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1.
对长江口及邻近海域表层沉积物中的生物硅进行了测定,分析了生物硅的分布特征及影响生物硅保存与分布的因素。结果表明:在整个海域调查范围内,表层沉积物中BSi含量范围为0.14%~0.70%,平均值为0.41%,与世界其他近海沉积物中BSi含量相比,处于中等偏下水平。黏土矿物和粉砂较多的沉积物中富集着更多的BSi,而砂含量较高的沉积物中BSi的含量较低。表层沉积物颗粒比表面积越大,越有利于BSi的赋存和累积。BSi的分布特征和TOC、TN分布存在一定的关联,说明2011年8月长江口及邻近海域表层沉积物中有机物的来源之一可能为硅藻;相对于TOC,BSi有更高保存率。表层沉积物表面富集着丰富的底栖硅藻,这是表层沉积物中BSi比同时期悬浮颗粒物中BSi的平均百分含量高一个数量级的重要原因。调查区域内BSi的沉积通量显著高于沉积物-海水界面SiO2-3-Si的释放通量,说明沉积物-海水界面以BSi的沉积为主,长江口及邻近海域是BSi的汇。  相似文献   

2.
根据2015年5月对长江口及其邻近海域的生态环境调查资料, 探讨长江口春季表层沉积物总有机碳(TOC)、总氮(TN)、总磷(TP)和生源硅(BSi)4类生源要素的空间分布和来源。结果表明: 2015年春季长江口表层沉积物TOC、TN、TP和BSi平均含量分别为0.315%、0.041%、0.066%和0.450%, 其中, 沉积物中TOC、TN受到陆源输入和海洋自生输入双重影响, 且海洋自生组分的贡献较大, 二者空间分布均呈现南部分布最高并沿西北方向递减趋势; TP分布主要受陆源输入影响, 并呈西北向东南递减趋势; BSi来源于生物沉积, 总体呈现南部高、北部低的分布趋势。与2007年相比, 长江口表层沉积物有机碳、氮含量降低, 东南外海区域替代浑浊区域成为表层沉积物生源要素含量最高区域, 且陆源输入对长江口表层沉积物生源要素的贡献趋于减弱。  相似文献   

3.
针对2015年长江口及其邻近海域所采集的43个表层沉积物样品,通过粒径分析以及生物硅(BSi)、总有机碳(TOC)和总氮(TN)等生源要素参数的测定,系统探讨了长江口表层沉积物粒径及生源要素的时空分布特征以及各要素的相互关系。结果表明:(1)长江口及其邻近海域表层沉积物组成以黏土质粉砂、粉砂质砂和砂为主。研究区域内,粒径组成呈现明显的"南细、北粗,近岸细、离岸粗"的分布特征,长江口及浙江近岸泥质区的表层沉积物粒度最细,中值粒径(Φ)在5以上;(2)调查海域表层沉积物中BSi含量在0.22%~1.82%之间,沉积物中粉砂、黏土含量及平均粒径(Φ)均与BSi含量呈显著正相关(P0.01),黏土矿物和粉砂较多的细颗粒沉积物更易累计和保存BSi;(3)TOC和TN的含量分别在0.04%~1.17%和0.01%~0.26%之间,其分布特征与沉积物中值粒径(Φ)和BSi的分布也有明显的正相关性,说明细颗粒沉积物更有利于有机质保存,表层沉积物中的硅藻可能是有机物的来源之一。  相似文献   

4.
从研究胶州湾沉积物中生源硅入手,利用对比分析对其限制的原因进行了探讨.研究表明,相对于邻近的黄海和渤海沉积物,胶州湾沉积物中的生源硅含量较高,在湾内外的三个站表层沉积物中生源硅的含量分别为1.58%、1.44%、1.48%,在整个柱状样中的平均含量分别为1.54%、1.48%和1.39%,属于高生源硅含量区.沉积物中BSi∶TN远远大于1,BSi∶TP也远远大于16,与水体中Si∶TN〈1,BSi∶16P〈1相反,同时沉积物中的OC∶BSi值远远小于Redfield比值(106∶16),表明沉积物中有机质的分解速率远大于BSi的分解速率,生源硅分解的较慢.研究还发现,生源硅和有机碳的含量有明显的正相关关系,二者共同作用的结果是造成相当大的一部分BSi被埋藏,不能参与再循环,从而水体中的硅被永久地“清除”,造成水体硅的缺乏,这可能是造成胶州湾浮游植物生长硅限制的根本原因.湾外BSi较湾内低的主要原因是湾外的沉积物因其有机质含量低,且沉积物的颗粒粗而造成BSi的溶解速率比湾内的高.根据沉积物中生源硅的沉积通量和初级生产力的对比可推知,由硅藻形成的生源硅在沉降过程中平均只有15.5%被分解重新进入水体,其余的84.5%可被埋葬而形成沉积物.而胶州湾沉积物中的硅通过沉积物-海水界面返回到水体中的速率也小于生源硅的沉积速率,这进一步证明了海水中的硅不断向沉积物迁移,导致水体中硅含量持续的低水平,进而使Si成为浮游植物生长限制因子的主要原因.  相似文献   

