植物生态学报 ›› 2014, Vol. 38 ›› Issue (2): 188-200.DOI: 10.3724/SP.J.1258.2014.00017
所属专题: 生物多样性
杨婧1,2, 褚鹏飞2, 陈迪马2, 王明玖1,*(), 白永飞2
收稿日期:
2013-09-25
接受日期:
2014-01-20
出版日期:
2014-09-25
发布日期:
2014-02-12
通讯作者:
王明玖
作者简介:
*(E-mail: wangmj_0540@163.com)基金资助:
YANG Jing1,2, CHU Peng-Fei2, CHEN Di-Ma2, WANG Ming-Jiu1,*(), BAI Yong-Fei2
Received:
2013-09-25
Accepted:
2014-01-20
Online:
2014-09-25
Published:
2014-02-12
Contact:
WANG Ming-Jiu
摘要:
人类活动干扰对生物多样性和生态系统功能的影响机制是近年来生态学研究的一个热点问题。该研究以内蒙古锡林郭勒草原生态系统国家野外科学观测研究站的大型放牧控制实验为平台, 系统地研究了不同降水(丰水年份和平水年份)和地形(平地和坡地)条件下, 放牧对典型草原不同空间尺度植物多样性(α、β和γ多样性)的影响。研究发现: (1)降水和地形条件及其交互效应对植物多样性有明显的影响, 丰水年份的α、β和γ多样性均高于平水年份; 降水和地形条件存在交互效应, 平水年份坡地系统的α多样性高于平地系统, 丰水年份平地系统的α和γ多样性高于坡地系统, 而地形对β多样性并没有显著影响; (2)随着放牧强度的增加, 平地和坡地的α多样性均呈逐渐下降的趋势, 不同植物群落成员型(优势种、常见种和稀有种)对放牧的响应及其对α多样性的贡献不同, 其中稀有种对α多样性的贡献最大, 常见种次之, 优势种最小; (3) γ多样性对放牧强度的响应受地形条件的影响, 随着放牧强度的增加, 平地γ多样性呈逐渐下降的趋势, 而坡地γ多样性呈现先减少后增加的趋势; (4)平地β多样性随放牧强度的增加而逐渐减小, 而坡地并没有明显的规律。该研究表明, 植物多样性对放牧的响应受降水和地形因素的调控, 平地对放牧的缓冲能力强于坡地, 干旱会加剧过度放牧对生物多样性的影响; 稀有种对于草地生态系统的多样性维持具有重要意义。因此, 在确定合理的放牧强度时, 应结合降水和地形条件。在平水年份需加强平地系统植物多样性的保护, 而在丰水年份需加强坡地系统植物多样性的保护, 从而实现草地资源的可持续性利用。
杨婧, 褚鹏飞, 陈迪马, 王明玖, 白永飞. 放牧对内蒙古典型草原α、β和γ多样性的影响机制. 植物生态学报, 2014, 38(2): 188-200. DOI: 10.3724/SP.J.1258.2014.00017
YANG Jing, CHU Peng-Fei, CHEN Di-Ma, WANG Ming-Jiu, BAI Yong-Fei. Mechanisms underlying the impacts of grazing on plant α, β and γ diversity in a typical steppe of the Inner Mongolia grassland. Chinese Journal of Plant Ecology, 2014, 38(2): 188-200. DOI: 10.3724/SP.J.1258.2014.00017
物种分类 Classification of species | 物种名称 Species name | 物种拉丁文名称 Latin name of species |
---|---|---|
优势种 Dominant species | 羊草 | Leymus chinensis |
大针茅 | Stipa grandis | |
常见种 Common species | 冰草 | Agropyron cristatum |
糙隐子草 | Cleistogenes squarrosa | |
黄囊薹草 | Carex korshinskii | |
羽茅 | Achnatherum sibiricum | |
阿尔泰 ![]() | Koeleria macrantha | |
稀有种 Rare species | 细叶韭 | Allium tenuissimum |
细叶鸢尾 | Iris tenuifolia | |
灰绿藜 | Chenopodium glaucum | |
轴藜 | Axyris amaranthoides | |
刺藜 | Chenopodium aristatum | |
瓣蕊唐松草 | Thalictrum petaloideum | |
早熟禾 | Poa annua | |
野韭 | Allium ramosum | |
块根糙苏 | Phlomis tuberosa | |
猪毛菜 | Salsola collina | |
长柱沙参 | Adenophora stenanthina | |
扁蓿豆 | Melilotoides ruthenica | |
二裂委陵菜 | Potentilla bifurca | |
星毛委陵菜 | Potentilla acaulis | |
苦荬菜 | Ixeris denticulate | |
反枝苋 | Amaranthus retroflexus | |
阿尔泰狗娃花 | Aster altaicus | |
菊叶委陵菜 | Potentilla tanacetifolia | |
轮叶委陵菜 | Potentilla verticillaris | |
木地肤 | Kochia prostrata | |
羊茅 | Festuca ovina | |
山韭 | Allium senescens | |
