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1.
通过野外控制实验,研究了高寒矮嵩草草甸群落植物多样性、初级生产力对模拟降雨条件的响应.结果表明: 1 在植物生长期 6月 ,增加降雨20%、增加降雨40%,植物群落物种多样性指数 H 和均匀度指数 J 分别比对照提高了0.188和0.011、0.735和0.076,生长期 7月 增加降雨20%物种H和J提高了0.409和0.07; 2 禾草类:增加降雨20%处理的地上生物量与对照相比没有明显的显著性差异 P>0.05 ,增加降雨40%处理的地上生物量与对照相比差异显著 P<0.05 ,说明过多增加降雨会抑制禾草的生长发育.杂类草:减少降雨50%处理的地上生物量与对照相比差异显著 P<0.05 ,其地上生物量对减少降雨的反映比较敏感.莎草类:其地上生物量对增加和减少降雨都没有显著变化; 3 0~10cm和0~30cm土层地下生物量均在增加降雨20%时最高,地下生物量的总量也在增加降雨20%时最高; 4 矮嵩草草甸地下生物量与地上生物量、总生物量的比值接近于生长季末时最大,且在模拟增加降雨20%的水平时,7、8、9月份地下和地上生物量较其它处理组高.  相似文献   

2.
采用国际冻原计划(ITEX)长期模拟增温试验装置,研究了退化和未退化的矮嵩草草甸上植物化学成分(粗灰分、中性洗涤纤维、酸性洗涤纤维、木质素、粗脂肪、粗蛋白和无氮浸出物)含量、土壤环境因子(速效氮、速效钾、速效磷、全氮、全磷、全钾、有机质和土壤含水量)的变化及其相互关系。结果表明:长期模拟增温明显影响了土壤理化性质和3个功能群植物的化学成分含量(P0.05);在退化的矮嵩草草甸上长期模拟增温,两者存在明显的交互效应(P0.05),增温增加了植物可直接利用的土壤养分含量,但土壤中有机质、全氮、全磷、全钾和含水量均低于其各自对照,增温降低了优良牧草(禾草和莎草)粗脂肪、粗蛋白和无氮浸出物的含量,增加了粗灰分、中性洗涤纤维、酸性洗涤纤维和木质素含量,降低了牧草消化率;长期模拟增温条件下,土壤理化性质对植物化学成分的贡献大小依次是:速效氮有机质含水量速效钾。典型对应分析表明,长期模拟增温进一步巩固了未退化矮嵩草草甸禾草类和莎草类优势牧草的地位,杂类草逐渐衰退;而在退化矮嵩草草甸样地上长期模拟增温,群落优势种的优势度下降,加剧了草地退化。  相似文献   

3.
高寒矮嵩草草甸植物类群对模拟降水和施氮的响应   总被引:12,自引:1,他引:12       下载免费PDF全文
 研究了青藏高原高寒矮嵩草(Kobresia humilis)草甸植物类群对模拟夏季增减雨量、冬春增雪以及增施氮肥下的响应。结果表明:1999年模拟减少降雨20%~40%和增加雨量20%~40%下禾草类、杂类草和莎草类的综合优势比(SDR)和地上生物量变化均不显著。冬春增雪100%有利于禾草类夏季的生长,冬春增雪对植物类群的影响大于夏季雨量的增加。夏季增施氮150 kg·hm-2和增施氮300 kg·hm-2禾草类的盖度比、高度比、SDR和地上生物量明显增大,而杂类草的盖度比和高度比、SDR及地上生物量在施氮300 kg·hm-2下显著减低,在施氮150 kg·hm-2水平上禾草类的生物量的增加与杂类草生物量的降低存在相互补偿的作用机制。在水分资源不利的(如减少雨量)的干扰下,其敏感性表现为杂类草大于禾草类,莎草类最小。莎草类植物对各种处理下响应不敏感,也说明它对资源环境的波动有很强的适应性。缺水年(1999年)模拟增加雨量20%~40%的条件下,可缓解降水量减少的影响,相反模拟减少雨量20%~40%会增强干旱的影响程度。  相似文献   