5.
对采集自长江口崇明东滩潮间带的沉积物柱状样进行了生源硅含量(BSi)测定。BSi的测定采用了7h的碱液连续提取法以校正样品中粘土矿物非生源硅的溶出对测定结果的影响。结果表明,与渤海和黄海沉积物类似,研究区域沉积物BSi含量也处在较低水平(<0.5Si%),沉积物中所含有的陆源粘土矿物也使SiO32?在间隙水中的浓度(<250μmol/L)远远低于纯BSi的溶解度。沉积物中含氮量以及N/BSi摩尔比等指标随深度呈现出降低的趋势,这反映了沉积物中的有机物在早期成岩过程中的降解,并且N比BSi降解得快。沉积物中δ15N值与含氮量、N/BSi摩尔比等指标都具有一定的正相关关系,显示在早期成岩过程中,与14N相比,15N更容易从有机物中释放出来。此外,在沉积物10—15cm深度处,发现含氮量、N/BSi比值等指标异常的变化,可能反映了修坝、台风等偶然事件对沉积过程的影响。  相似文献   

6.
以东海、黄海2006年4月、10月航次采集的沉积物样品为研究对象,结合沉积物中生物硅(BSi)含量的空间分布特征进而讨论BSi的反演潜力。研究发现,调查海域表层沉积物中BSi的含量介于0.018%~2.516%,平均值为0.726%,柱状沉积物中BSi的含量波动较小,相对稳定。整体而言BSi含量与相应年代的浮游植物现存量变化的趋势相近。经一元线性分析发现BSi含量与硅藻生物量的相关性显著。为进一步证实由BSi含量反演古生产力的有效性和可信度,采用Tun-nicliffe等的方法探讨了BSi含量在沉积物中的稳定性,调查结果表明,近150 a来BSi几乎没有降解,能够稳定地保存于沉积物中。综上可以初步判断沉积物中BSi含量可作为古生产力指标来反演古生产力的潜力。  相似文献   

7.
长江口及其邻近海域的水文、地质情况极为复杂,对沉积物的成岩作用和间隙水中元素的生物地球化学过程,均有显著影响。本文作者曾于1980年7月对长江口邻近海域沉积物与间隙水的地球化学特征进行了调查,调查船为“金星”号,工作范围为122°00′—126°08′E,30°30′—32°31′N,共测定18个站位(图1)表层沉积物氧化还原性质的参量及间隙水主要化学成分、营养盐和微  相似文献   

8.
黄、东海柱状沉积物中生物硅含量的分析   总被引:15,自引:0,他引:15  
对东、黄海2 0 0 0年10月和2 0 0 1年5月2个航次所获得的表层及柱状沉积物样品进行分析,在单点提取测定方法的基础上采用连续提取方法,利用斜率校正法扣除非生物硅的干扰,测定了东、黄海柱状沉积物中生物硅的含量。从整个东、黄海海域来看,沉积物中生物硅的含量<1% ,属于低含量海域;讨论了沉积物样品处理方法对分析结果的影响,在此基础上分析了不同海区柱状沉积物中生物硅的分布特征以及沉积物中叶绿素、水体中硅酸盐、叶绿素、N/P比值等生态要素与沉积物中生物硅分布的相关关系。  相似文献   

9.
胶州湾沉积物-海水界面硅的交换速率及其影响因素探讨   总被引:2,自引:1,他引:1  
采用实验室培养法在原位温度和溶氧条件下测定了胶州湾沉积物-海水界面硅的交换速率,并探讨了相关环境因子对界面交换速率的影响机制。结果表明,胶州湾沉积物-海水界面硅的交换表现为从沉积物向水体释放,其交换速率在947~4 889 μmol/(m2·d)范围内,平均速率为1 819 μmol/(m2·d)。表层沉积物中叶绿素a(Chl a)和总有机碳(TOC)是影响胶州湾沉积物-海水界面硅交换速率的主要环境因子,同时表层沉积物的含水率(φ)、生源硅(BSi)和粘土含量以及间隙水中溶解硅酸盐(DSi)对沉积物-海水界面硅的交换也有重要影响。由此可推知,胶州湾沉积物-海水界面硅的交换速率主要受生物活动和溶解-扩散双重过程调控,而表层沉积物粒度与底层水体中DSi对胶州湾硅的释放影响较小。  相似文献   

