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1.
山地生态系统退化对生物多样性和地上生物量,以及相互关系在海拔高度梯度上的格局影响,是认识全球变化和人类干扰引起自然生态系统变化的重要内容。以青藏高原三江源区高寒坡地退化草甸和灌丛为研究对象,探讨退化草甸、灌丛群落物种多样性与地上生物量关系及其沿海拔梯度的变化规律。结果表明:(1)坡地退化的上坡位植被盖度显著大于下坡位(P<0.05)。坡地退化高寒草甸和高寒灌丛,植物物种多样性沿海拔梯度变化规律一致,均呈现"单峰"分布格局。坡地退化高寒草甸Shannon-wiener指数和Simpson指数二次回归方程解释度达到80%和70%以上(P<0.05)。(2)坡地退化高寒草甸和高寒灌丛的地上生物量与海拔梯度的变化规律一致,即随海拔升高高寒坡地地上生物量呈先增加后降低的变化趋势。海拔梯度对退化高寒山地地上生物量的解释度达到85%以上(P<0.05)。(3)物种多样性和地上生物量的关系在两个坡地上表现出一致的规律,呈线性增加的变化趋势。高寒草甸坡地回归方程解释度达到70%,高寒灌丛坡地达到60%(P<0.05)。坡地退化高寒灌丛植物群落多样性和地上生物量高于高寒草甸植物群落。高寒坡地退化草甸和灌丛植物群落物种多样性以及其与地上生物量之间的关系沿海拔梯度的变化规律一致,海拔梯度造成的环境差异对植物群落物种多样性和地上生物量影响仍较大。该研究对认识三江源区退化山地形成生态学机制,及提出有效的生态恢复措施具有重要参考价值。  相似文献   

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杨秀静  黄玫  王军邦  刘洪升 《生态学报》2013,33(7):2032-2042
青藏高原草地生物量大部分分布于地下,地下生物量在其碳循环研究中起着重要的作用.基于大规模野外样地调查数据,分析比较了青藏高原南北和东西样带上草地地下生物量与环境因子的相关关系,探讨了环境因子对地下生物量控制作用的区域差异.研究结果表明:对于所有采样点而言,青藏高原草地地下生物量的环境控制因素主要有土壤含水量、表层土壤有机碳和全氮含量.通过比较南北和东西样带研究结果发现,草地地下生物量与土壤含水量、土壤表层有机碳和全氮含量相关的显著性水平,在东西样带上明显高于南北样带.同时,东西样带上草地地下生物量与降水量有显著正相关关系,这种关系在南北样带上不显著,表明水分对东西样带草地地下生物量的控制作用较强.气温与南北样带草地地下生物量呈显著负相关,但与东西样带草地地下生物量相关不显著,由此说明环境因子对青藏高原草地地下生物量的控制存在显著区域差异.  相似文献   

4.
在青藏高原进行了大范围的群落调查 ,研究高原的两种主要草地群落类型———高寒草甸和高寒草原的植物物种丰富度及其变化。结果表明 :(1)在 5 0个样地 2 5 0个 1m× 1m的样方中 ,共出现 2 6 7种植物 ,其中高寒草甸179种 ,高寒草原 135种。在高寒草甸 ,1m2 样方内物种数最多为 32种 ,最少的仅为 3种 ;在高寒草原 ,物种数最多为 18种 /m2 ,最少的仅为 2种 /m2 。 (2 )物种丰富度随经度和纬度的增加呈增加趋势 ;随海拔的上升呈减少趋势。对物种丰富度与环境因子之间进行逐步回归 ,发现物种丰富度与生长季降水和温暖指数呈显著正相关。 (3)物种丰富度与地上生物量呈显著正相关。  相似文献   

5.
梁大林  唐海萍 《生态学报》2022,42(1):287-300
高寒草甸和高寒草原作为青藏高原两种重要植被类型,研究其植被变化与气候变化相关性,有助于为青藏高原两种高寒草地生态系统应对全球气候变化管理提供参考。以位于同纬度的三江源高寒草甸和阿里高寒草原为研究对象,基于植被净初级生产力(Net Primary Productivity, NPP)变化表征植被变化,利用NPP数据和气象数据,分别分析两地2000—2017年植被NPP、降水和气温时空变化差异;利用Sen+Mann-Kendall趋势检验,研究两种高寒草地气候与植被净初级生产力变化趋势;以县域统计年鉴牛羊肉产量表征放牧强度,研究放牧活动对高寒草地植被变化的影响;通过Pearson相关和偏相关分析方法,分别研究降水和气温对两种高寒草地植被NPP变化影响差异。研究结果表明:(1)2000—2017年三江源高寒草甸和阿里高寒草原区年平均气温以0.085℃/a和0.084℃/a的趋势上升,降水以平均每年3.87 mm和2.23 mm的趋势增加,高寒草甸区变暖变湿速率较高寒草原区快。(2)三江源高寒草甸和阿里高寒草原植被NPP均呈现由东南向西北逐渐降低空间格局;2000—2017年高寒草甸区57.7...  相似文献   

