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1.
生态需水是湖泊生态系统的重要指标,维持着湖泊生态系统的良性循环.以内蒙古中部半干旱湖泊岱海为研究对象,对湖泊动态生态需水进行分析.本研究在遥感和气象数据的基础上,获得1975-2020年长时间序列高精度水文要素数据,分析岱海水文要素时空演变规律;通过天然生态水深分析法、水深经验频率分析法和湖泊形态分析法分析岱海的水深随面积变化的关键水深;构建基于生态耗水规律的湖泊生态需水模型,计算自然状态下岱海生态需水动态变化范围.研究结果如下:岱海地区6-9月为丰水期,10月至次年5月为枯水期;45 a以来岱海水面面积呈显著下降趋势,近年来下降速率减缓;枯水期岱海适宜生态水深为8.72~9.92 m,丰水期为9.40~10.69 m,适宜生态需水量为5.62亿~7.71亿m3,适宜湖面面积为70.92~84.77 km2.本文构建了长时间序列气候水文数据库,确定岱海动态生态需水范围可以实现对湖泊生态健康的实时监测,为相关规划与管理提供科学依据及可操作性指导,从而为岱海湖泊治理提供理论参考.  相似文献   

2.
人类活动对青海湖水位下降的影响   总被引:17,自引:6,他引:11  
青海湖是我国最大的内陆湖泊,位于青藏高原的东北隅。近三十年来由于自然要素和人为活动的影响,湖周生态环境急剧退化,湖水位下降达3.35m,湖面收缩约300多km~2。根据调查研究以及其他方面的资料。青海湖多年平均亏水量4.36×10~8m~3,而人为活动耗水量占亏水量的8.7%。仅占湖面蒸发量的1%。所以,人为耗水与湖水位波动无明显相关,湖水位下降虽然是综合效应,但主导因素是气候变化,并导致湖周生态环境的恶化。  相似文献   

3.
In order to maintain the scenic and eco-environmental values of a lake, we need to characterize its water interactions. Shahu Lake was used as a case study to show the interactions among replenishment water, lake water and groundwater in an arid region. Shahu Lake is located in the Ningxia Hui Autonomous Region of northwest China and has an area of 13.96 km2 and an average depth of 2.2 m. The groundwater modelling software MODFLOW was used. The analysis results show that hydraulic connectivity among replenishment water, lake water and groundwater is the crucial driving factor that affects the water level in Shahu Lake. The lake water level is highly sensitive to the volume of replenishment water. The groundwater is of great importance in balancing the water level in the lake and preventing it from drying up. It was determined that 13.8 × 106 m3/yr is the optimal volume of replenishment water for Shahu Lake in order to maintain the lake level at its normal state and also to make the best use of available water resources on a long-term basis. Understanding of the water interactions can promote effective management of water resources in Shahu Lake.
EDITOR D. Koutsoyiannis

ASSOCIATE EDITOR D. Hughes  相似文献   

4.
选择1979-2016年间多时期、多类型、多光谱遥感数据,分析评价洞庭湖区内湖近40年的面积变化.结果表明,最近40年洞庭湖区内湖面积保持相对稳定,丰水期间呈上升趋势,枯水期间波动下降,2016年内湖总面积比1980s初减少3.94%.随着湖泊面积增加,湖泊水面面积变化的比例和幅度逐渐减小,大型湖泊(>10 km2)和中型湖泊(5~10 km2)面积相对稳定,小型内湖(<5 km2)面积变化尤为剧烈.内湖水面面积主要受降雨、蒸发等气候因素和生产生活取水、防洪排涝和退田还湖等人为活动调控.1980-2000年和2001-2015年两个时期,洞庭湖区多年平均降雨量呈现不同程度的下降趋势,多年平均蒸发量明显上升.三峡工程运行后,三口分流衰减,但水资源需求量不断增长,退田还湖和留蓄雨洪作为水资源使得丰水期间内湖水面面积增长,气候变化和水资源开发利用导致枯水期水面面积趋于减少.有必要加强洞庭湖区内湖的研究和保护,适当退田还湖提高湖泊率,优化三口水系格局,实施河湖水系连通工程,缓解洞庭湖区季节性水资源紧张问题.  相似文献   

