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1.
龙感湖地区近3000年来的植被及其气候定量重建   总被引:18,自引:1,他引:18  
本文依据龙感湖钻孔的孢粉及硅藻资料,探讨了该地区近3000年来的植被发展及气候变化,通过数值分析方法,重建了年均温及年降水的时间序列,发现气候波动存在的两个阶段,(依1.5kaB.P.前后划分)四个旋回(0.8ka的准周期)两个突变事件(3kaB.P)前后的冷暖急剧变化及1kaB.P的降温事件)。这些变化与敦德冰心及固城湖孢粉反映的气候波动有较好的一致性,具有全球变化意义。  相似文献   
2.
Based on the total phosphorous (TP) concentration in sediment core, the TP concentration in lake water quantitatively reconstructed from fossil diatoms and diatom-TP transfer function in the Longgan Lake during the last 200 years, the temperature and precipitation data from meteorological observation for the last 50 years, the temperatures and precipitation sequences of climate simulation for the last 200 years, as well as the amount of the agricultural phosphate fertilizer in Longgan area for nearly 50 years, the characteristic and the law of the nutrient status evolution were analyzed, and the influence of the climatic factor, the anthropologic factor and the aquatic biology factor on the nutrient status evolution and its mechanism were discussed for the Longgan Lake during the last 200 years. The results showed that, in the nearly 200 years, the TP concentration in the sediment core of the Longgan Lake gradually increased, its range of variation was situated between 330-580 mg/kg, the mean value was 388 mg/kg, a nearly 30-year vibration adjustment period existed at 1950 around. The TP concentration in lake water changed in a different way. Before 1950, it had a slow increasing tendency in fluctuated background, to 1950 around it reached up to the mean value (52.18μg/L), and vibrated and adjusted around the mean value, then it fast declined, its change range was situated between 37.75-62.33μg/L. The analyses indicated that, in the centennial time scale, the climate change was the main controlling factor, while in the decadal time scale in the recent 50 years, human activities were the leading factors for the nutrient status evolution of the Longgan Lake. 60% of the variability of the TP concentration in the sediments and 57% of that in lake water were due to human activities. The differentiation between phosphorus concentration in the sediment and in the lake water reflected the response processes and the adjustment abilities of the lake aquatic ecosystems to the lake nutrient level, implying the maintenance and the destruction of the balances between the algae and the aquatic plants, as well as the corresponding accumulating characteristics of the phosphorus.  相似文献   
3.
Total organic carbon (TOC), total nitrogen (TN) and total phosphorus (TP) were determined in combination with stable isotope ratios of carbon and nitrogen (δ13COrg, δ15N) in a 63 cm sediment core from Longgan Lake, located in the middle reaches of the Yangtze River, China. These geochemical and isotopic records provide a continuous history of lake productivity and trophic state of Longgan Lake since 1890. Variations of δ13COrg, TOC, TN and TP indicate that primary productivity of Longgan Lake increased continuously during the last century and that the trophic state of the lake shifted from oligotrophic to mestrotrophic conditions accordingly. Anthropogenic sources of organic carbon (OC), nitrogen (N) and phosphorus (P) were distinguished from their natural background in the sediments using mass accumulation rates. Element mass accumulation rates suggested increased human activities in the lake’s catchment since 1950s, were especially the utilization of artificial fertilizers amplified the anthropogenic input of N and P into the lake. In the course of the improved availability of dissolved nutrients also primary productivity of Longgan Lake increased, resulting in an increase of the Suess-effect corrected organic carbon isotope ratios. δ15N of bulk sediments show a marked shift towards lower values around 1950 that has been attributed to the input of nitrogen from chemical fertilizers characterized by relatively depleted isotopic signatures into the lake.  相似文献   
4.
谢瑞  姬昌辉  王永平  葛慧 《湖泊科学》2016,28(3):669-675
湖泊底泥的运动过程产生内源污染,加剧湖泊生态环境的恶化.研究湖泊底泥在波浪作用下的输沙规律,可为研究湖泊的水质变化成因及生态环境治理提供参考依据.利用大型波浪水槽,在波浪作用条件下对太湖、龙感湖、巢湖的底泥进行了起动和输沙试验,对多组波浪水文条件下湖泊底泥的输沙试验结果进行分析,详细地阐述了太湖、龙感湖、巢湖底泥在波浪作用下的输沙变化规律.分析整理试验数据,得出输沙率变化公式,为3个湖泊的水质变化成因分析及生态环境治理提供参考依据.  相似文献   
5.