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张艳博  罗鹏  孙庚  牟成香  王志远  吴宁  罗光荣 《生态学报》2012,32(15):4605-4617
为认识放牧对青藏高原东部中生性的高寒草甸草地和半湿生的沼泽草地凋落物分解的影响,在这两种草地上分别设置了围栏和放牧样地,研究了其各自的混合凋落物样品和4个优势物种(发草Deschampsiacaespitos、鹅绒委陵菜Potentilla anserine、木里苔草Carexmuliensis、藏嵩草Kobresiatibetica)凋落物的分解和养分释放动态,这4个优势物种也大致代表了当地沼泽草地生态系统在放牧和气候变暖驱动下逆行演替不同阶段的优势物种类群。结果表明,各优势物种凋落物的分解速率有显著差异;放牧在总体上促进了凋落物的分解,但不同物种的响应有所不同;放牧对凋落物C的释放影响不显著或有抑制作用,但对N、P的释放具有一定促进作用。对各优势物种凋落物分解和养分释放模式的分析表明,群落逆行演替过程中,凋落物分解和C释放加速,可能促进沼泽湿地退化的正反馈效应。草甸草地的退化标志物种鹅绒委陵菜具有较高的凋落物质量和分解速度,反映了中生条件下植物应对牲畜啃食采用"逃避"而非"抵抗"策略的趋向。  相似文献   

7.
The uptake of CH4 by aerate soil plays a secondary role in the removal of tropospheric CH4, but it is still highly uncertain in terms of its magnitude, spatial, and temporal variation. In an attempt to quantify the sink of the vast alpine grasslands (1 400 000 km2) of the Tibetan Plateau, we conducted in situ measurements in an alpine steppe (4730 m) and alpine meadow (4900 m) using the static chamber and gas chromatograph method. For the alpine steppe, measurements (2008–2013) suggested that there is large interannual variability in CH4 uptake, ranging from ?48.8 to ?95.8 μg CH4 m?2 h?1 (averaged of ?71.5 ± 2.5 μg CH4 m?2 h?1), due to the variability in precipitation seasonality. The seasonal pattern of CH4 uptakes in the form of stronger uptake in the early growing season and weaker uptake in the rainy season closely matched the precipitation seasonality and subsequent soil moisture variation. The relationships between alpine steppe CH4 uptake and soil moisture/temperature are best depicted by a quadratic function and an exponential function (Q10 = 1.67) respectively. Our measurements also showed that the alpine meadow soil (average of ?59.2 ± 3.7 μg CH4 m?2 h?1) uptake less CH4 than the alpine steppe and produces a similar seasonal pattern, which is negatively regulated by soil moisture. Our measurements quantified – at values far higher than those estimated by process‐based models – that both the alpine steppe and alpine meadow are considerable CH4 sinks, despite the cold weather of this high‐altitude area. The consecutive measurements gathered in this study also highlight that precipitation seasonality tends to drive the interannual variation in CH4 uptake, indicating that future study should be done to better characterize how CH4 cycling might feedback to the more extreme climate.  相似文献   

