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守初心耕海探洋七十载担使命披风踏浪砥砺行——中国科学院海洋研究所70年发展纪实 总被引:1,自引:0,他引:1
中国科学院海洋研究所是新中国第一个专门从事海洋科学研究的国立科研机构,她的70年光辉历程是我国海洋科技事业从无到有、从弱到强的发展缩影,是新中国海洋科学调查研究自主创新发展历程的真实写照。本文简要介绍中国科学院海洋研究所的主要发展历程,回顾70年来取得的主要科技成就,并围绕新形势下建设海洋大科学研究中心等改革发展举措,讨论和展望研究所的未来发展。 相似文献
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Zooplankton abundance, biovolume and taxonomic composition in Jiaozhou Bay and the adjacent coastal Yellow Sea were evaluated using ZooScan measurement of samples collected by net towing every August from 2005 to 2012. Zooplankton abundance and biovolume ranged from 1 938.5 to 24 800 ind./m~3 and 70.8 to 1 480.1 mm~3/m~3 in Jiaozhou Bay and 73.1 to 16 814.3 ind./m~3 and 19.6 to 640.7 mm~3/m~3 in the coastal Yellow Sea. Copepods were the most abundant group in both regions, followed by N octiluca scintillans and appendicularians in Jiaohzou Bay, and chaetognaths and N octiluca scintillans in adjacent coastal Yellow Sea. Over the study period, the most conspicuous hydrographic change was an increase in water temperature. Meanwhile, a general decrease in zooplankton abundance was observed, particularly in copepod populations. Based on redundancy analysis(RDA), the warming trend was the key environmental factor influencing to decrease of copepod abundance. The proportion of small-sized copepods increased while the mean size of all copepods decreased, in significant correlation with water temperature. Our results indicate that zooplankton, particularly copepods, are highly sensitive to change in water temperature, which is consistent with predicted impacts of warming on aquatic ectotherms. Due to their dominance in the zooplankton, the decline in copepod size and abundance could lead to an unfavourable decrease in energy availability for predators, particularly planktivorous fish. 相似文献
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胶州湾毛颚类生态学研究 总被引:4,自引:0,他引:4
根据2006年9月—2007年8月胶州湾浅水Ⅰ型浮游生物网的调查资料,分析了胶州湾毛颚类的种类组成、数量分布、摄食、生物量、生产力情况。结果表明,本次调查共出现毛颚类3种:强壮箭虫(Sagitta crassa)、拿卡箭虫(Sagitta nagae)和百陶箭虫(Sagitta bedoti)。其中强壮箭虫全年出现,在数量上占有绝对优势,年平均密度达到45.3ind/m3;拿卡箭虫和百陶箭虫在秋、冬、春季出现,年平均密度分别为0.17ind/m3和0.35ind/m3。通过推算得到胶州湾毛颚类年平均生物量为107.92mg/m2,年平均生产力为1.47mgC/(m2·d),占浮游动物总生产力的11.6%。毛颚类对浮游动物生物量和生产力的摄食压力在冬季达到全年最大值,分别为5.71%和83.47%,在春季、夏季、秋季毛颚类对浮游动物生物量的摄食压力分别为0.67%、0.08%、6.48%,对生产力的摄食压力分别为27.00%、2.48%和48.88%。由此可见,在冬季毛颚类的摄食对浮游动物群落结构等可能会产生重要影响。 相似文献
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南海北部冬季和夏季浮游哲水蚤类群落 总被引:4,自引:0,他引:4
根据2004年2月10日-3月6日(冬季)和8月26日-9月6日(夏季)在南海北部的两个航次中用浮游动物大网垂直拖网采集的浮游动物样品,对该海域的浮游桡足类群落进行分析。结果表明,共发现哲水蚤类70种,冬季航次62种,夏季航次62种,种类的季节变化不大。在海洋站位,每个站位出现的哲水蚤类为4-41种,近岸的站位出现的种数少,向远海逐渐增多。哲水蚤总丰度冬季为10-353个/m3,夏季为13-205个/m3,从近岸到远海减少。哲水蚤生物量干重冬季为0.80-33.39mg/m3,夏季为0.64-5.81mg/m3,从近岸到远海减少。种类多样性指数采用香农-威弗指数,冬季为0.80-4.39,夏季为2.12-4.66,在近岸较低,远海较大。优势度大于2%的种被认为是优势种。冬季的优势种为:中华哲水蚤(Calanus sinicus)、小拟哲水蚤(Paracalanus parvus)、狭额真哲水蚤(Subeucalanus subtenuis)、弓角基齿水蚤(Clausocalanus arcuicornis)、长尾基齿水蚤(Clausocalanus furcatus)、达氏波水蚤(Cosmocalanus darwini)。夏季的优势种(类)为:微刺哲水蚤(Canthocalanus pauper)、小哲水蚤(Nannocalanus minor)、狭额真哲水蚤、亚强真哲水蚤(Subeucalanus subcrassus)、小拟哲水蚤、锥形宽水蚤(Temora turbinata)、柱形宽水蚤(T.stylifera)、异尾宽水蚤(T.discaudata)。这些种在各个站位占总丰度的15%-92%(平均为48%)。优势度大于5%的种有中华哲水蚤、小拟哲水蚤、狭额真哲水蚤、锥形宽水蚤、异尾宽水蚤,各种的丰度(除狭额真哲水蚤外)从近岸向远海降低。在远海深水的站位,出现了热带暖水种乳点水蚤属的腹突乳点水蚤(Pleuromamma abdominalis)、瘦乳点水蚤(P.gracilis)和粗乳点水蚤(P.robusta)。哲水蚤目种丰富度、桡足类丰度、多样性指数、优势种丰度从近岸到远海的变化趋势,反映了桡足类群落从近岸到远海的演替。 相似文献
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Two field studies were conducted to measure pigments in the Southern Yellow Sea (SYS) and the northern East China Sea (NECS) in April (spring) and September (autumn) to evaluate the distribution pattern of phytoplankton stock (Chl a concentration) and the impact of hydrological features such as water mass, mixing and tidal front on these patterns. The results indicated that the Chl a concentration was 2.43±2.64 (Mean ± SD) mg m?3 in April (range, 0.35 to 17.02 mg m?3) and 1.75±3.10 mg m?3 in September (from 0.07 to 36.54 mg m?3) in 2003. Additionally, four areas with higher Chl a concentrations were observed in the surface water in April, while two were observed in September, and these areas were located within or near the point at which different water masses converged (temperature front area). The distribution pattern of Chl a was generally consistent between onshore and offshore stations at different depths in April and September. Specifically, higher Chl a concentrations were observed along the coastal line in September, which consisted of a mixing area and a tidal front area, although the distributional pattern of Chl a concentrations varied along transects in April. The maximum Chl a concentration at each station was observed in the surface and subsurface layer (0–10 m) for onshore stations and the thermocline layer (10–30 m) for offshore stations in September, while the greatest concentrations were generally observed in surface and subsurface water (0–10 m) in April. The formation of the Chl a distributional pattern in the SYS and NECS and its relationship with possible influencing factors is also discussed. Although physical forces had a close relationship with Chl a distribution, more data are required to clearly and comprehensively elucidate the spatial pattern dynamics of Chl a in the SYS and NECS. 相似文献
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INTRODUCTIONAntarctickrill(EuphausiasuperbaDana)isakeyorganismoftheAntarcticmarineecosystemandapotentialfisheryresource.Ithasbeenthesubjectofmuchresearch.Despitethelonghistoryofresearchdatingbacktothe1930’s,therearestillquestionsaboutitspopulationstructu… 相似文献