coastal waters of Mangalore was related to the hydrographical characteristics of the adjacent open ocean inferred from satellite-derived surface winds, sea surface height anomaly data and sea surface temperatures.  相似文献   

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