8.
《植物生态学报》2015,39(7):762
Aims Water use efficiency (WUE) is an important parameter to understand the coupling between the water, and carbon cycles of terrestrial ecosystems. Previous studies on the grassland ecosystem WUE on the Qinghai-Xizang Plateau mainly based on annual precipitation (AP). However, vegetation water use mainly occurs in growing season. Therefore, we aimed to explore the differences of ecosystem WUE between alpine meadow and alpine steppe, and the relationships between ecosystem WUE and environmental factors from 2000 to 2010, using annual precipitation use efficiency (PUEa), growing season precipitation use efficiency (PUEgs), growing season water use efficiency (WUEgs) based on AP, growing season precipitation (GSP) and growing season evapotranspiration (ETgs ) respectively. Methods Combining satellite-derived above-ground net primary productivity (ANPP), satellite-derived evapotranspiration and meteorological data from 2000 to 2010, we calculated PUEa (ANPP / AP), PUEgs (ANPP / GSP) and WUEgs (ANPP / ETgs) to find the differences of PUEa, PUEgs and WUEgs between alpine meadow and alpine steppe. Moreover, we explored the relationships between PUEa, PUEgs or WUEgs and precipitation (or evapotranspiration) or air temperature. Important findings We found that (1) the PUEa and PUEgs of alpine meadow were higher than that of alpine steppe, but there were no significant difference between WUEgs of the two grassland types, indicating that there may be similar intrinsic water use efficiencies of the two grassland types. (2) The inter-annual variation of PUEa and PUEgs were similar while WUEgs showed a larger fluctuation, implying that ET-based WUEgs was more sensitive than precipitation-based PUEa and PUEgs, therefore WUEgs is a better indicator of ecosystem water use efficiency than PUEa or PUEgs. (3) The PUEa, PUEgs and WUEgs were negatively correlated with AP, GSP and ETgs respectively, reflecting a consistency of the three water use efficiency measurements. In the alpine steppe, only WUEgs was observed positively correlated with air temperature among the three measurements, but in the alpine meadow, no significant relationships between water use efficiency and air temperature was detected, suggesting that the WUEgs of alpine steppe was more sensitive to air temperature than that of alpine meadow.  相似文献   

9.
水分利用效率是深入理解生态系统碳、水循环间耦合关系的重要指标。以前研究青藏高原的水分利用效率多基于年降水量(AP)来分析, 但植物对水分的利用主要在生长季。该研究采用以AP、生长季降水量(GSP)和生长季蒸散量(ETgs)分别计算的年降水利用效率(PUEa)、生长季降水利用效率(PUEgs)和生长季水分利用效率(WUEgs), 分析了2000-2010年间青藏高原两种主要植被类型高寒草甸和高寒草原PUEaPUEgsWUEgs的差异及其与降水量、蒸散量和气温的关系。结果表明: (1)高寒草甸的PUEaPUEgs均大于高寒草原, 但两种草地类型的WUEgs无显著差别, 这说明两种草地类型可能存在相似的内在的水分利用效率。(2)从年际动态来看, PUEaPUEgs的波动范围相似, 而WUEgs的波动范围更大, 说明以蒸散为依据的WUEgs可能比PUEaPUEgs更敏感, 因而可能更好地反映生态系统的水分利用能力。(3)高寒草甸和高寒草原的PUEaPUEgsWUEgs分别与APGSPETgs呈单调递减趋势, 表明3种水分利用效率均随降水量或蒸散量的增加而降低。高寒草原的3种水分利用效率中仅WUEgs随着气温的增加而增加, 而高寒草甸的3种水分利用效率均与气温无显著关系, 这说明相比高寒草甸, 高寒草原的水分利用效率对气温更加敏感。  相似文献   

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青藏高原有各类天然草地14×108hm2,其中高寒草甸和高寒灌丛约占青藏高原天然草地面积的50%,占全国草地总面积的16.2%。嵩草草甸是高寒草甸的主体,包括矮嵩草草甸、金露梅灌丛草甸、藏嵩草草甸、小嵩草草甸和高山嵩草草甸等,这5类高寒草甸平均地上生物量分别为354.2、422.4、445.1、227.3和368.5g/m2,地下生物量分别为3389.6、3548.3、11922.7、4439.3、5604.8g/m2,地下与地上生物量的比例分别为10.55、10.15、27.82、14.82和15.21,远大于IPCC(2006)报告中地下/地上生物量比例的默认值(2.8±95%)。地下生物量对气候变化和放牧的反应比地上生物量更敏感,干旱和重度放牧均降低了地下/地上生物量的比例。在极度退化状态下地下/地上生物量的比例2。对于轻度和中度退化的高寒草甸应以围封禁牧为主要恢复措施,但如果结合补播和施肥,则恢复速率会加快;对于重度和极度退化的高寒草甸,由于草地植物群落中优良牧草的比例极低,仅靠自然恢复很难进行恢复或需要的年限很长,所以必须采用人工重建的措施,并结合毒杂草防除和施肥等措施进行恢复,通过建立人工或半人工草地的措施予以重建。  相似文献   

