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51.
甘南高寒退化草地生态位特征及生产力研究   总被引:9,自引:1,他引:8  
采取样方法,对玛曲县高寒中度退化草地的植物种群群落进行了研究分析,结果表明:以莎草植物(嵩草)为绝对优势种,杂类草(金莲花)为主要伴生种。非优势种垂穗披碱草、甘青青兰生态位宽度较大,分别为0.913和0.911,而绝对优势种嵩草和主要伴生种金莲花的生态位宽度较低,分别为0.906和0.641。生态位相似性比例大于0.50%的种对约占种群总对数的42.29%。生态位重叠值大于0.040的种对,约占种群总对数的20.55%。生态位宽度较大的两个种群,种对相似性比例一般较高,具有较大的生态位重叠(如种对乳白香青和毛茛0.082),而生态位窄的物种相互间生态位重叠比例较小(如种对二裂委陵菜和金莲花0.033)。高生态位宽度与低生态位宽度的种群也可能有较高的重叠值(如种对车前和毛茛0.065),反之则低。杂类草鲜草产量、地上生物量比例最高,依次为100.00 g/(m2.a)、43.37%。  相似文献   
52.
青藏高原典型高寒草甸区土壤有机碳氮的变异特性   总被引:2,自引:1,他引:1  
本研究应用地统计学的基本原理与方法(半方差分析)对青藏高原典型高寒草甸区0~10 cm土壤有机碳和全氮空间变异性进行了分析.结果表明,0~10 cm的土壤有机碳和全氮的平均含量分别为11.45 g·kg-1和1.02 g·kg-1,平均变异系数分别为0.23和0.21,反映出该植被区土壤肥力较为贫瘠.土壤有机碳和全氮随机因素的变异占总空间异质性变异的比率分别为44.7%和49.9%,变异尺度分别为210.9 m和200.1 m,随机因素的影响主要发生在采样尺度<10 m的范围之内.在该研究区域上土壤有机碳和全氮均表现出空间自相关因素大于随机因素的变异格局;在空间结构的变异上,由土壤内在属性如土壤矿物质、地形等空间自相关因素和人为因素如放牧及工程施工等对土壤表层的践踏引起的随机因素共同起作用,影响程度呈中等水平.  相似文献   
53.
为分析高寒地区露天排土场稳定性,以乌努格吐山铜钼矿排土场为工程背景,结合室内试验并利用GeoStudio及FLAC3D软件对边坡进行模拟计算分析,给出边坡治理有效措施。结果表明:前3次冻融循环对散体物料的抗剪强度影响显著,后期影响则趋于稳定;6个剖面的安全系数普遍大于1.2,在地下水的干扰下,各剖面安全系数普遍下降,尤其是剖面E-E,其安全系数低于1,存在滑坡风险;水对边坡的安全性影响较大,其次提出削坡治理及布置抗滑桩措施,当边坡角度削减至31°时,边坡的安全系数增至为1.383;抗滑桩增至8根时,安全系数增加至1.296,这些措施对边坡的治理皆起到积极作用。研究结果可为高寒地区矿山安全开采提供技术支持。  相似文献   
54.
The Ganges Delta in Bangladesh is an example of water‐related catastrophes in a major rural river basin where limitations in quantity, quality, and timing of available water are producing disastrous conditions. Water availability limitations are modifying the hydrologic characteristics especially when water allocation is controlled from the upstream Farakka Barrage. This study presents the changes and consequences in the hydrologic regime due to climate‐ and human‐induced stresses. Flow duration curves (FDCs), rainfall elasticity, and temperature sensitivity were used to assess the pre‐ and post‐barrage water flow patterns. Hydrologic and climate indices were computed to provide insight on hydro‐climatic variability and trend. Significant increases in temperature, evapotranspiration, hot days, heating, and cooling degree days indicate the region is heading toward a warmer climate. Moreover, increase in high‐intensity rainfall of short duration is making the region prone to extreme floods. FDCs depict a large reduction in river flows between pre‐ and post‐barrage periods, resulting in lower water storage capacity. The reduction in freshwater flow increased the extent and intensity of salinity intrusion. This freshwater scarcity is reducing livelihood options considerably and indirectly forcing population migration from the delta region. Understanding the causes and directions of hydrologic changes is essential to formulate improve water resources management in the region.  相似文献   
55.
Many species that inhabit seasonally ponded wetlands also rely on surrounding upland habitats and nearby aquatic ecosystems for resources to support life stages and to maintain viable populations. Understanding biological connectivity among these habitats is critical to ensure that landscapes are protected at appropriate scales to conserve species and ecosystem function. Biological connectivity occurs across a range of spatial and temporal scales. For example, at annual time scales many organisms move between seasonal wetlands and adjacent terrestrial habitats as they undergo life‐stage transitions; at generational time scales, individuals may disperse among nearby wetlands; and at multigenerational scales, there can be gene flow across large portions of a species’ range. The scale of biological connectivity may also vary among species. Larger bodied or more vagile species can connect a matrix of seasonally ponded wetlands, streams, lakes, and surrounding terrestrial habitats on a seasonal or annual basis. Measuring biological connectivity at different spatial and temporal scales remains a challenge. Here we review environmental and biological factors that drive biological connectivity, discuss implications of biological connectivity for animal populations and ecosystem processes, and provide examples illustrating the range of spatial and temporal scales across which biological connectivity occurs in seasonal wetlands.  相似文献   
56.
