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91.
基于熵权的产生物柴油微藻开发潜力评价   总被引:1,自引:0,他引:1  
结合青岛地区不同季节室外温度变化特点,采用熵权法对9株微藻利用发电厂废气生产生物柴油的户外开发潜力进行评估。选取油脂产率、油脂组成、CO2耐受性、破壁难易度和温度适应性5项指标,根据实验室测得的数据进行计算,得出春冬季以上5项指标的权重分别为0.261、0.002、0.059、0.211和0.467,而夏秋季以上5项指标的权重分别为0.098、0.001、0.022、0.079和0.801。在此权重的基础上,得出在春冬季节开发潜力最大的藻株为微拟球藻(Nannochloropsis sp.ZL-12),在夏秋季节开发潜力最大的藻株为球等鞭金藻(Isochrysis galbana C5001)。本方法为户外大规模开发生物柴油的微藻藻种选择提供了一个有效的思路。  相似文献   
92.
杨章武 《台湾海峡》2007,26(4):583-589
本文报道了4种微藻不同浓度对方斑东风螺幼虫生长和变态的影响.结果表明,幼虫对4种微藻都能摄食,当投喂不同浓度的牟氏角毛藻、湛江叉鞭金藻时,摄食角毛藻(20×104cells/cm3)生长最快达77.9μm/d、变态率52.5%;摄食金藻(20×104cells/cm3)变态率最高达59.0%、生长速度70.4μm/d,随金藻浓度的上升,幼虫生长速度和变态率都上升.投喂不同浓度的青岛大扁藻时,最高变态率是24.4%(1×104cells/cm3),最快生长速度是59.3μm/d(7×104cells/cm3),随扁藻浓度的上升,幼虫的生长速度上升而变态率下降.摄食云微型藻幼虫生长缓慢,浮游期全部死亡.幼虫单独摄食角毛藻、金藻和扁藻,其首次出现变态个体的日龄分别是10、11、14d,而完成变态的日龄分别是22~23d、21~23d和26~28d.比较上述4种微藻,角毛藻和金藻是方斑东风螺幼虫的最适饵料,根据大水体人工育苗的具体条件,合适浓度应为角毛藻(5~10)×104cells/cm3,金藻(10~15)×104cells/cm3.而扁藻不宜单独投喂,作为辅助饵料较合适.  相似文献   
93.
This article presents a historical overview of estuarine microphytobenthos (MPB) research in South Africa published over the period 1950 to the present, highlighting major milestones, challenges and estuarine management problems, as well as future research needs within the South African context. The studies that were covered comprise peer-reviewed books and journal articles on relevant research conducted in any estuarine environment during the period reviewed. There was a general increase in MPB research outputs over the decades, from only two publications in the 1950s, to over 20 outputs between 2010 and the present. Whereas the MPB studies in South Africa cover a broad spectrum of themes, the research priorities in these works have changed from taxonomically biased studies to those of ecologically based research. Research in the 1950s and 1960s was exclusively taxonomic in nature, with the first ecological investigation incorporating MPB being produced in the 1970s. By the 1980s, ecological studies dominated the research outputs and this trend has persisted to the present. The 1990s and 2000s saw the rise of research into the role of fresh water as a driver of MPB dynamics, whereas the period 2010 to the present saw an increase in more diverse ecological themes, ranging from an autecological investigation to food-web studies and the assessment of multiple drivers of MPB dynamics. However, the majority of studies have focused on either diatoms or estimates of overall MPB biomass. Moreover, there is a regional underrepresentation that runs broadly along biogeographic lines, with the bulk of the work having been conducted in the warm-temperate and subtropical zones of South Africa. Challenges and future research needs for the region are outlined, as is the need to expand MPB research to include other aspects of the biology and ecology of this flora.  相似文献   
94.
几种海洋微藻的碱性磷酸酶性质初步研究   总被引:4,自引:0,他引:4  
对5种海洋微藻产生的碱性磷酸酶的性质进行了初步研究并确定了碱性磷酸酶的测定条件。结果表明,在pH 8.2的环境中,各藻产生的碱性磷酸酶最佳反应温度在40~50℃内,且存在一定差异;40℃下酶促反应恒速时间及米氏常数也有所不同,酶活恒速时间顺序为东海原甲藻(Prorocentrum donghaiense)<强壮前沟藻(Amphidinium carterae)<旋链角毛藻(Chaetoceros curvisetus)<中肋骨条藻(Skeletonema costatum)<塔玛亚历山大藻(Al-exandrium tamarense);米氏常数大小顺序为塔玛亚历山大藻<东海原甲藻<中肋骨条藻<强壮前沟藻<旋链角毛藻。碱性磷酸酶测定条件为:温度40℃,反应时间90 min,底物浓度260μmol/L。  相似文献   
95.