5.
作为我国最大的内陆咸水湖,青海湖是青藏高原东北部重要水汽源,在维持区域生态环境及半干旱生态系统功能方面发挥着重要作用.近年来,青海湖水位迅速上升,但是湖泊扩张对周边人居设施与草地的影响尚未得到广泛关注和报道.基于1995-2019年Landsat TM/ETM+/OLI遥感影像、Hydroweb多源测高同化水位数据、SRTM-1 DEM数据等,本研究以青海湖近年来增长速率情景开展湖泊快速扩张对周边人居设施(道路、居民点)与草地影响和潜在威胁的定量研究.结果表明:1995-2004年期间青海湖处于萎缩态势,2004年水位和面积出现最小值,之后,青海湖进入稳定扩张期.2004-2019年期间,青海湖水位累计上涨3.27 m,年均增长率约为0.22 m/a;相应地,青海湖水量增长了14.25 km3,年均增长率为0.95 km3/a.湖泊扩张模拟结果显示,若青海湖水量以当前速率增长,水位将在2070年前后达到3207 m(相对2019年约10 m的水位涨幅),届时将会淹没178个居民点、长度约为1286.91 km的道路以及2042.22 km2的植被,其中预测的高风险区域主要为切吉乡、泉吉乡和金滩乡.该研究有望为青海湖快速扩张对当地居民的影响和潜在威胁提供重要的科学参考,并在气候变化背景下为制定缓解气候变化风险的预案提供科学依据.  相似文献   

6.
梁新歌  王涵  赵爽  宋春桥 《湖泊科学》2023,35(6):2111-2122
在全球气候变暖和极端气候事件增加的背景下,流域水文循环过程受到的影响越来越强烈,导致湖泊水位变化表现出复杂的时空特征。而泛北极地区是地球上湖泊数量与面积分布最为集中的区域之一,该地区湖泊对气候变化响应非常敏感。因此,了解这些湖泊近期水文变化特征十分必要。本研究共搜集了36个泛北极大型湖泊(>500 km2)基于遥感或站点观测的近20年水位数据,分析其时空变化特征。本文使用线性回归模型来估算湖泊水位的变化趋势,进而利用皮尔逊相关分析了其主要水文影响变量和大气环流机制,并运用Mann-Kendall突变检验法探讨了水位突变的原因。结果表明,泛北极湖泊的水位整体上呈现不同程度上升(平均速率为0.013 m/a),有23个(64%)湖泊的水位呈上升趋势;研究湖泊中有10个通过90%统计显著性检验。其中,水位上升速率最大的湖泊是位于哈萨克斯坦的腾吉兹湖,上升速率为0.078 m/a。泛北极湖泊水位的波动主要与径流有关,有19个(53%)湖泊的水位波动与径流的增加更为相关;相比而言,位于亚洲的极地湖泊水位的上升与流域蒸发的降低显著相关,尤其是库苏古尔湖。从区域大气环流影响来看,泛北极湖泊水位变化主要与厄尔尼诺-南方涛动有关,其次是北极涛动和北大西洋涛动。本研究有助于加深对泛北极湖泊近20年水位变化规律及气候影响特征的科学理解。  相似文献   

7.
青海湖最近25年变化的遥感调查与研究   总被引:29,自引:6,他引:23  
沈芳  匡定波 《湖泊科学》2003,15(4):289-296
青海湖是我国最大的内陆水体,它及其流域的生态环境近来一直倍受广泛关注.其水位下降、湖水面积缩小、湖体分离等更是研究的热点问题.本文针对这些问题展开遥感调查与研究,收集了多时相、多种信息源的影像数据;分析了1975年至2000年25年以来湖泊的变迁及成因,湖岸变化及湖体分离状况;用遥感方法反推25年以来湖水位的变化;计算了1975、2000年两个年份的湖水面积,并遥感分析了湖水面积萎缩的原因.此外,对青海湖进行了实地调查与水深测量,建立了该湖泊水深反演模型.  相似文献   