4.
生物多样性与生态系统功能的关系及其机制是生态学领域的重大科学问题. 人们越来越关注环境因子对多样性-生产力关系的影响. 植物群落组成、物种丰富度、物种特征、生物量的分布结构和植物枯枝落叶对高寒草甸物种多样性和生产力有着重要的影响. 因此, 我们利用2001~2004年中国科学院海北生态系统定位站高寒草甸群落的实测资料, 研究了不同环境梯度(土壤含水量和营养)下, 植物群落生物量, 物种丰富度及组成的变化. 结果表明, 植物群落物种组成的不同反应在生物量的分布上, 以藏嵩草为优势种的藏嵩草沼泽化草甸群落总生物量(地上、地下)最高(13196.96±719.69 g/m2), 次之是以杂类草和莎草科为主的小嵩草草甸(2869.58±147.52 g/m2), 以禾本科和杂类草为主的矮嵩草草甸最低(2153.08±141.95 g/m2). 藏嵩草沼泽化草甸中, 草本植物枯枝落叶显著高于小嵩草、矮嵩草草甸, 土壤含水量对草本植物枯枝落叶有较大的影响. 不同类型草甸群落中, 地上生物量与土壤有机质、全氮和群落盖度之间均呈显著正相关(P < 0.05); 藏嵩草沼泽化草甸中, 总生物量与物种丰富度呈负相关(rs = -0.907, P < 0.05)、地下生物量与土壤含水量呈正相关(rs = -0.900, P < 0.05); 而在小嵩草和矮嵩草草甸中它们之间均没有达到显著水平, 说明不同类型高寒草甸群落生产力除受物种多样性、功能群内物种密度和均匀度的影响, 同时也受物种本身特征和外部环境资源的影响. 不同类型草甸群落生物量的分布与土壤含水量和土壤养分的变化相一致.  相似文献   

5.
青海海北地区矮嵩草草甸生物量和能量的分配   总被引:15,自引:0,他引:15       下载免费PDF全文
 此项研究工作于1980年在海北高寒草甸生态系统定位站进行。本文研究了青藏高原地区分布面积广、草质优良,在畜牧业生产中有重要意义的矮嵩草草甸的生物量和它的能量分配关系,测定了地上,地下生物量和不同物候期主要植物类群的热值含量。研究结果表明:矮嵩草草甸生物量的季节动态较为明显,地上生物量随生长季节的水热条件和植物的生长发育阶段而变化,9月初地上生物量达到峰值(296.66g/m2),此后生物量逐渐减少,到枯黄前而停止;地下根系生物量在返青期较高,生长旺盛期最低,枯黄期最高,这同植物生长发育阶段的物质运转有关。矮嵩草草甸主要植物类群的热值以生长旺盛期最高,枯黄期次之,返青期较低;各类草的热值,以莎草类最高,禾草类次之,杂类草最低。矮嵩草草甸总初级生产量为909.49g/m2·年,其中地上为296.66g/m2·年,地下为596.67g/m2·年,枯枝落叶为16.16g/m2·年。群落在不同生长期所固定的太阳能数值不一,以枯黄前所固定的太阳能为最多,生长期整个群落的光能利用率为0.295%。  相似文献   

6.
 对青海海北地区高山草甸主要植物群落小嵩草(Kobresia pygmaea)草甸、矮嵩草(K.humilis)草甸、藏嵩草(K.tibetica)沼泽化草甸地上生物量动态和能量分配的研究结果表明,不同植物群落年地上净生产量及其年际动态和主要植物类群生物量季节动态具明显的差异,其生物量季节动态可由如下模型表示: Wi=Ki/(1+exp(Ai-Bit)) 植物群落地上、地下生物量的垂直分布呈典型的金字塔和倒金字塔模式。小嵩草草甸、矮嵩草草甸和藏嵩草沼泽化草甸的地上净生产量依次为368.4g·m-2·a-1、418.5g·m-2·a-1和518.4g·m-2·a-1,所固定的太阳能值依次为6655.16kJ·m-2·a-1、7610.09kJ·m-2·a-1、9488.77kJ·m-2·a-1。光能利用率分别为0.1097%、0.1256%、0.1568%。  相似文献   

