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31.
随着湖库外源性污染的有效控制,沉积物污染特征成为影响湖库水环境质量的关键因素。本文以富硫型水库——汤河水库为研究对象,分析探讨水库沉积物的理化性质、重金属总量、酸可挥发性硫化物(acid volatile sulfide,AVS)和同步提取重金属(simultaneously extracted metals,SEM)的空间分布特征,采用沉积物基准法(sediment quality guidelines, SQGs)和AVS与SEM关系法对重金属可能诱发的生态风险和毒性效应进行评估。结果表明:汤河水库沉积物中AVS含量在0.03~51.75 μmol/g之间,并呈现坝前深水区>东支流库区>西支流库区的空间分布特征。根据Pearson相关性分析可知,汤河水库沉积物AVS含量与间隙水中SO42-浓度、沉积物烧失量(LOI)含量呈显著正相关,与沉积物间隙水中NO3-浓度和沉积物pH呈现显著负相关。间隙水中SO42-浓度和沉积物LOI含量是控制AVS产量的重要因素。水库沉积物中ΣSEM变化范围为0.52~2.75 μmol/g,呈现出东支流库区>坝前深水区>西支流库区的分布规律。水库沉积物中ΣSEM/AVS和ΣSEM-AVS的变化范围分别为0.06~22.73和-49.18~2.44 μmol/g,显示出水库坝前深水区表层0~10 cm沉积物不具有生态风险,而东、西支流库区沉积物中的SEM因为不能完全被AVS所固定而存在潜在生态风险。就单一重金属而言,汤河水库坝前深水区和东西支流中部区域沉积物Ni、Cu、Pb和Zn含量均介于临界效应含量(threshold effects level, TEL)值和可能效应含量(probable effect level, PEL)值之间,可产生低级风险毒性效应,但Ni的毒性效应风险接近中级,今后应予以重点关注。富硫型水库沉积物中容易出现高含量AVS,沉积物间隙水中SO42-和NO3-的浓度是决定沉积物AVS净产量的重要因素。流域内重金属土壤背景值以及工业、采矿产业排放的废水类型直接影响着诱发生态风险的重金属种类。  相似文献   
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利用硅胶色谱、Sephadex LH-20凝胶色谱、HPLC等技术,从坛紫菜(Porphyra haitanensis)乙醇提取物首次分离纯化得到了7个化合物,通过质谱(MS)及核磁共振波谱(1H NMR、13C NMR)等现代波谱技术鉴定为:1,8-二羟基-9,10-蒽醌(1)、邻苯二甲酸二正丁酯(2)、邻苯二甲酸二异丁酯(3)、β-谷甾醇(4)、鲨肝醇(5)、(E)-N-2(1,3-二羟基-4-十八烯基)-十六酰胺(6)、胆甾醇(7)。其中,化合物1对金黄色葡萄球菌(Staphyloccocus aureus)的最低抑菌浓度(MIC)为80μg/mL。  相似文献   
34.
The sea level variations along Visakhapatnam coast are governed by astronomical tides and nontidal oscillations including atmospheric pressure, winds, coastal currents, Ekman Pumping, and river influx. Tidal and nontidal sea level oscillations are usually studied separately because of the vastly different ways in which they are forced. In this study the tidal oscillations along Visakhapatnam are analyzed using GOTIC2 tidal model. The correlation between monthly mean sea level and monthly mean tides is 47% (r = 0.68) and increases to 54% (r = 0.74) when applied for inverse-barometric effect. The major six partial tides are computed and presented. The tidal variations from Neap tide to Spring tide are studied.  相似文献   
35.
Many ship-borne geodetic surveys at sea, such as Global Navigation Satellite System (GNSS)-based sea surface height (SSH) observation, acoustic profiling of the bottom, and others, deal with a dynamic topography which undergoes several changes during the survey campaign (e.g., changes in tide, salinity and currents). Those changes affect the measurements and may causes for some variations in the results. There are several methods for tidal variations correction, being the most dominant phenomena, such as tidal zoning, tidal constituent interpolation or ocean tidal models. In this study, we have implemented the tidal constituent interpolation method for the Israeli coastline in order to assess its quality and determine whether it is suitable for use in this particular region. This paper depicts the interpolation method, discusses some difficulties in the implementation for the Israeli coast and presents results from exemplary processing. In addition, we compare the results to those obtained using global and regional tidal models.  相似文献   
36.