8.
1974-2016年青海湖水面面积变化遥感监测   总被引:6,自引:2,他引:4  
位于青藏高原东北部的青海湖是我国最大的咸水湖和内陆湖,也是青藏高原东北部的重要水汽源,青海湖面积的动态变化是气候和周围生态环境状况的重要体现.本研究利用长时间序列中分辨率遥感影像数据,通过人工提取湖岸水涯线信息对青海湖水面面积进行监测.结果显示:1974-2016年期间,青海湖面积总体上呈先减后增的变化趋势.2004年水面积最小,为4223.73 km2,比1974年减少253.80 km2.其中1974-1987年期间面积骤减;2000 2009年期间青海湖水面面积变化幅度相对较小,平均变化幅度为6.85 km2.2009-2016年7 a间,水面面积增加了128.27 km2.2012年青海湖面积骤增,比2011年8月同期增加65.12 km2;同年6月和9月的面积变化为2002-2016年最大,达到59.18 km2.湖东岸沙岛的湖岸线变化最为显著,1974-2004年岸线后退最大距离达4.59 km,2012年的年内最大变化距离为0.39 km.青海湖流域内降水补给增加,生态环境治理措施促使入湖河流径流量增大,是近年来湖水面积增加的主要原因.  相似文献   

9.
The effects of climate change have a substantial influence on the extremely vulnerable hydrologic environment of the Tibetan Plateau. The estimation of alpine inland lake water storage variations is essential to modeling the alpine hydrologic process and evaluating water resources. Due to a lack of historical hydrologic observations in this remote and inaccessible region, such estimations also fill a gap in studies on the continuous inter‐annual and seasonal changes in the inland lake water budget. Using Lake Siling Co as a case study, we derived a time‐series of lake surface extents from MODIS imagery, and scarce lake water level data from the satellite altimetry of two sensors (ICESat/GLAS and ENVISAT RA‐2) between 2001 and 2011. Then, based on the fact that the rise in lake water levels is tightly dependent on the expansion of the lake extent, we established an empirical model to simulate a continuous lake water level dataset corresponding to the lake area data during the lake's unfreezing period. Consequently, from three dimensions, the lake surface area, water level and water storage variations consistently revealed that Lake Siling Co exhibited a dramatic trend to expand, particularly from 2001 to 2006. Based on the statistical model and lake area measurements from Landsat images since 1972, the extrapolated lake water level and water storage indicate that the lake has maintained a continual expansion process and that the cumulative water storage variations during 1999–2011 account for 66.84% of the total lake water budget (26.87 km3) from 1972 to 2011. Copyright © 2013 John Wiley & Sons, Ltd.  相似文献   

10.
黄暄伟 《湖泊科学》1989,1(1):21-27
太湖流域是中国最重要的经济区.流域面积36500km~2,六分之五为平原,有上海、无锡、苏州、杭州等重要城市.以太湖为中心和其周围的河网构成了流域水系的特点.治理和开发的目标是防洪、供水、水资源保护和航运.治理的方案充分发挥太湖的调蓄作用,规划了十项骨干工程,可使流域内收到十分显著的综合效益.其中以望虞河和太浦河最为重要,可以解决80%上游洪水的出路和从长江引水2.8km~3,缓解防洪和水污染的压力,建议及早兴建.  相似文献   

11.
黄漪平  诸敏 《湖泊科学》1998,10(S1):85-94
Lake Taihu, the third largest fresh water lake in China, with a surface area of 2 338 km2, is located in the Changjiang River Delta, the most advanced economic zone in China. During the last two decades, the rapid economic development of local agriculture and industry both in the urban and rural areas of the region has made great advances. Great quantieis of pollutants have been discharged into the lake, its nutrient content has increased continuously, and phytoplankton blooms have occurred in some areas. Water quality protection in Lake Taihu is very important because of its close relation with economical development and people''s daily life. It is urgent to have comprehensive pollution control in Lake Taihu. Based on water quality monitoring data in Lake Taihu from 1987 to 1994, the dynamic variations of water quality and eutrophication trends have been analyzed, showing obvious spatial and temporal variations. The main water quality factors were compared with the standard for drinking water and indicate considerable change with the seasons. Some basic strategies to protect water quality and prevent eutrophication are discussed.  相似文献   