7.
对青海海北地区高山草甸主要植物群落小嵩草草甸,矮嵩草草甸,藏嵩草沼经草甸地下生物量动态和能量分配的研究结果表明,不同植物群落年地上净生产量及其年示动态和主要植物类群生物量季节动态具有明显的差异,其生物量季节动态可由如下模型表示:Wi=Ki(1+exp(Ai-Bit)植物群落地上,地下生物量的垂直分布呈典型的金字塔和倒金字塔模式。  相似文献   

8.
人类活动对青藏高原高寒矮嵩草草甸碳过程的影响   总被引:2,自引:0,他引:2  
随着人类活动干扰(放牧)的增加,青藏高原高寒嵩草甸的退化演替过程依次为禾草-矮嵩草群落、矮嵩草群落、小嵩草群落和杂类草-黑土滩4个阶。其中小嵩草群落又可划分为草毡表层加厚、开裂与塌陷3个子阶段。采用时空转换的方法,研究了人类活动对青藏高原高寒矮嵩草草甸碳过程的影响。结果表明,随着人类干扰强度的增加,植物群落地上部分有机碳储量逐渐降低,由禾草-矮嵩草群落的(134.7±17.3)gC/m2逐渐降低到杂类草-黑土滩次生裸地(18.96±6.18)gC·m-2。土壤、植物地下部分有机碳贮量呈单峰曲线变化,草毡表层开裂子阶段最高,分别为(49.7±0.83)gC·kg-1和(3596.7±179.8)gC·m-2。;杂类草-黑土滩阶段最低,分别为(19.2±1.13)gC·kg-1和(121.6±6.1)gC·m-2。受植物地下部贮碳的影响,土壤-植被系统呈现逐渐降低的变化特征。随人类活动干扰的加强,高寒嵩草草地植物有机碳地下/地上分配比发生巨大改变,草地草毡表层厚度不高于4.3cm是保证草地生产与生态服功能双赢的重要指标。  相似文献   

9.
杨军  刘秋蓉  王向涛 《应用生态学报》2020,31(12):4067-4072
选取西藏自治区拉萨市当雄县4块不同退化程度的高山嵩草高寒草甸,采用空间序列代替时间演替的方法,研究不同退化阶段高寒草甸的土壤理化性质和植物群落特征以及二者之间的相关关系。结果表明: 不同退化阶段高寒草甸的土壤有机碳、全氮、速效磷、速效钾、铵态氮、硝态氮和含水量均随土壤退化程度加剧呈降低的趋势,而pH值呈现升高的趋势。中度退化草甸的植物群落高度、丰富度指数、多样性指数、均匀度指数最大。群落盖度、总生物量均为未退化草甸最大、重度退化草甸最小。随着草甸退化程度加剧,莎草科生物量及比例下降,豆科和杂类草生物量及比例增加,禾本科生物量及比例先增加后减小;草甸植物群落地上生物量与土壤有机碳、全氮、全磷含量和土壤含水量呈显著正相关,与土壤pH值呈显著负相关。随着草甸植被的退化,土壤退化加重,最终表现为草地生产力显著下降。  相似文献   

10.
宗宁  石培礼 《生态学报》2020,40(12):4000-4010
大气氮沉降增加被认为是目前重要的环境问题,会引起生物多样性的丧失和生态系统稳定性的降低。但作为草地改良的管理措施,养分添加被广泛应用于退化草地的恢复。但由于不同类型草地所处气候与群落组成的差异,对氮输入的响应可能不同。通过在藏北高原高寒草甸与高寒草甸草原设定长期氮添加梯度试验(对照, 25, 50, 100, 200 kg N hm-2 a-1),来探讨氮输入对生物多样性与生产的影响,并估算不同类型高寒草地的氮饱和阈值。施氮对高寒草甸物种多样性指数无影响,而随着施氮量的提高高寒草甸草原植物物种数和多样性指数均逐渐降低。开始施肥前两年,随着施氮量提高高寒草甸地上生物量呈现逐渐增加趋势,随着施肥时间的延长地上生物量呈现先增加后降低的趋势。在高寒草甸草原随着施氮量提高地上生物量均呈现先增加后降低的趋势。随着施氮量提高,开始施氮前三年高寒草甸禾草植物地上生物量逐渐提高;随着施氮时间的延长,禾草和豆科植物地上生物量呈现先增加后降低的趋势。高寒草甸莎草植物地上生物量由施氮开始时的逐渐增加转变为先增加后降低趋势,最后变为逐渐降低的趋势,这说明施氮不利于莎草...  相似文献   