矮韭 | Allium anisopodium | |
大籽蒿 | Artemisia sieversiana | |
野亚麻 | Linum stelleroides | |
风毛菊 | Saussurea japonica | |
变蒿 | Artemisia pubescens | |
尖头叶藜 | Chenopodium acuminatum | |
飞廉 | Carduus nutans | |
北点地梅 | Androsace septentrionalis | |
冷蒿 | Artemisia frigida | |
蒙古蒿 | Artemisia mongolica | |
黄花葱 | Allium condensatum | |
鹤虱 | Lappula myosotis | |
翠雀 | Delphinium grandiflorum | |
马蔺 | Iris lactea var. chinensis | |
线叶花旗杆 | Dontostemon integrifolius | |
伏毛山莓草 | Sibbaldia adpressa |
表1 优势种、常见种、稀有种的划分
Table 1 Classification of the dominant, common and rare species
物种分类 Classification of species | 物种名称 Species name | 物种拉丁文名称 Latin name of species |
---|---|---|
优势种 Dominant species | 羊草 | Leymus chinensis |
大针茅 | Stipa grandis | |
常见种 Common species | 冰草 | Agropyron cristatum |
糙隐子草 | Cleistogenes squarrosa | |
黄囊薹草 | Carex korshinskii | |
羽茅 | Achnatherum sibiricum | |
阿尔泰 ![]() | Koeleria macrantha | |
稀有种 Rare species | 细叶韭 | Allium tenuissimum |
细叶鸢尾 | Iris tenuifolia | |
灰绿藜 | Chenopodium glaucum | |
轴藜 | Axyris amaranthoides | |
刺藜 | Chenopodium aristatum | |
瓣蕊唐松草 | Thalictrum petaloideum | |
早熟禾 | Poa annua | |
野韭 | Allium ramosum | |
块根糙苏 | Phlomis tuberosa | |
猪毛菜 | Salsola collina | |
长柱沙参 | Adenophora stenanthina | |
扁蓿豆 | Melilotoides ruthenica | |
二裂委陵菜 | Potentilla bifurca | |
星毛委陵菜 | Potentilla acaulis | |
苦荬菜 | Ixeris denticulate | |
反枝苋 | Amaranthus retroflexus | |
阿尔泰狗娃花 | Aster altaicus | |
菊叶委陵菜 | Potentilla tanacetifolia | |
轮叶委陵菜 | Potentilla verticillaris | |
木地肤 | Kochia prostrata | |
羊茅 | Festuca ovina | |
山韭 | Allium senescens | |
矮韭 | Allium anisopodium | |
大籽蒿 | Artemisia sieversiana | |
野亚麻 | Linum stelleroides | |
风毛菊 | Saussurea japonica | |
变蒿 | Artemisia pubescens | |
尖头叶藜 | Chenopodium acuminatum | |
飞廉 | Carduus nutans | |
北点地梅 | Androsace septentrionalis | |
冷蒿 | Artemisia frigida | |
蒙古蒿 | Artemisia mongolica | |
黄花葱 | Allium condensatum | |
鹤虱 | Lappula myosotis | |
翠雀 | Delphinium grandiflorum | |
马蔺 | Iris lactea var. chinensis | |
线叶花旗杆 | Dontostemon integrifolius | |
伏毛山莓草 | Sibbaldia adpressa |
图2 2011和2012年两种地形下植物α (A, B; 平均值±标准误差)、γ (C, D)和β (E, F)多样性对放牧强度的响应。其中t值和p值表示用成对t检验的方法(paired-samples t-test)检验年份之间和地形之间多样性指数的差异(自由度=6)。*, p < 0.05; **, p < 0.01; NS, p > 0.05。
Fig. 2 The responses of α (A, B; mean ± SE), γ (C, D), and β diversity (E, F) to grazing intensity in two topographic systems in 2011 and 2012. The t-value and p-value indicate the statistic results by the paired-samples t-test in 2011 and 2012 (df = 6). *, p < 0.05; **, p < 0.01; NS, p > 0.05.