12.
卞宇峥  薛滨  张风菊 《湖泊科学》2021,33(6):1844-1856
洪泽湖是淮河水系中最重要的湖泊之一,是我国的第四大淡水湖,它在防洪、灌溉、航运、跨流域调水以及水资源与水环境保护等方面发挥着重要作用.过去300年来,由于黄淮关系的演变和人类活动的影响,洪泽湖水域面积发生剧烈变化.研究湖泊水域空间变化有助于认识流域环境变化与人类活动影响.本文利用18世纪初以来的古地图、历史文献资料及1981-2016年期间的7期遥感影像数据,采用遥感和地理信息系统技术相结合的方法,分析了近300年来洪泽湖水域时空演变过程及其原因.研究结果表明:过去300年来,洪泽湖面积总体呈减少趋势,年际缩减速率为0.17%,且湖域范围总体表现为由四周向中心缩小的趋势,其中西南湖域的形态变化最为显著.具体而言,清中期以前,黄河多次夺泗入淮,洪泽湖面积变化受黄淮关系、高家堰等水利枢纽的修建以及降水等因素影响.至清末,洪泽湖面积由3078.78 km2下降至2335.73 km2,共减少743.05 km2,其空间形态也发生了剧烈变化,该时期黄河改道、降水以及人口增长导致的湖滨围垦是影响洪泽湖演变的主要原因.建国以来(1949-2016年),洪泽湖面积进一步缩小,由1757.60 km2下降至1488.43 km2,共减少了269.17 km2,其中1995-2000年间湖泊面积下降最为显著,共减少了281.43 km2,湖泊动态变化度达到2.78%,该时期自然因素对湖泊水域面积的影响减弱,而人口增长、围垦及水利工程的修建等人类活动逐渐成为影响洪泽湖演化的主导因素.  相似文献   

13.
The article gives the results of estimating lake water resources for federal districts in European Russia and constituent entities of the Federation, carried out in the Institute of Limnology, RAS, with the use of up-to-date satellite images and the program Google Earth. European Russia contains ~610000 natural water bodies >0.1 ha in area, including ~200000 lakes >1 ha in area, and 90000 water bodies of artificial origin. Lake water resources of European Russia amount to 1370 km3 of water, of which 99% are in Northwestern Federal District. Artificial water bodies contain ~250 km3 of water resources.  相似文献   

14.
A model was developed for estimating the delay between a change in climatic conditions and the corresponding fall of water level in large lakes. The input data include: rainfall, temperature, extraterrestrial radiation and astronomical mid‐month daylight hours. The model uses two empirical coefficients for computing the potential evaporation and one parameter for the soil capacity. The case studies are two subcatchments of the Altiplano (196 000 km2), in which the central low points are Lake Titicaca and a salar corresponding to the desiccation of the Tauca palaeolake. During the Holocene, the two catchments experienced a 100 m fall in water level corresponding to a decrease in water surface area of 3586 km2 and 55 000 km2, respectively. Under modern climatic conditions with a marked rainy season, the model allows simulation of water levels in good agreement with the observations: 3810 m a.s.l. for Lake Titicaca and lack of permanent wide ponds in the southern subcatchment. Simulations were carried out under different climatic conditions that might explain the Holocene fall in water level. Computed results show quite different behaviour for the two subcatchments. For the northern subcatchment, the time required for the 100 m fall in lake‐level ranges between 200 and 2000 years when, compared with the present conditions, (i) the rainfall is decreased by 15% (640 mm/year), or (ii) the temperature is increased by 5·5 °C, or (iii) rainfall is distributed equally over the year. For the southern subcatchment (Tauca palaeolake), the time required for a 100 m decrease in water level ranges between 50 and 100 years. This decrease requires precipitation values lower than 330 mm/year. Copyright © 2004 John Wiley & Sons, Ltd.  相似文献   

15.
The reeds of Lake Peipsi (surface area 3555 km2, mean depth 7.1 m, max. depth 15.3 m, not-regulated) have increased through the last 30 years. The most significant increase has taken place in the larger formerly mesotrophic northern part where the mean air-dry biomass of reed shoots has increased from 20 g m−2 in 1970 through 789 g m−2 in 1989 to 1563 g m−2 in 2002. The data of 34 transects for 2001–2002 along the Estonian coast and aerophotos made in 2001 showed that in places reeds reach a water depth of 1 m (mean 0.64 m) and a width of more than 200 m (mean 89.5 m). Their area of 9.3 km2 accounts for about 0.6% of the Estonian territory of the lake. The longer and thicker shoots grew in the lakeward and intermediate zones of reeds. Near villages the shoots were weaker and their biomass lower. Phosphorus content of shoots, being higher near settlements, was generally low; in some cases content of phosphorus was ≤0.001%. The monotonous reed belt occupies the growth area of shallow-water submergent and shorter emergent species and favours the accumulation of organic sediments. The frequency of several species demanding light and sandy bottom has decreased, as well has the overall diversity of the macrovegetation. The main reasons for expansion of the reed could be eutrophication, combined with low-water periods, and the decline of cattle breeding in the shore areas. Some suppressed species have reappeared on stretches cleaned from reeds.  相似文献   