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以青藏高原玛沁地区高寒草甸和沱沱河地区高寒荒漠草原为观测研究站,利用涡动协方差技术获取高寒生态系统水平上的CO2通量以及水和能量通量,通过REddyProc、随机森林(Random Forest, RF)进行了数据后处理,探究了不同下垫面典型环境因子对净生态系统CO2交换量(Net Ecosystem Exchange, NEE)的影响机制。结果表明:1)玛沁高寒草甸在6—7月以吸收为主,表现为碳汇,吸收峰值出现在11:00—12:00(北京时,下同)之间,而在3、4、5、8月以排放为主,表现为碳源,排放峰值出现在21:00—23:00之间;沱沱河高寒荒漠在3—8月以吸收为主,表现为净碳汇,吸收峰值出现在13:00—14:00之间;整个生长季前后(3—8月),玛沁和沱沱河的累计NEE分别为79.50 g C/m2和79.24 g C/m2,都表现为碳汇。2)不同尺度不同下垫面,气象因子对NEE的重要程度不同,小时尺度上,高寒草甸辐射对NEE的重要性最大,高寒荒漠草原蒸散发对NEE的重要性最大;日尺度...  相似文献   

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高寒草毡层基本属性与固碳能力沿水分和海拔梯度的变化   总被引:1,自引:0,他引:1  
苏培玺  周紫鹃  侍瑞  解婷婷 《生态学报》2018,38(3):1040-1052
高寒草毡层是高原寒区自然植被下形成的松软而坚韧且耐搬运的表土层,认识其生态功能是促进草牧业生产休养保护和工程施工主动利用的前提。通过对青藏高原东部若尔盖高原植被的广泛调查,在布设沼泽、退化沼泽、沼泽化草甸、湿草甸、干草甸和退化草甸水分梯度群落样地,以及亚高山草甸、亚高山灌丛草甸、高山灌丛草甸和高山草甸海拔梯度群落样地的基础上,通过对不同类型群落样地草毡层容重、土壤颗粒组成和土壤有机碳(SOC)含量的测定分析,比较了水分和海拔梯度下草毡层固碳能力。结果表明,草毡层厚度平均为30cm,沼泽湿地草毡层容重最小,SOC含量在300g/kg以上;退化草甸容重最高,SOC含量显著下降。不同群落草毡层SOC密度在10—24kg C/m~2之间,随着土壤水分有效性的降低而降低;高山灌丛草甸草毡层SOC密度比草甸高15%。研究得出,保持草毡层稳定的质量含水量阈值为30%,SOC含量阈值为30g/kg;高寒植被草毡层在沼泽到草甸的退化演替中,容重、紧实度变大,有机碳含量减少,碳密度和碳储量下降;灌丛草甸的固碳能力大于草甸,但灌丛草甸的生产功能降低;保持可持续发展的草地生产能力,维护固碳生态功能,需要防止草毡层退化,抑制草甸向灌丛草甸演替。  相似文献   

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土壤酶活性作为生态系统养分循环的关键因素, 是反映土壤质量和生态系统功能的重要指标, 但是关于高寒草地生态系统中不同草地类型间酶活性的差异研究还很少。因此, 该研究在藏北高寒草地选择高寒草甸、高寒草原、高寒草甸草原、高寒荒漠草原和高寒荒漠5种草地类型进行野外原位调查和采样, 测定了涉及碳(C)、氮(N)和磷(P)循环的14种酶的活性, 并建立了高寒草地酶活性与土壤微生物和土壤理化性质等环境因子的关系。结果表明: C循环酶(蔗糖酶、纤维素酶、β-葡萄糖苷酶、多酚氧化酶和过氧化物酶)和P循环酶(碱性磷酸酶)在不同高寒草地类型间活性差异明显, N循环酶中仅芳香氨基酶和亚硝酸盐还原酶两种酶在不同高寒草地类型间活性差异明显。同时, C、N和P循环酶之间存在一定的相关关系, 其中, 蔗糖酶和碱性磷酸酶、纤维素酶和α-乙酰氨基葡萄糖苷酶活性显著正相关, 多酚氧化酶与亚硝酸还原酶和β-乙酰氨基葡萄糖苷酶活性显著负相关。在测定的19个环境指标中, 土壤有机质(SOM)含量、革兰氏阴性菌数量、土壤N和P含量计量比、革兰氏阳性菌数量、细菌数量、放线菌数量、全氮含量、真菌数量是影响土壤酶活性的关键因子, 且SOM含量的影响最大(解释量为11.9%)。综上所述, 不同高寒草地类型间C循环酶、P循环酶和两种N循环酶(芳香氨基酶和亚硝酸还原酶)活性差异显著, SOM含量、微生物数量和N含量等是影响高寒草地生态系统土壤酶活性的关键因子。  相似文献   