11.
受气候暖干化和旅游干扰等因素影响,滇西北高寒草甸出现了明显的退化趋势。为探究滇西北高寒草甸退化过程中植物地上形态和生产力的变化规律,在香格里拉市依据游径宽度确定了3个草甸退化梯度:一级退化(R1),二级退化(R2)和对照(CK),并于2018年7月进行野外调查,获取禾本科、莎草科和杂类草3个功能群植物的株高、开展度、叶长、叶宽、叶片长宽比等地上形态指标及植株地上生物量数据,构建各功能群植物生存状态指数(Vegetation living state, VLS)。结果表明:1)禾本科植物的植株高度、植株开展度、叶片长度和叶片长宽比随退化程度增加而减小。莎草科植物的植株高度、叶片长度和叶片长宽比随退化程度增加而减小。杂类草植物的所有的地上形态指标均随退化程度增加而减小;2)随退化程度增加,3个功能群植物的地上生物量均显著下降(P<0.05);3)随退化程度增加,禾本科、莎草科和杂类草植物的VLS均减小。退化梯度上3个功能群植物的VLS排序也发生了变化:CK样地中植物VLS的排序为杂类草>莎草科>禾本科;R1和R2样地中,莎草科植物的VLS显著高于禾本科和杂类草,但禾本科和...  相似文献   

12.
为了揭示退化高寒草甸逆向转变的驱动因子,通过野外调查和室内分析相结合的方法探究了黄河源不同修复措施(施有机肥F、免耕补播N、施有机肥+免耕补播FN)处理高寒草甸植物群落特征、土壤理化性质和两者相关性的变化规律,阐明不同修复措施对黄河源退化高寒草甸植物群落与土壤养分的影响。结果表明:免耕补播显著增加草甸物种丰富度指数(P<0.05);施有机肥+免耕补播显著增加草甸植物盖度、总生物量、Shannon Wiener多样性指数和Pielous均匀度指数(P<0.05)。不同人工修复后草甸植物功能群地上、地下生物量变化趋势基本一致(除豆科)。和对照相比,莎草科,杂类草地上和地下生物量含量在N、FN处理分别降低83.04%、73.86%、30.43%、92.37%和96.51%、84.09%、85.68%、95.36%;禾本科地上和地下生物量含量在F、N和FN处理分别增加7.29%、23.45%、17.93%和6.04%、4.03%、10.52%;豆科地上生物量含量基本保持不变,地下生物量含量在F、N和FN处理分别降低24.43%、82.19%和42.61%。F显著增加土壤有机碳含量(...  相似文献   

13.
We conducted a field experiment in two alpine meadows to investigate the short-term effects of nitrogen enrichment and plant litter biomass on plant species richness, the percent cover of functional groups, soil microbial biomass, and enzyme activity in two alpine meadow communities. The addition of nitrogen fertilizer to experimental plots over two growing seasons increased plant production, as indicated by increases in both the living plant biomass and litter biomass in the Kobresia humilis meadow community. In contrast, fertilization had no significant effect on the amounts of living biomass and litter biomass in the K. tibetica meadow. The litter treatment results indicate that litter removal significantly increased the living biomass and decreased the litter biomass in the K. humilis meadow; however, litter-removal and litter-intact treatments had no impact on the amounts of living biomass and litter biomass in the K. tibetica meadow. Litter production depended on the degree of grass cover and was also influenced by nitrogen enrichment. The increase in plant biomass reflects a strong positive effect of nitrogen enrichment and litter removal on grasses in the K. humilis meadow. Neither fertilization nor litter removal had any impact on the grass biomass in the K. tibetica meadow. Sedge biomass was not significantly affected by either nutrient enrichment or litter removal in either alpine meadow community. The plant species richness decreased in the K. humilis meadow following nitrogen addition. In the K. humilis meadow, microbial biomass C increased significantly in response to the nitrogen enrichment and litter removal treatments. Enzyme activities differed depending on the enzyme and the different alpine meadow communities; in general, enzyme activities were higher in the upper soil layers (0–10 cm and 10–20 cm) than in the lower soil layers (20–40 cm). The amounts of living plant biomass and plant litter biomass in response to the different treatments of the two alpine meadow communities affected the soil microbial biomass C, soil organic C, and soil fertility. These results suggest that the original soil conditions, plant community composition, and community productivity are very important in regulating plant community productivity and microbial biomass and activity.  相似文献   