响应变量 Response variable | 主效应 Main effect | t值 t-value | p值 p-value |
---|---|---|---|
α多样性指数 α diversity index | 地形 Topography | 5.128 | <0.001 |
年份 Year | 6.524 | <0.001 | |
地形×年份 Topography × Year | -4.878 | <0.001 | |
γ多样性指数 γ diversity index | 地形 Topography | 4.782 | <0.001 |
年份 Year | 7.366 | <0.001 | |
地形×年份 Topography × Year | -2.705 | 0.019 | |
β多样性指数 β diversity index | 地形 Topography | -0.628 | 0.542 |
年份 Year | 2.260 | 0.043 | |
地形×年份 Topography × Year | 0.427 | 0.421 |
表2 地形和年份对α、β和γ多样性的影响
Table 2 Effects of topography and year on α, β, and γ diversity
响应变量 Response variable | 主效应 Main effect | t值 t-value | p值 p-value |
---|---|---|---|
α多样性指数 α diversity index | 地形 Topography | 5.128 | <0.001 |
年份 Year | 6.524 | <0.001 | |
地形×年份 Topography × Year | -4.878 | <0.001 | |
γ多样性指数 γ diversity index | 地形 Topography | 4.782 | <0.001 |
年份 Year | 7.366 | <0.001 | |
地形×年份 Topography × Year | -2.705 | 0.019 | |
β多样性指数 β diversity index | 地形 Topography | -0.628 | 0.542 |
年份 Year | 2.260 | 0.043 | |
地形×年份 Topography × Year | 0.427 | 0.421 |
图3 放牧强度对优势种(A, B)、常见种(C, D)和稀有种(E, F) α多样性的影响(平均值±标准误差)。优势种, 相对多度> 10%; 常见种, 1% <相对多度< 10%; 稀有种, 相对多度< 1%。其中t值和p值表示用成对t检验的方法(paired-samples t-test)计算年份之间和地形之间多样性指数的差异(自由度= 6)。*, p < 0.05; **, p < 0.01; NS, p > 0.05。
Fig. 3 Effects of grazing intensity on α diversity of dominant species (A, B), common species (C, D) and rare species (E, F) (mean ± SE). Dominant species, relative abundance (RAB) > 10%; common species, 1% < RAB < 10%; rare species, RAB < 1%. The t-value and p-value indicate the statistic results by the paired-samples t-test in 2011 and 2012 (df = 6). *, p < 0.05; **, p < 0.01; NS, p > 0.05.
年份 Year | 地形 Topography | 优势种 Dominant species | 常见种 Common species | 稀有种 Rare species |
---|---|---|---|---|
2011 | 平地 Flat | - | 17.55 | 82.45 |
坡地 Slope | 1.06 | 26.13 | 70.48 | |
2012 | 平地 Flat | 2.71 | 26.43 | 70.66 |
坡地 Slope | 1.94 | 31.95 | 65.04 |
表3 优势种、常见种和稀有种对α多样性的贡献(%)
Table 3 Contributions of dominant, common and rare species on α diversity (%)
年份 Year | 地形 Topography | 优势种 Dominant species | 常见种 Common species | 稀有种 Rare species |
---|---|---|---|---|
2011 | 平地 Flat | - | 17.55 | 82.45 |
坡地 Slope | 1.06 | 26.13 | 70.48 | |
2012 | 平地 Flat | 2.71 | 26.43 | 70.66 |
坡地 Slope | 1.94 | 31.95 | 65.04 |
图4 放牧强度对优势种(A, B, C, D)、常见种(E, F, G, H)和稀有种(I, J, K, L)频度的影响。
Fig. 4 Effects of grazing intensity on the frequency of dominant species (A, B, C, D), common species (E, F, G, H), and rare species (I, J, K, L).