10.
南海东北部和南部海域表层沉积物生物硅研究   总被引:1,自引:0,他引:1       下载免费PDF全文
本研究测定了南海东北部和南部海域表层沉积物的生物硅含量(SiO2%),其含量范围分别为1.08%-3.01%和0.79%-9.06%,平均值分别为1.76%和4.22%.研究结果表明,南海表层沉积物中的生物硅含量与站位水深呈正相关关系;南海东北部的表层沉积物中的生物硅含量与其中的矿物含量、铁离子浓度、间隙水中的营养盐浓度不存在明显的相关性;南海南部海域表层沉积物中的生物硅含量与烧失量、有机碳含量、碳酸盐含量呈正相关关系,与粘土矿物含量相关性不明显.  相似文献   

11.
Temporal and spatial distribution of biogenic (BSi) and lithogenic (LSi) silica were studied in the Changjiang (Yangtze River) Estuary and its adjacent area. The annual average BSi and LSi concentrations were (1.71 ± 1.79) μmol/L and (0.56 ± 1.41) mmol/L, respectively. Both BSi and LSi were high in the inshore areas, where they received terrigenous discharge from the Changjiang, and decreased towards the offshore region. BSi and LSi were most abundant at the near bottom layer due to the high sedimentation rates and resuspension of sediment. Diatom blooms occurred in summer with high Chl a concentration in the surface layer, which induced that BSi in the surface layer during summer was obviously higher than that in the surface layer of other seasons. LSi concentration was maximal in autumn and spring and minimum in summer, associated with the seasonal variation of SPM values. Drifting investigation and mesocosm experiments were conducted during dinoflagellate bloom, aiming to understand the effect of nutrients on BSi by changing the phytoplankton composition. The results show that the low dissolved inorganic phosphorus concentration and high molar ratio of N/P (dissolved inorganic nitrogen vs. dissolved inorganic phosphorus), were the important factors for decreasing diatom biomass in the study area, and it would subsequently decrease the BSi concentration in aquatic ecosystem.  相似文献   

12.
Within the framework of the EU-funded BENGAL programme, the effects of seasonality on biogenic silica early diagenesis have been studied at the Porcupine Abyssal Plain (PAP), an abyssal locality located in the northeast Atlantic Ocean. Nine cruises were carried out between August 1996 and August 1998. Silicic acid (DSi) increased downward from 46.2 to 213 μM (mean of 27 profiles). Biogenic silica (BSi) decreased from ca. 2% near the sediment–water interface to <1% at depth. Benthic silicic acid fluxes as measured from benthic chambers were close to those estimated from non-linear DSi porewater gradients. Some 90% of the dissolution occurred within the top 5.5 cm of the sediment column, rather than at the sediment–water interface and the annual DSi efflux was close to 0.057 mol Si m−2 yr−1. Biogenic silica accumulation was close to 0.008 mol Si m−2 yr−1 and the annual opal delivery reconstructed from sedimentary fluxes, assuming steady state, was 0.065 mol Si m−2 yr−1. This is in good agreement with the mean annual opal flux determined from sediment trap samples, averaged over the last decade (0.062 mol Si m−2 yr−1). Thus ca. 12% of the opal flux delivered to the seafloor get preserved in the sediments. A simple comparison between the sedimentation rate and the dissolution rate in the uppermost 5.5 cm of the sediment column suggests that there should be no accumulation of opal in PAP sediments. However, by combining the BENGAL high sampling frequency with our experimental results on BSi dissolution, we conclude that non-steady state processes associated with the seasonal deposition of fresh biogenic particles may well play a fundamental role in the preservation of BSi in these sediments. This comes about though the way seasonal variability affects the quality of the biogenic matter reaching the seafloor. Hence it influences the intrinsic dissolution properties of the opal at the seafloor and also the part played by non-local mixing events by ensuring the rapid transport of BSi particles deep into the sediment to where saturation is reached.  相似文献   