14.
Alpine Kobresia meadows are major vegetation types on the Qinghai-Tibetan Plateau. There is growing concern over their relationships among biodiversity, productivity and environments. Despite the importance of species composition, species richness, the type of different growth forms, and plant biomass structure for Kobresia meadow ecosystems, few studies have been focused on the relationship between biomass and environmental gradient in the Kobresia meadow plant communities, particularly in relation to soil moisture and edaphic gradients. We measured the plant species composition, herbaceous litter, aboveground and belowground biomass in three Kobresia meadow plant communities in Haibei Alpine Meadow Ecosystem Research Station from 2001 to 2004. Community differences in plant species composition were reflected in biomass distribution. The total biomass showed a decrease from 13196.96±719.69 g/m2 in the sedge-dominated K. tibetica swamp to 2869.58±147.52 g/m2 in the forb and sedge dominated K. pygmaea meadow, and to 2153.08±141.95 g/m2 in the forbs and grasses dominated K. humilis along with the increase of altitude. The vertical distribution of belowground biomass is distinct in the three meadow communities, and the belowground biomass at the depth of 0-10 cm in K. tibetica swamp meadow was significantly higher than that in K. humilis and K. pygmaea meadows (P<0.01). The herbaceous litter in K. tibetica swamp was significantly higher than those in K. pygnaeca and K. humilis meadows. The effects of plant litter are enhanced when ground water and soil moisture levels are raised. The relative importance of litter and vegetation may vary with soil water availability. In the K. tibetica swamp, total biomass was negatively correlated to species richness (P<0.05); aboveground biomass was positively correlated to soil organic matter, soil moisture, and plant cover (P<0.05); belowground biomass was positively correlated with soil moisture (P<0.05). However, in the K. pygnaeca and K. humilis meadow communities, aboveground biomass was positively correlated to soil organic matter and soil total nitrogen (P<0.05). This suggests that the distribution of biomass coincided with soil moisture and edaphic gradient in alpine meadows.  相似文献   

15.
该研究采用空间分布代替时间演替的方法,选取青藏高原青海省果洛藏族自治州玛沁县境内典型的未退化草甸和退化草甸样地,分别设置3个5m×5m的样方,于6至9月下旬上午进行植株和土壤采样,测定矮嵩草生理指标,探讨高寒草甸退化所导致的环境变化对自然生长状态下矮嵩草生理特性的影响机制。结果表明:(1)与未退化草甸相比,退化导致土壤表层速效氮含量极显著降低,而速效磷和速效钾含量显著升高;全氮、全磷和全钾的含量总体上表现为未退化草甸低于退化草甸。(2)与未退化草甸相比,退化草甸矮嵩草叶中超氧化物歧化酶(SOD)活性在生长前期高而后期低(低4%),谷胱甘肽(GSH)含量在两个样地的变化趋势基本一致。(3)退化草甸矮嵩草叶片可溶糖和可溶蛋白含量在生长后期分别比未退化草甸降低17.6%和34.9%,且9月份降低达极显著水平。(4)生长中期以后,退化草甸矮嵩草叶片叶绿素a、b含量比未退化草甸的下降速度快、含量分别低18.84%和20.68%。(5)退化草甸矮嵩草叶片超氧阴离子自由基(O_2~)的产生速率在9月份极显著高于未退化草甸。研究表明,在非生物胁迫下未退化草甸的矮嵩草具有更高的ROS清除能力和渗透调节能力,退化导致的环境变化可能是矮嵩草在生长后期抗氧化能力降低、衰老早的内在原因。  相似文献   