[1] | Adler P, Raff D, Lauenroth W (2001). The effect of grazing on the spatial heterogeneity of vegetation. Oecologia, 128, 465-479. |
[2] | Amezaga IS, Mendarte SI, Albizu I, Besga G, Garbisu C, Onaindia M (2004). Grazing intensity, aspect, and slope effects on limestone grassland structure. Rangeland Ecology & Management, 57, 606-612. |
[3] | Asner GP, Elmore AJ, Olander LP, Martin RE, Harris AT (2004). Grazing systems, ecosystem responses, and global change. Annual Review of Environment and Resources, 29, 261-299. |
[4] | Austrheim G, Eriksson O (2001). Plant species diversity and grazing in the Scandinavian mountains―patterns and processes at different spatial scales. Ecography, 24, 683-695. |
[5] |
Bai YF, Han XG, Wu JG, Chen ZZ, Li LH (2004). Ecosystem stability and compensatory effects in the Inner Mongolia grassland. Nature, 431, 181-184.
URL PMID |
[6] | Bai YF, Wu JG, Clark CM, Naeem S, Pan QM, Huang JH, Zhang LX, Han XG (2010). Tradeoffs and thresholds in the effects of nitrogen addition on biodiversity and ecosystem functioning: evidence from Inner Mongolia grasslands. Global Change Biology, 16, 358-372. |
[7] | Bai YF, Wu JG, Clark CM, Pan QM, Zhang LX, Chen SP, Wang QB, Han XG (2012). Grazing alters ecosystem functioning and C:N:P stoichiometry of grasslands along a regional precipitation gradient. Journal of Applied Ecology, 49, 1204-1215. |
[8] | Bai YF, Xing XR, Xu ZX, Li DX (2000a). β-diversity of Stipa communities in Inner Mongolia Plateau. Chinese Journal of Applied Ecology, 11, 408-412. (in Chinese with English abstract) |
[ 白永飞, 邢雪荣, 许志信, 李德新 (2000a). 内蒙古高原针茅草原群落β-多样性研究. 应用生态学报, 11, 408-412.] | |
[9] | Bai YF, Xu ZX, Li DX (2000b). Study on α-diversity of four Stipa communities in Inner Mongolia Plateau. Biodiversity Science, 8, 353-360. (in Chinese with English abstract) |
[ 白永飞, 许志信, 李德新 (2000). 内蒙古高原针茅草原群落α-多样性研究. 生物多样性, 8, 353-360.] | |
[10] | Bardgett RD, Wardle DA (2003). Herbivore-mediated linkages between aboveground and belowground communities. Ecology, 84, 2258-2268. |
[11] | Bennie J, Hill MO, Baxter R, Huntley B (2006). Influence of slope and aspect on long-term vegetation change in British chalk grasslands. Journal of Ecology, 94, 355-368. |
[12] | Chang XL, Zhao AF (2000). Responses of species diversity to precipitation change on fixed-dunes of the Naiman Banner region. Acta Phytoecologica Sinica, 24, 147-151. (in Chinese with English abstract) |
[ 常学礼, 赵爱芬 (2000). 科尔沁沙地固定沙丘植被物种多样性对降水变化的响应. 植物生态学报, 24, 147-151.] | |
[13] | Chen DM, Zheng SX, Shan YM, Taube F, Bai YF (2013). Vertebrate herbivore-induced changes in plants and soils: linkages to ecosystem functioning in a semi-arid steppe. Functional Ecology, 27, 273-281. |
[14] | Connell JH (1978). Diversity in tropical rain forests and coral reefs. Science, 199, 1302-1310. |
[15] | Crist TO, Veech JA (2006). Additive partitioning of rarefaction curves and species-area relationships: unifying α-, β- and γ-diversity with sample size and habitat area. Ecology Letters, 9, 923-932. |
[16] | Department of Animal Husbandry and Veterinary, the General Station of Animal Husbandry and Veterinary, the Ministry of Agriculture, P. R. China (1996). Rangeland Resources of China. Chinese Science and Technology Press, Beijing. (in Chinese) |