The production of dimethylsulfide (DMS) and dimethylsulfoniopropionate (DMSP) by marine microalgae was investigated to elucidate more on the role of marine phytoplankton in ocean-atmosphere interactions in the global biogeochemical sulfur cycle.Axenic laboratory cultures of four marine microalgae–Isochrysis galbana 8701,Pavlova viridis,Platymonas sp.and Chlorella were tested for DMSP production and conversion into DMS.Among these four microalgae,Isochrysis galbana 8701 and Pavlova viridis are two species of Haptophyta,while Chlorella and Platymonas sp.belong to Chlorophyta.The results demonstrate that the four algae can produce various amounts of DMS(P),and their DMS(P) production was species specific.With similar cell size,more DMS was released by Haptophyta than that by Chlorophyta.DMS and dissolved DMSP (DMSPd) concentrations in algal cultures varied significantly during their life cycles.The highest release of DMS appeared in the senescent period for all the four algae.Variations in DMSP concentrations were in strong compliance with variations in algal cell densities during the growing period.A highly significant correlation was observed between the DMS and DMSPd concentrations in algal cultures,and there was a time lag for the variation trend of the DMS concentrations as compared with that of the DMSPd.The consistency of variation patterns of DMS and DMSPd implies that the DMSPd produced by phytoplankton cells has a marked effect on the production of DMS.In the present study,the authors’ results specify the significant contribution of the marine phytoplankton to DMS(P) production and the importance of biological control of DMS concentrations in oceanic water.  相似文献   
96.
Samples were collected during one annual cycle (April 2007–March 2008) at Alfacs Bay (NW Mediterranean Sea) central station in order to assess the influence of organic nutrients in the growth of the microalgae assemblage, with special reference to Pseudo-nitzschia spp. This potentially toxic diatom forms natural and recurrent blooms in the study area. To assess further the relationship between Pseudo-nitzschia spp. and nutrients an enrichment experiment with high molecular weight dissolved organic matter (HMWDOM) was performed with field samples obtained during a Pseudo-nitzschia spp. bloom. HMWDOM was extracted from water collected at Alfacs Bay. Five bioassays were prepared: N + P (seawater with addition of nitrate and phosphate), DOM (addition of HMWDOM), (−N + P) + DOM (nitrogen deficient, with addition of phosphate and HMWDOM), (N + P) + DOM (addition of nitrate, phosphate and HMWDOM), seawater control (without added nutrients), and B + DOM (control of bacteria, without microalgae). The experiment was run in batch mode over 4 days. Results from the field study revealed that the concentrations of organic nutrients mostly surpassed the inorganic pool. Pseudo-nitzschia spp. was the most frequent and abundant taxa of the microalgae community. The micro-planktonic assemblage was arranged according to a seasonal factor (ANOSIM and cluster analysis). DON, nitrate and silicate were the most important abiotic parameters contributing to the dissimilarities between seasons (SIMPER analysis) and thereby potentially influencing the seasonal distribution of microalgae in the representative station. In the experimental investigation, Pseudo-nitzschia cells increased by the end of the experiment in the DOM bioassay but no respective increase was observed for chlorophyll a. This could point to an acquisition of nutrients through the DOM fraction that would conjointly reduce the need of chlorophyll a. The data obtained suggest that organic nutrients may exert an important role in the development of microalgae, including Pseudo-nitzschia spp., in the selected location.  相似文献   
97.
小球藻和三角褐指藻中脂肪酸和长链烷烃组成的比较研究   总被引:1,自引:1,他引:0  
以小球藻(Chlorela sp.)和三角褐指藻(Phaeodactylum tricornutum)为研究对象,比较了其合成有机物中长链烷烃和脂肪酸的组成和丰度.结果表明,小球藻中的脂肪酸以14:0、16:1、16:0、20:5为主,其中16:0饱和脂肪酸的质量分数为43%,具绝对优势.三角褐指藻中的脂肪酸组成显示16:1、16:0、20:5占优势.其中16:1和16:0两种脂肪酸含量相当.长链烷烃在两种藻中均以低碳链分布,优势组分集中在C16~C21碳链之间.小球藻中C17具有明显丰度,而三角褐指藻中长链烷烃含量差别不大.两种微藻中的长链烷烃组成都没有奇偶优势碳链分布的特征,这与陆源植物中长链烷烃明显的奇偶优势分布特征相比,具有显著的差异.这些结果对判断不同微藻在食物链中的营养级别,以及对以长链烷烃和脂肪酸为生物标志物研究我国近岸海沉积物中有机物的来源均具有实际意义.  相似文献   
98.