16.
Alpine Kobresia meadows are major vegetation types on the Qinghai-Tibetan Plateau. There is growing concern over their relationships among biodiversity, productivity and environments. Despite the im-portance of species composition, species richness, the type of different growth forms, and plant bio-mass structure for Kobresia meadow ecosystems, few studies have been focused on the relationship between biomass and environmental gradient in the Kobresia meadow plant communities, particularly in relation to soil moisture and edaphic gradients. We measured the plant species composition, her-baceous litter, aboveground and belowground biomass in three Kobresia meadow plant communities in Haibei Alpine Meadow Ecosystem Research Station from 2001 to 2004. Community differences in plant species composition were reflected in biomass distribution. The total biomass showed a de-crease from 13196.96±719.69 g/m2 in the sedge-dominated K. tibetica swamp to 2869.58±147.52 g/m2 in the forb and sedge dominated K. pygmaea meadow, and to 2153.08±141.95 g/m2 in the forbs and grasses dominated K. humilis along with the increase of altitude. The vertical distribution of below-ground biomass is distinct in the three meadow communities, and the belowground biomass at the depth of 0-10 cm in K. tibetica swamp meadow was significantly higher than that in K. humilis and K. pygmaea meadows (P<0.01). The herbaceous litter in K. tibetica swamp was significantly higher than those in K. pygnaeca and K. humilis meadows. The effects of plant litter are enhanced when ground water and soil moisture levels are raised. The relative importance of litter and vegetation may vary with soil water availability. In the K. tibetica swamp, total biomass was negatively correlated to species richness (P<0.05); aboveground biomass was positively correlated to soil organic matter, soil moisture, and plant cover (P<0.05); belowground biomass was positively correlated with soil moisture (P<0.05). However, in the K. pygnaeca and K. humilis meadow communities, aboveground biomass was posi-tively correlated to soil organic matter and soil total nitrogen (P<0.05). This suggests that the distribu-tion of biomass coincided with soil moisture and edaphic gradient in alpine meadows.  相似文献   

17.
张世雄  杨晓艳  温静  徐满厚 《生态学报》2018,38(18):6685-6693
在山西吕梁山系按照纬度从北向南依次选取马伦草原、荷叶坪、云顶山作为研究区,于2015、2016、2017年7月下旬进行亚高山草甸植被群落多样性调查,研究吕梁山亚高山草甸物种多样性不同年份、不同纬度的时空变化格局。结果表明:(1)吕梁山亚高山草甸群落中矮嵩草(Kobresia humilis)和珠芽蓼(Polygonum viviparum)、线叶嵩草(Kobresia capillifolia)和珠芽蓼、车前草(Plantago asiatica)和披碱草(Elymus dahuricus)分别为马伦草原、荷叶坪、云顶山的优势种,不同山地植物优势种和次优势种均以菊科(Asteraceae)、蔷薇科(Rosaceae)、莎草科(Cyperaceae)、禾本科(Gramineae)植物为主。(2)吕梁山亚高山草甸物种多样性在不同年份分布较为稳定,Pielou指数在连续3年内均无较大变化; Shannon-Wiener指数、Simpson指数和Patrick指数在2016年最高,同时该年份的降水天数也是最多,表明吕梁山亚高山草甸物种多样性在时间上呈现出受降水条件影响较大的变化格局。(3)吕梁山偏南部的云顶山多样性指数高于偏北部的马伦草原和荷叶坪,表明吕梁山亚高山草甸物种多样性在空间上表现出由北向南逐渐升高的变化格局。因此,吕梁山亚高山草甸物种多样性在时空上呈现出受降水条件影响较大,且由北向南逐渐升高的变化格局,降水条件和纬度梯度对该山地亚高山草甸物种多样性的时空变化格局产生了重要影响。  相似文献   