14.
The montane (low- to mid-alpine) zone in Great Britain (GB) lies above the potential tree-line (700–800 m, but descending to 200 m in the north). It is composed of moss and lichen heaths, snowbeds, blanket bog and dwarf-shrub (Ericaceae) health-covered solifluction/gelifluction terraces (38 communities/sub-communities). Approximately 3.0% of the land surface is covered by this- the most extensive predominantly near-natural terrestrial habitat in GB. Internationally distinctive features include oceanic and southern biotic outliers of arctic-alpine fellfield and mountain tundra, and plant communities that are either globally rare/localised or especially well represented in GB. The absence of extensive sub-alpineBetula spp. andSalix spp. scrub is striking.The main sources of habitat diversity are climate, regional variation in topography and geology, and regional modifications due to land-use impact. Over 50 examples are given. Five important gradients in Scottish Highland vegetation are described. Only some 15% of the sampled montane vegetation is anthropogenic; the rest is semi- or near-natural. The vegetation is divided into 5 functional groups: chionophobous (avoids snow), chionophilous (prefers snow), species-rich, mires (including springs and flushes), and anthropogenic. Chionophobous and then chionophilous communities contribute most to montane vegetation diversity (calculated here as the ShannonH diversity index).H diversity increases asymptotically with montane site area but linearly with the number of communities present. A more varied topography, geology and topo-climate gives the highestH diversity.Two examples of montane biodiversity reductions south of the Highlands are the loss of prostrateCalluna vulgaris heaths and modification ofRacomitrium lanuginosum healths. Five objectives for nature conservation are proposed, covering restoration of montaneR. lanuginosum healths, prostrate dwarf-shrub dominated heaths, sub-alpine scrub and upper treelines, and the extension of the breeding ranges of both ptarmigan (Lagopus mutus) and dotterel (Charadrius morinellus) south of the Scottish Highlands. International support for monitoring is sought.  相似文献   

15.
Photosynthetic activity by phytoplankton was measured during the ice-free seasons of 1984, 1985 and 1987 using the 14C radioassay in high altitude Emerald Lake (California). Relative quantum yield (B) and light-saturated chlorophyll-specific carbon uptake (Pm B) were calculated from the relationship of light and photosynthesis fitted to a hyperbolic tangent function. Temporal changes in Pm B showed no regular pattern. Seasonal patterns of B generally had peaks in the summer and autumn. Phytoplankton biomass (as measured by chlorophyll a) and light-saturated carbon uptake (Pm) had peaks in the summer and autumn which were associated with vertical mixing. Estimates of mean daily carbon production were similar among the three years: 57 mg C m–2 2 d–1 in 1984, 70 mg C m–2 2 d–1 in 1985 and 60 mg C m–2 d–1 in 1987. Primary productivity in Emerald Lake is low compared to other montane lakes of California and similar to high-altitude or high-latitude lakes in other regions.  相似文献   

16.
Since 1998, a group of archaeologists have been studying the long-term history of human settlement and activity in the mid to high altitude (1800m and above) in theParc National des Ecrins (southern French Alps). This research has identified a number of different phases of settlement since the end of the last Ice Age (10,000 years ago). Whilst we accept that it is impossible to present the variation in actual number of people present in these marginal milieus, we can present an overview of waxing and waning of human activity in our study area. Our research demonstrates that poeple moved into these high altitude zones as soon as the glaciers retreated. The first phase of extensive and relatively intensive activity dates to the Bronze Age (c. 2000 BC). During the Iron Age and Roman period there appears to have been a relative reduction in the level of activity. However, from the early medieval period onwards there is incontrovertible evidence for a substantial increase in activity. This culminates with the emergence of a “busy” landscape during the post-medieval period when mining and pastoral activities were at their peak.  相似文献   