利用交叉培养的方法,研究了球等鞭金藻与纤细角毛藻、牟氏角毛藻、新月菱形藻和三角褐指藻等4种海洋微藻间的化感作用。并利用高效液相色谱分析了这4种海洋微藻的胞外滤液萃取物。结果表明,(1)球等鞭金藻胞外滤液浓度大于40%时,显著抑制三角褐指藻、新月菱形藻和牟氏角毛藻的生长,而对纤细角毛藻的生长则有明显的促进效果,但当胞外滤液浓度大于80%时则对纤细角毛藻的生长也表现出抑制作用。纤细角毛藻、新月菱形藻、牟氏角毛藻的滤液浓度大于40%时,对球等鞭金藻表现出显著抑制作用,三角褐指藻胞外滤液浓度大于80%时才能抑制球等鞭金藻的生长。(2)4种海洋微藻胞外滤液的萃取物能明显抑制球等鞭金藻的生长。(3)纤细角毛藻、牟氏角毛藻、新月菱形藻和三角褐指藻的胞外滤液分别包含8种、5种、6种和7种物质,同时结果还表明4种海洋微藻产生的抑制球等鞭金藻生长的化感物质并不相同。  相似文献   
99.
Mouth breaching is a recurrent event in temporarily open/closed estuaries (TOCEs). Such disturbances result in flushing and sediment scouring, reducing the microalgal biomass stock. The depletion of these microalgae may have negative repercussions in the form of depleted stocks of commercial fish, game fish, crustaceans and mollusks. The aim of this investigation was therefore: (1) to monitor the recovery of microalgal biomass and production following a breaching event; and (2) to determine the key environmental parameters influencing primary production during the open and recovery phases. Phytoplankton and benthic microalgal production was measured (14C-uptake method) successively during the closed, open and recovery phases of the Mdloti TOCE (South Africa). Upon breaching, 94–99% of microalgal biomass was washed out to sea through flushing and sediment scouring. A temporary recovery of phytoplankton and benthic microalgal biomass was observed during the open phase, but this was not sustained because of continual flushing and scouring of the sediment. During the re-closure (recovery phase), microalgal biomass immediately increased, reaching pre-breaching levels 35–40 days following the breaching event. In contrast to biomass, autochthonous pelagic primary production reached a maximum level (341 mg C m−2 h−1) during the open phase. Pelagic primary production normalized to biomass (PB) significantly increased during the open phase. This is attributed to a favorable combination of optimum light conditions, high influx of macronutrients and high water temperatures (33 °C). Similarly, benthic primary production normalized to biomass (PB) peaked during the open phase (35 mg C mg chl-a−1 h−1). Multivariate analysis showed that major variations in primary production were mainly controlled by temperature, dissolved inorganic nitrogen (DIN) to phosphorus (DIP) molar ratios (water-column and pore-water) and light extinction (Kd), all of which were regulated by the state of the mouth.  相似文献   
100.
Proliferation of fast-growing ephemeral macroalgae in shallow-water embayments constitutes a large-scale environmental change of coastal marine ecosystems. Since inorganic nutrients essential for the initiation and maintenance of macroalgal growth may be supplied from the underlying sediment, we investigated the coupling between benthic inorganic nutrient (mainly N and P) fluxes and sediment properties in 6 bays representing a wide gradient of sediment characteristics (grain size, organic matter content, solid phase C and N). The initial characterization of bays was made in June and also included measurements of oxygen flux and microphytobenthic and macrofaunal biomass. In September, still within the growth season of the macroalgae, complementary experiments with sediment-water incubations for benthic flux measurements of oxygen and nutrients focused on trophic status (balance between auto- and heterotrophy) as a controlling factor for rates of measured benthic nutrient fluxes. Generally, sediments rendered autotrophic by microphytobenthic photosynthesis removed nutrients from the overlying water, while heterotrophic sediments supplied nutrients to the overlying bottom water. Estimations of the green-algal nutrient demand suggested that late in the growth season, net heterotrophic sediments could cover 20% of the N-demand and 70% of the P demand. As the benthic trophic status is a functional variable more closely coupled to nutrient fluxes than the comparably conservative structural parameter organic matter content, we suggest that the trophic status is a more viable parameter to classify sediments and predict benthic nutrient fluxes in shallow-water environments.  相似文献   
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