16.
Changes in the soluble sugar, starch, total non-structural carbohydrate (TNC) and nutrient (N, P, K) concentration in the reed rhizome were investigated in different reed habitat types in Lake Fertõ/Neusiedlersee during the vegetation period in 1993 to 94. Three die-back and four vigorous reed stands were monitored.For biomass estimations rhizomes were collected twice, in early summer and in autumn. They were calculated to be 1.9 to 2.7 kg/m2 at die-back and 3.1 to 6.1 kg/m2 at vigorous sites.The carbohydrate and nutrient concentrations of the reed rhizomes were high at the beginning of the vegetation period; they reached their minima in May–June, which was followed by a gradual increase until the end of the vegetation period. From autumn to spring the concentrations decreased, e.g. TNC concentration by 15 to 40% at vigorous, 50 to 70% at die-back sites.In both years the lowest carbohydrate concentrations were recorded at the end of May, a month before the inflorescence developed (vigorous sites: 50–70 mg TNC/g, die-back sites: 70–120 mg TNC/g). In that period the standing stock of the TNC in the rhizome did not separate the sites clearly, and the smallest carbohydrate standing stock was measured at a vigorous site with a high water cover.At the beginning of summer and in autumn the soluble sugar, TNC and N concentration values were higher at the die-back than at the vigorous sites but the standing stock was higher at the vigorous sites. In autumn the TNC standing stock of the rhizomes was between 780 and 1200 g/m2 at vigorous, between 380 and 690 g/m2 at die-back sites. This is especially important for the reactions and resistance of die-back reed stands to unfavourable conditions.  相似文献   

17.
Otoliths are biogenic carbonate minerals in the inner ear of teleost fish, whose compositions can record the physical and chemical conditions of the ambient water environment inhabited by individual fish. In this research, the fishbones and otoliths of naked carp sampled near the Bird Island, offshore Lake Qinghai, were dated and analyzed for mineralogy and microchemical compositions. Comparing the microchemical compositions of ancient otoliths with those of modern otoliths, we conclude that the ancient naked carps inhabited a relict lake formed when the lake shrank from a high lake level, by combining with the AMS-14 C ages of fishbones and otoliths, the stratigraphy and surrounding topography of the sample site. AMS-14 C dating results of ancient fishbones and otoliths show that these naked carps lived from 680 to 300 years ago, i.e. during the Ming Dynasty of China. The X-ray diffraction(XRD) patterns demonstrate that the ancient lapillus is composed of pure aragonite, identical to modern one, indicating that the mineral of lapillus didn't change after a long time burial and that the ancient lapillus is suitable for comparative analysis thereafter. Microchemical results show that both ratios of Mg/Ca((70.12±18.50)×10?5) and ? 18O((1.76±1.03)‰) of ancient lapilli are significantly higher than those of modern lapilli(average Mg/Ca=(3.11±0.41)× 10?5 and ? 18O=(?4.82±0.96)‰). This reflects that the relict water body in which the ancient naked carp lived during the Ming Dynasty was characterized by higher Mg/Ca and ? 18 O ratios than modern Lake Qinghai, resulting from strong evaporation after being isolated from the main lake, similar to today's Lake Gahai. Based upon the stratigraphy and altitude of naked carp remains, it can be inferred that the altitude of lake level of Lake Qinghai reached at least 3202 m with a lake area of 4480 km2 during the Ming Dynasty, approximately ~5% larger than it is today.  相似文献   