Ephemeral and intermittent streams are abundant in the arid and semiarid landscapes of the Western and Southwestern United States (U.S.). Connectivity of ephemeral and intermittent streams to the relatively few perennial reaches through runoff is a major driver of the ecohydrology of the region. These streams supply water, sediment, nutrients, and biota to downstream reaches and rivers. In addition, they provide runoff to recharge alluvial and regional groundwater aquifers that support baseflow in perennial mainstem stream reaches over extended periods when little or no precipitation occurs. Episodic runoff, as well as groundwater inflow to surface water in streams support limited naturally occurring riparian communities. This paper provides an overview and comprehensive examination of factors affecting the hydrologic, chemical, and ecological connectivity of ephemeral and intermittent streams on perennial or intermittent rivers in the arid and semiarid Southwestern U.S. Connectivity as influenced and moderated through the physical landscape, climate, and human impacts to downstream waters or rivers is presented first at the broader Southwestern scale, and secondly drawing on a specific and more detailed example of the San Pedro Basin due to its history of extensive observations and research in the basin. A wide array of evidence clearly illustrates hydrologic, chemical, and ecological connectivity of ephemeral and intermittent streams throughout stream networks.  相似文献   
57.
Streams, riparian areas, floodplains, alluvial aquifers, and downstream waters (e.g., large rivers, lakes, and oceans) are interconnected by longitudinal, lateral, and vertical fluxes of water, other materials, and energy. Collectively, these interconnected waters are called fluvial hydrosystems. Physical and chemical connectivity within fluvial hydrosystems is created by the transport of nonliving materials (e.g., water, sediment, nutrients, and contaminants) which either do or do not chemically change (chemical and physical connections, respectively). A substantial body of evidence unequivocally demonstrates physical and chemical connectivity between streams and riparian wetlands and downstream waters. Streams and riparian wetlands are structurally connected to downstream waters through the network of continuous channels and floodplain form that make these systems physically contiguous, and the very existence of these structures provides strong geomorphologic evidence for connectivity. Functional connections between streams and riparian wetlands and their downstream waters vary geographically and over time, based on proximity, relative size, environmental setting, material disparity, and intervening units. Because of the complexity and dynamic nature of connections among fluvial hydrosystem units, a complete accounting of the physical and chemical connections and their consequences to downstream waters should aggregate over multiple years to decades.  相似文献   
58.
中国科学院西北高原生物研究所网页上发布信息:《自然》等著名学术刊物、媒体报道我国科学家在青藏高原生态系统甲烷排放研究方面的最新成果(http://www.nwipb.ac.cn/xwzx/zhxw/200808/t20080829_1674857.html)报道,高寒草甸植物能够释放甲烷,但是草本植物群落和木  相似文献   
59.
Natural channel design (NCD) and analytical channel design (ACD) are two competing approaches to stable channel design that share fundamental similarities in accounting for sediment transport processes with designs based on hybrid fluvial geomorphology and hydraulic engineering methods. In this paper, we highlight the linkage between ACD's capacity/supply ratio (CSR) and NCD's sediment capacity models (FLOWSED/POWERSED), illustrating how ACD and NCD have reached a point of convergent evolution within the stream restoration toolbox. We modified an existing CSR analytical spreadsheet tool which enabled us to predict relative channel stability using both conventional bed load transport equations and regional sediment regression curves. The stable channel design solutions based on measured data most closely matched the Parker (ACD) and/or Pagosa good/fair (NCD) relationships, which also showed the greatest CSR sensitivity in response to channel alterations. We found that CSR differences among the transport relationships became more extreme the further the design width deviated from the supply reach, suggesting that a stable upstream supply reach may serve as the best design analog. With this paper, we take a step toward resolving lingering controversy in the field of stream restoration, advancing the science and practice by reconciling key differences between ACD and NCD in the context of reach scale morphodynamics.  相似文献   
60.
利用涡度相关技术对青海湖高寒湿地生态系统夏季CO2通量日变化特征进行分析,并且结合气象观测数据对CO2通量日变化的影响因子进行探讨。结果表明,青海湖高寒湿地生态系统夏季CO2通量日变化呈“U”字型,白天8:00—20:00 CO2通量值为负,其他时间为正,最低值出现在12:30,为-15.34 μmol·m-2·s-1。CO2通量日平均值为-3.65 μmol·m-2·s-1(约-13.87 g·m-2·d-1),表现为明显的CO2吸收,是重要的碳汇。CO2通量与净辐射、气温和表层土壤温度的相关性分析表明,净辐射是影响青海湖高寒湿地生态系统夏季CO2通量日变化的主要因子,气温次之,表层土壤温度对CO2通量的影响最小。采用多元回归分析得出CO2通量与各个影响因子之间的关系符合三元一次线性回归方程,R2=0.689,且达到极显著水平(P〈0.01)。  相似文献   
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