13.
以长江口及邻近海域为研究区域,采用改进后的SEDEX法对沉积物中各形态磷的含量进行了分析,并通过模拟实验探讨了沉积物再悬浮对上覆水体磷酸盐浓度的影响。结果表明:碎屑磷(De-P)是沉积物磷的主要赋存形态,占总磷(TP)的50%以上;其次是可提取态有机磷(Or-P)和非活性有机磷(Re-P);生物可利用磷(BAP)占总磷的比例约为21%,可提取态有机磷(Or-P)是生物可利用磷(BAP)的主要存在形态。沉积物再悬浮时,水体磷酸盐的浓度显著升高,说明沉积物再悬浮会引起沉积物中磷的释放;水体磷酸盐浓度升高主要源于沉积物中磷的释放,而间隙水的贡献较低。沉积物发生再悬浮时,厌氧条件相对于好氧条件,更有利于沉积物磷的释放。  相似文献   

14.
2017年6月在珠江口及近岸海域61个站位采集了悬浮颗粒物生物硅(BSi,biogenic silica)和叶绿素a(Chl a)。利用RAGUENEAU et al(2005)提出的碱提取法测定了悬浮颗粒物生物硅,探讨不同环境条件下BSi浓度以及碱性提取液中岩源硅(LSi,lithogenic silica)的干扰程度。结果显示,Chl a质量浓度范围为0.06~8.64 μg·L-1,悬浮颗粒物BSi浓度从低于检测限到14.3 μmol·L-1,LSi浓度范围为0.00~9.56 μmol·L-1;LSi/(LSi+BSi)比均值为0.38 mol·mol-1。提取液中测得的Si/Al比均值为2.42 mol·mol-1,与RAGUENEAU et al(2005)报道值接近。研究区域内的表层BSi反映了硅藻的生物量,与Chl a存在显著线性相关。LSi对BSi测量的干扰程度存在明显的空间差异,总体上近岸BSi和LSi高,LSi/(LSi+BSi)比低;外海BSi和LSi低,LSi/(LSi+BSi)比高;河口内BSi低,LSi高,LSi/(LSi+BSi)比高;上升流区BSi和LSi高,LSi/(LSi+BSi)比高;底层较表层具有更高的LSi和LSi/(LSi+BSi)比。最后,对常用的几种碱提取法在应用时存在的问题作了探讨。  相似文献   

15.
利用分级浸取分离法将黄海、东海陆架区沉积物氮分为转化态氮(TF-N)和非转化态氮,并将可转化态氮区分为4种形态:离子交换态氮IEF-N 、碳酸盐结合态氮CF-N 、铁锰氧化态氮IMOF-N及有机态和硫化物结合态氮OSF-N。 对各形态氮的平面、垂直和沉积剖面年际分布进行了分析,并进一步探讨了该区域氮形态与古生产力的替代指标——生物硅(BSi)的相关性,揭示了氮形态的地球化学特征及与浮游植物总量的关系。结果表明,黄海、东海陆架区表层沉积物中可转化态氮占总氮的百分比为16.81%,可转化态氮中4种形态氮的平均含量为:IMOF-N(66.65 μg/g)>IEF-N(22.96 μg/g)>OSF-N(17.40 μg/g)>CF-N(11.26 μg/g),IMOF-N是可转化态氮的优势形态;柱状沉积物中各形态氮垂直分布不同,长江口沉积物中各形态氮垂向变化幅度大于南黄海中部;离子交换态氮IEF-N和铁锰氧化态氮IMOF-N对浮游植物总量贡献较大。  相似文献   

16.
Silicic acid (DSi) benthic fluxes play a major role in the benthic–pelagic coupling of coastal ecosystems. They can sustain microphytobenthos (MPB) development at the water–sediment interface and support pelagic diatoms when river DSi inputs decrease. DSi benthic fluxes have been studied at the seasonal scale but little is known about their dial variations. This study measured the amplitude of such variations in an intertidal area over an entire tidal cycle by following the alteration of DSi pore water concentrations at regular intervals over the flood/ebb period. Furthermore we independently estimated the potential DSi uptake by benthic diatoms and compared it to the variations of DSi pore water concentrations and fluxes. The microphytobenthos DSi demand was estimated from primary production measurements on cells extracted from the sediment. There were large changes in DSi pore water concentration and a prominent effect of tidal pumping: the DSi flushed out from the sediment at rising tide, occurs in a very short period of time, but plays a far more important role in fueling the ecosystem (800 μmol-Si m−2 d−1), than diffusive fluxes occurring throughout the rest of the tidal cycle (2 μmol-Si m−2 d−1). This process is not, to our knowledge, currently considered when describing the DSi cycling of intertidal sediments. Moreover, there was a large potential MPB requirement for DSi (812 μmol-Si m−2 d−1), similar to the advective flow periodically pumped by the incoming tide, and largely exceeded benthic diffusive fluxes. However, this DSi uptake by benthic diatoms is almost undetectable given the variation of DSi concentration profiles within the sediment.  相似文献   

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