对采自海南东寨港的海洋红树林植物黄瑾(Hibiscus tiliaceus)叶中分离到的一株内生真菌Aspergillus sydowii EN-198的次生代谢产物进行了研究.利用正相与反相硅胶柱层析、葡聚糖凝胶Sephadex LH-20柱层析以及制备薄层层析(PTLC)等分离手段从其发酵液中分离得到14个化合物,通过一维、二维核磁共振技术、质谱技术等鉴定了所有化合物的结构,分别为:环-(S-脯氨酸-S-苯丙氨酸)(1),环-(S-脯氨酸-S-亮氨酸)(2),环-(S-苯丙氨酸-S-色氨酸)(3),(1S)-1-(4 '-间羟基苯甲酸)-1,1,5,5-二甲基己二醇(4),曲酸(5),N-[2-(4-吲哚)乙基]乙酰胺(6),N-[2-(4-对羟基苯酚)乙基]乙酰胺(7),胸腺嘧啶脱氧核苷(8),尿嘧啶脱氧核苷(9),尿嘧啶核苷(10),过氧化麦角甾醇(11),麦角甾醇(12),(2S,2'R,3R,3 'E,4E,8E)-N-(2’-羟基-3’-十六烯酰基)-9-甲基-4,8-二十碳二烯-1,3-二醇(13)以及1-O-β-D-葡萄糖基-(2S,2'R,3R,3'E,4E,8E)-N-(2’-羟基-3’-十六烯酰基)-9-甲基-4,8-二十碳二烯-1,3-二醇(14);其中化合物1和2为首次从Aspergillus sydowii中分离得到.对所有化合物测试其抑菌活性,发现化合物5与7对金黄色葡萄球菌有较好抑制活性.  相似文献   
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Supplies of conventional natural gas and oil are declining fast worldwide, and therefore new, unconventional forms of energy resources are needed to meet the ever-increasing demand. Amongst the many different unconventional natural resources are gas hydrates, a solid, ice-like crystalline compound of methane and water formed under specific low temperature and high pressure conditions. Gas hydrates are believed to exist in large quantities worldwide in oceanic regions of continental margins, as well as associated with permafrost regions in the Arctic. Some studies to estimate the global abundance of gas hydrate suggest that the total volume of natural gas locked up in form of gas hydrates may exceed all known conventional natural gas reserves, although large uncertainties exist in these assessments. Gas hydrates have been intensively studied in the last two decades also due to connections between climate forcing (natural and/or anthropogenic) and the potential large volumes of methane trapped in gas hydrate accumulations. The presence of gas hydrate within unconsolidated sediments of the upper few hundred meters below seafloor may also pose a geo-hazard to conventional oil and gas production. Additionally, climate variability and associated changes in pressure-temperature regimes and thus shifts in the gas hydrate stability zone may cause the occurrence of submarine slope failures.Several large-scale national gas hydrate programs exist especially in countries such as Japan, Korea, Taiwan, China, India, and New Zealand, where large demands of energy cannot be met by domestic supplies from natural resources. The past five years have seen several dedicated deep drilling expeditions and other scientific studies conducted throughout Asia and Oceania to understand gas hydrates off India, China, and Korea. This thematic set of publications is dedicated to summarize the most recent findings and results of geo-scientific studies of gas hydrates in the marginal seas and continental margin of the Asia, and Oceania region.  相似文献   
39.
紫菜特征挥发性物质分析   总被引:5,自引:0,他引:5       下载免费PDF全文
应用顶空固相微萃取和气相色谱-质谱联用技术,对坛紫菜(Porphyra haitanensis)、条斑紫菜(Porphyra yezoensis)与其一个突变品系的生长藻体挥发性物质进行分析,共分离鉴定出66种挥发性组分,3个紫菜试样中分别含有36、44和45种.鉴定组分中有21种为紫菜共有挥发性物质,其中8-十七烯和...  相似文献   
40.
Seven compounds (1–7) were identified from the cultivation of the endophytic fungus Exophiala oligosperma (EN-21) that was isolated from the inner tissue of the marine red alga Laurencia similis. Their structures were identified with spectroscopic and chemical methods as 2-phenoxynaphthalene (1), (2S, 3R, 4E, 8E)-1-O-β-D-glucopyranosyl-3-hydroxy-2-[(R)-2′-hydroxyoctadecanoyl] amino-9-methyl-4, 8-octadeca-diene (2), (22E,24R)-ergosta-7,22-dien-3β,5α,6β-triol (3), (22E, 24R)-3β, 5α, 9α-trihydroxy- ergosta-7, ...  相似文献   
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