通过LL-4孔沉积环境指标研究表明,近100年来龙感湖地区人类活动加强,导致营养元素磷、碳、氮以及铁在沉积物中的浓度均呈增长趋势,特别是1950年以来,随着大量人口的迁入,围湖造田、破坏湖滨湿地等造成水土流失加剧,沉积物质量累积速率加快,同时营养元素累积量急剧增加。根据营养元素与参比元素Al, Fe和Ti之间的关系,以及不同营养元素之间的相互关系,人类活动引起的累积量得以从自然背景上区分出来,结合沉积物质量累积速率计算,人类活动引起的磷、有机碳和氮的累积通量分别在151.0~889.4mg/m2a,4.3~149.0g/m2a和0.5~18.6g/m2a间变化。碎屑物质的累积稀释了沉积物中营养盐的富集浓度,龙感湖草型湖泊的特点,使湖泊沉积环境易于呈氧化环境,生物和地球化学作用,也削弱了人类活动累积营养盐的变化幅度,使沉积中营养盐呈平稳上升的趋势。  相似文献   
6.
介绍了湖北龙感湖国家级湿地自然保护区主要保护对象和建设管理现状,分析了保护区在保护和管理方面存在的问题和矛盾,从健全管理机制、加强资源管护与执法、科研监测、强化举措、综合治理等方面入手,提出了保护区可持续发展对策。  相似文献   
7.
龙感湖水生植被   总被引:10,自引:0,他引:10  
于1993年9月对龙感湖水生植被及环境进行了调查研究。龙感湖有水生植物26科38属50种,依据优势种群划分9个群丛,其分布面积283.5km^2,占全湖总面积的89.7%,植被现有年生产力达2147730t,对渔业生产和生态环境具有十分重要的意义。建议对该湖植被应合理开发利用,如果围网养鱼得到广泛地发展,渔业生产潜力每年可达4181.8t。  相似文献   
8.
近百年来龙感湖地区湖泊营养化过程   总被引:5,自引:0,他引:5  
由于近年来社会经济的迅速发展,湖泊富营养化问题日趋严重。其中湿地的破坏是导致人湖营养盐增加的一个重要原因。对湿地变化与湖泊营养盐状况关系的分析是制定湖泊环境整治和生态修复的重要科学依据。湖泊沉积物含有丰富的生物和理化方面的信息,在缺乏长期湖泊监测记录的情况下。可以用来重建湖泊及其流域过去变化的历史。根据龙感湖表层沉积物^210Pb活度比变化,分析了该地区近百年来沉积物中湿地花粉、总磷和磁性参数.探讨了湖泊营养化过程及机理。研究表明,龙感湖近百年来营养级的增加是与湿生植被的破坏密切相关。20世纪上半叶的湖泊富营养化响应于磁性参数指示的流域土壤侵蚀速率的增加,而20世纪70年代以来湖泊营养程度的加重则与龙感湖流域农业化肥的使用和湿地植被破坏而导致湿地功能减弱有关。龙感湖流域内人类对湖周潍地的改造.破坏了湿地植被,助长了人湖物质的增加。湖泊营养相对富集,最终导致水体富营养化发生。  相似文献   
9.
Wetland is the conjunction of lake and terrene where human activities are concentrated. From the viewpoints of material transport and cycling in the terrene-lake system, wetland is the buffer where sand and mud, heavy metals, pollutants and nutrients are tarried. In this paper, we provide a case study based on the temporal and spatial distribution of elements in the Wangling River catchment, a small sub-catchment of Longgan Lake in the middle reaches of the Yangtze River. We have found that wetland can buffer major heavy metals such as Cr, Cu, etc.significantly, but has a little buffer function to some active elements such as Fe and Mn, which are always transported as solutions. Human activities not only influence the distribution of elements, but also weaken the buffer function of wetland. Intensive human activities in the Longgan Lake area in the past 70 years have been recorded in stream, wetland and lake sediments, especially the human activity events such as deforesting and reclaiming on a large scale in 1958 and the 1980‘s. Human activities caused the increase of sedimentation rates since the 1950‘ s, as well as the increase of elements‘ concentrations. The extensive use of fertilizers and pesticides since the 1960‘ s have led to the increase of total P concentrations. Increasing SO2 emission accelerate the process of cation exchange in soil, and enhance the leaching of Mn out of soils. Permanent storing of water causes the soil gleyification that also intensifies the leaching of Mn.These are two major reasons for the obvious increase of manganese concentrations in recent 20 years in Longgan Lake. Intensive human activities since the 1950s‘ have intensified the population in this region and thus destroyed the buffer function of wetland.  相似文献   
10.
A 63-cm sediment core documents that the concentrations of nutrients in sediment, such as organic carbon, nitrogen and phosphorous, continually increased during the last century in Longgan Lake, middle reaches of the Yangtze River, China. C/N ratio and δ^13Corg revealed that organic matter in the sediment derived mainly from aquatic and terrestrial sources is a minor contributor. Excess phosphorous is related to human activities marked by utilization of phosphoric fertilizers since 1952 A.D. The increase of δ^13Corg towards the sediment surface, together with increasing of OC and N accumulation, indicated the elevation of lake primary productivity due to excess phosphorous loading caused by utilization of phosphoric fertilizer. The decrease of δ^15N during the primary productivity elevation process, especially after 1952, can be attributed to the discharged of nitrogen with lower δ^15N into the lake.  相似文献   
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