17.
青藏高原扇穗茅高寒草原的基本特点   总被引:4,自引:0,他引:4       下载免费PDF全文
郭柯 《植物生态学报》1995,19(3):248-254
 扇穗茅(Littledalea racemosa)是青藏高原特有的疏丛短根茎禾草,主要生长在昆仑山以南的高原东北部的高寒草原带到高寒灌丛草甸带。它耐寒、耐贫瘠,水分生态适应幅度较广。扇穗茅草原是中国科学院、青海省可可西里综合科学考察队1990年考察后首次报道的一个高原特有的高寒草原群系。它主要分布在青海西南部的昆仑山以南、沱沱河以北、乌兰乌拉山和可可西里山以东地区。其群落的种类组成比较简单,约40余种。植物区系地理成分以青藏高原成分占优势,还有中亚成分和北温带成分。生活型组成以地面芽植物为主,一年生植物仅记录到一种,没有高位芽植物。植物生态类型全部是适应高寒气候生长的植物,水分生态类型以寒旱生植物为主,其次为寒中旱生植物。群落结构随环境条件的变化而有较大的差异。群落盖度一般在8月中旬最高,约为10—34%,扇穗茅一般占1/3以上。 扇穗茅草原是青藏高原有蹄类动物,如野牦牛、藏野驴、藏羚等国家一类珍稀野生保护动物和盘羊等二类珍稀野生保护动物的重要活动场所之一,对于这些动物的生存具有重要的意义。  相似文献   

18.
Worldwide, many plant species are experiencing an earlier onset of spring phenophases due to climate warming. Rapid recent temperature increases on the Tibetan Plateau (TP) have triggered changes in the spring phenology of the local vegetation. However, remote sensing studies of the land surface phenology have reached conflicting interpretations about green-up patterns observed on the TP since the mid-1990s. We investigated this issue using field phenological observations from 1990 to 2006, for 11 dominant plants on the TP at the levels of species, families (Gramineae—grasses and Cyperaceae—sedges) and vegetation communities (alpine meadow and alpine steppe). We found a significant trend of earlier leaf-out dates for one species (Koeleria cristata). The leaf-out dates of both Gramineae and Cyperaceae had advanced (the latter significantly, starting an average of 9 days later per year than the former), but the correlation between them was significant. The leaf-out dates of both vegetation communities also advanced, but the pattern was only significant in the alpine meadow. This study provides the first field evidence of advancement in spring leaf phenology on the TP and suggests that the phenology of the alpine steppe can differ from that of the alpine meadow. These findings will be useful for understanding ecosystem responses to climate change and for grassland management on the TP.  相似文献   

19.
高寒草地植物物种多样性与功能多样性的关系   总被引:5,自引:0,他引:5  
物种多样性与功能多样性的关系是生态学当前研究的热点问题之一,不同区域典型生态系统物种多样性和功能多样性的关系研究有利于生物多样性保护理论的全面发展。以青藏高原地区的主要草地生态系统—高寒草甸和高寒草原为研究对象,采用4个物种多样性指数(Patrick丰富度指数、Shannon-Weiner多样性指数、Pielou均匀度指数和Simpson优势度指数)和9个功能多样性指数(FAD功能性状距离指数、MFAD功能性状平均距离指数、基于样地的FDp和基于群落的FDc功能树状图指数、FRic功能体积指数、FEve功能均匀度指数、Rao功能离散度常二次熵指数、FDiv功能离散指数、FDis功能分散指数),分析了高寒草地植物物种多样性、功能多样性关系及其与初级生产力的关系,以期阐明3个科学问题:不同草地类型的高寒草地生态系统植物物种多样性和功能多样性有何差异?高寒草地生态系统的植物物种多样性和功能多样性有何关系?高寒草地生态系统物种多样性、功能多样性对生态系统功能的影响有何异同?研究结果表明:(1)与高寒草原相比,高寒草甸具有更高的物种多样性、功能丰富度和功能离散度;(2)高寒草甸中,Patrick丰富度与功能丰富度指数(FAD、MFAD、FDp、FDc)和功能离散度指数(FDiv)的具有较强的相关性,最优拟合方程分别为幂函数和二次多项式函数;(3)高寒草原中,Patrick丰富度与功能丰富度指数(FAD、MFAD、FDp、FDc、FRic)、Shannon指数和Simpson指数与FEve指数的相关性较强,最优拟合方程为二次多项式函数,Pielou指数与FEve指数的相关性较强,最优拟合方程为指数函数;(4)高寒草甸的初级生产力分别与物种丰富度指数Patrick、功能离散指数FDiv具有较强的相关性;而高寒草原的初级生产力与4个物种多样性指数间均具有较强的相关性,与功能离散指数FDiv具有较强的相关性,最佳拟合方程均为二次多项式函数。研究的总体结论为:物种多样性、功能多样性、二者之间的关系以及二者与生态系统服务功能(以初级生产力为例)之间的关系在高寒草甸和高寒草原群落中表现迥异,因此在研究青藏高原高寒草地的生态功能时,不能仅仅测度传统的物种多样性,还应测度与物种多样性、生态功能密切相关的功能多样性。  相似文献   

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