18.
全球氮沉降速率的急剧增加已显著地改变了生态系统的生产力及稳定性,特别是在受N限制较严重的亚高山草地生态系统。虽然氮沉降增加对草地生产力和植物多样性影响的研究报道已经很多,但是氮素沉降的生态系效应因气候区、草地系统类型、加氮水平、氮肥类型和试验时间长短等不同而差别很大。为了评估氮沉降增加对亚高山草地植物物种多样性和生产力的影响,通过在祁连山中部亚高山草地设置不同氮添加水平(0、2、5、10、15、25 g N m-2 a-1和50 g N m-2 a-1)的短期氮沉降增加模拟试验,探讨了生产力和物种多样性对不同水平氮添加的响应。结果显示:氮添加增加了禾本科(垂穗披碱草、赖草和草地早熟禾)和莎草科(矮嵩草)的地上生产力及其在群落生产力中所占的比例,主要表现在氮添加增加了禾本科和莎草科的株高和株数,降低了其他科(鹅绒委陵菜和葛缕子)的株高和株数;与生产力相比,植物多样性对氮添加的响应较慢,总体随着氮添加量的增加呈下降趋势但未达到显著水平;植物多样性与生产力呈显著的负相关关系。研究结果表明氮添加有助于提高禾本科和莎草科的生产力,进而提高群落生产力,但其他科的植物会被逐渐替代,导致群落植物物种多样性降低。研究结果可为我国亚高山草地的持续性管理提供一定的理论基础。  相似文献   

19.
黄土丘陵区退耕还林(草)工程已实施20年,了解草地现状对该区草地生态系统保护与恢复调控措施选择具有重要意义。以安塞纸坊沟小流域内22个草地群落为研究对象,基于Ward聚类和非度量多维度排序(NMDS)方法,对草地类型、结构及其影响因素进行了分析。结果表明:(1)流域内草地共出现23科83种植物,其中禾本科、豆科和菊科物种重要值占比达75%—85%。草地可划分为狗尾草群丛、茵陈蒿群丛、甘草群丛、铁杆蒿群丛和白羊草群丛5类群丛。群丛间结构存在显著差异,狗尾草群丛盖度、地上生物量(AGB)、地下生物量(BGB)和根冠比均显著最低,但Shannon-Wiener指数和Pielou优势度指数均显著高于白羊草和铁杆蒿群丛。茵陈蒿、甘草与铁杆蒿群丛间AGB、BGB及多样性指数无显著差异。(2)功能群对群落结构产生显著影响,豆科矮草对AGB和BGB产生显著正效应,禾本科高草对BGB产生显著正效应,而菊科矮草对群落盖度与BGB产生显著负效应。(3)土壤有机碳(SOC)、全氮(TN)和全磷(TP)含量偏低(分别为6.21,0.82、0.53 g/kg),其中SOC和TN含量显著影响群丛物种组成、功能群和结...  相似文献   

20.
Nitrous oxide (N2O) emission was measured in a Kobresia humilis meadow and a Potentilla fruticosa meadow in the Qinghai–Tibet Plateau from June 2003 to July 2006. Five treatments were setup in the two alpine meadows. Two bare soil treatments were setup in the K. humilis meadow (BSK) and in the P. fruticosa meadow (BSP) by removing the above- and belowground plant biomass. Three plant community treatments were setup with one in the K. humilis meadow (herbaceous community in the K. humilis meadow-HCK) and two in the P. fruticosa meadow (herbaceous community in the P. fruticosa meadow-HCP, and shrub community in the P. fruticosa meadow-SCP). Nitrous oxide emission from BSP was estimated to be 38.1?±?3.6 μg m?2 h?1, significantly higher than from BSK (30.2?±?2.8 μg m?2 h?1) during the whole experiment period. Rates from the two herbaceous blocks (HCK and HCP) were close to 39.5 μg m?2 h?1 during the whole experimental period whereas shrub community (SCP) showed significant high emission rates of N2O. Annual rate of N2O emission was estimated to be 356.7?±?8.3 and 295.0?±?11.6 mg m?2 year?1 from the alpine P. fruticosa meadow and from the alpine K. humilis meadow, respectively. These results suggest that alpine meadows in the Qinghai–Tibetan Plateau are an important source of N2O, contributing an average of 0.3 Tg N2O year?1. We concluded that N2O emission will decrease, due to a predicted vegetation shift from shrubs to grasses imposed by overgrazing.  相似文献   

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