18.
王文种  黄对  刘九夫  刘宏伟  王欢 《湖泊科学》2020,32(5):1552-1563
湖泊变化是气候变化的指示器.为探索利用单一短时间尺度的卫星水位数据源估算长时间序列的湖泊水量变化的可行性,本文利用短时间尺度(2016—2018年) Sentinel-3A合成孔径雷达高度计(SRAL)作为唯一卫星水位数据源,以藏北高原内陆湖泊当惹雍错为例,结合基于Landsat光学遥感数据提取的1988—2018年的湖泊面积,综合分析2016—2018年间的非结冰期遥感湖泊面积与遥感湖泊水位变化,基于该时段范围的水位变化-面积变化关系和水量估算公式,估算1988—2018年湖泊水位水量变化与2001—2018年的年内变化,并结合GLDAS产品数据与雪线变化情况初步探讨湖泊变化的可能原因.结果表明:当惹雍错近30年湖泊面积扩张明显,湖泊水位、水量增加显著,相比1988年,2018年的湖泊面积、水位、水量分别增加21.1 km2、5.29 m、44.75亿m3.其中1988—1998年湖泊面积-水位-水量有所减少,2000—2018年间湖泊变化总体呈增加趋势.2001—2018年内湖泊面积、水位、水量变化呈现干湿季特征.1996—2014/2015年湖泊水量变化为38.3亿/35.5亿m3,水量变化趋势、变化量与以往对应时间段的研究结果具有较强的一致性.湖泊面积扩张主要发生在水下地形平缓的东南部和中西部区域.结合气候因素与雪线变化的分析表明,湖泊水量变化受降雨、气温影响复杂,长时间年际尺度上的湖泊水量增长与气温的一致性较降水量强,湖泊湿季受降水量与气温的影响都较大,其中2008—2018年的湿季降水量、气温与水量变化散点拟合的确定性系数R2分别为0.613、0.845.该研究表明Sentinel-3A合成孔径雷达数据在湖泊水量变化估算上的潜力,为利用单一且只具有短时段数据的卫星雷达数据估算长时间序列湖泊水量变化提供依据.  相似文献   

19.
段水强 《湖泊科学》2018,30(1):256-265
柴达木盆地众多的湖泊不仅对维持当地脆弱的生态环境具有极其重要的作用,而且中心盐湖也是重要的矿产资源.进入21世纪以来,受气候变化和人类活动的共同影响,盆地湖泊发生了一系列重大变化.为科学认识这一问题,选取了1976-2015年6期Landsat系列卫星影像,解译了该区域1 km2以上的湖泊水面,并分析了湖泊变化对气候和人类活动的响应.结果表明:柴达木盆地湖泊面积总体上存在扩张(1976-1990年)萎缩(1990-2000年)扩张(2000-2010年)萎缩(2010-2015年)4个阶段的变化过程,2010年湖泊面积最大,2015年湖泊又明显萎缩.就气候水文因素而言,湖泊面积变化主要受山区降水径流的影响.湖面变化与前3 a的降水径流关系最为密切.进入21世纪以来,气候变化与上游社会经济耗水、盐湖周边人为阻隔河湖连通、开采卤水、修建人工盐田、排放老卤等人类活动,对盆地中心湖泊的空间格局、面积都产生了显著影响,苦水沟、达布逊湖南部形成了新湖泊,鸦湖、团结湖面积显著扩大,东、西台吉乃尔湖逐渐萎缩、干涸,一里平湖由以前的干盐湖在2010年一跃成为盆地最大的湖泊.针对盐湖大规模开发产生的负面影响,提出了合理开发盐湖资源的建议.  相似文献   

20.
洞庭湖近30a水位时空演变特征及驱动因素分析   总被引:4,自引:4,他引:0  
洞庭湖地处北亚热带季风湿润气候区,水情时空变化尤为明显.为了探明洞庭湖水位时空演变特征,以洞庭湖6个水位站(城陵矶、鹿角、营田、杨柳潭、南咀、小河咀)、出入湖流量("三口"总入湖流量、"四水"总入湖流量、城陵矶出湖流量)和长江干流流量(宜昌、螺山)等1985-2014年逐日数据为基础,通过构建泰森多边形计算湖泊水位,运用Morlet小波分析、层次聚类分析和地统计理论研究湖泊水位的周期性变化规律及空间分布格局和自相关性.研究结果表明:洞庭湖水位变化具有典型的季节性,且年际变化具有28和22 a的多时间尺度特征;水位空间分布格局呈现出小河咀、南咀、杨柳潭(Group 1)以及城陵矶、鹿角、营田(Group 2)两种聚类,且在不同水文季节的空间自相关性依次表现为丰水期退水期涨水期枯水期.通过建立两类水位在不同水文季节与径流量的多元逐步回归模型揭示了洞庭湖水位时空演变的驱动因素,其中Group 1水位演变主要受长江干流水文情势的影响,Group 2水位演变由出入湖径流量和长江干流径流量共同作用,并随着不同水文季节江湖关系的改变以及湖泊自身水力联系的变化而变化.研究结果对于科学认识洞庭湖水位的时空演变规律以及湖泊生态系统保护和水资源的规划、管理与调控具有重要意义.  相似文献   

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