[ 中华人民共和国农业部畜牧兽医司, 全国畜牧兽医总站 (1996). 中国草地资源. 中国科学技术出版社, 北京.] | |
[17] | Gibson DJ (2009). Grasses and Grassland Ecology. Oxford University Press, Oxford, UK. |
[18] | Grime JP (1973). Competitive exclusion in herbaceous vegetation. Nature, 242, 344-347. |
[19] | Hobbs RJ, Huenneke LF (1992). Disturbance, diversity, and invasion: implications for conservation. Conservation Biology, 6, 324-337. |
[20] | Kareiva P (1996). Diversity and sustainability on the prairie. Nature, 379, 673-674. |
[21] | Kraft NJB, Comita LS, Chase JM, Sanders NJ, Swenson NG, Crist TO, Stegen JC, Vellend M, Boyle B, Anderson MJ, Cornell HV, Davies KF, Freestone AL, Inouye BD, Harrison SP, Myers JA (2011). Disentangling the drivers of β-diversity along latitudinal and elevational gradients. Science, 333, 1755-1758. |
[22] | Kunin WE, Gaston KJ (1997). The Biology of Rarity: Causes and Consequences of Rare-Common Differences. Springer, New York. |
[23] | Lande R (1996). Statistics and partitioning of species diversity, and similarity among multiple communities. Oikos, 76, 5-13 |
[24] | Lauenroth WK, Dodd JL, Sims PL (1978). The effects of water-induced and nitrogen-induced stresses on plant community structure in a semi-arid grassland. Oecologia, 36, 211-222. |
[25] | Liu DW, Zhang FC, Wang MJ, Cui GW (2012). The influence of grazing intensity on community characteristics and diversity of Deyeuxia angustifolia meadow in Sanjiang Plain. Chinese Journal of Grassland, 34(2), 81-86. (in Chinese with English abstract) |
[ 刘冬伟, 张风承, 王明君, 崔国文 (2012). 放牧强度对三江平原小叶章草甸群落特征及多样性的影响. 中国草地学报, 34(2), 81-86.] | |
[26] | Liu ZG, Li ZQ (2006). Plant biodiversity of Aretemisia frigida communities on degraded grasslands under different grazing intensities after thirteen-year enclosure. Acta Ecologica Sinica, 26, 475-482. (in Chinese with English abstract) |
[ 刘振国, 李镇清 (2006). 退化草原冷蒿群落13年不同放牧强度后的植物多样性. 生态学报, 26, 475-482.] | |
[27] | Lyons KG, Brigham CA, Traut BH, Schwartz MW (2005). Rare species and ecosystem functioning. Conservation Biology, 19, 1019-1024 |
[28] | McNaughton SJ (1985). Ecology of a grazing ecosystem: the Serengeti. Ecological Monographs, 55, 259-294. |
[29] | Meng XH, Li XL, Xin XP, Zhou YZ (2009). Study on community characteristics and α diversity under different grazing intensity on Leymus chinensis (Trin.) Tzvel. meadow steppe of Hulunbeier. Acta Agrectir Sinica, 17, 239-244. (in Chinese with English abstract) |
[ 蒙旭辉, 李向林, 辛晓平, 周尧治 (2009). 不同放牧强度下羊草草甸草原群落特征及多样性分析. 草地学报, 17, 239-244.] | |
[30] | Milchunas D, Noy-Meir I (2002). Grazing refuges, external avoidance of herbivory and plant diversity. Oikos, 99, 113-130. |
[31] | Milchunas DG, Lauenroth WK (1993). Quantitative effects of grazing on vegetation and soils over a global range of environments. Ecological Monographs, 63, 327-366. |
[32] | Milchunas DG, Sala OE, Lauenroth WK (1988). A generalized model of the effects of grazing by large herbivores on grassland community structure. The American Naturalist, 132, 87-106 |
[33] |
Mouillot D, Bellwood DR, Baraloto C, Chave J, Galzin R, Harmelin-Vivien M, Kulbicki M, Lavergne S, Lavorel S, Mouquet N (2013). Rare species support vulnerable functions in high-diversity ecosystems. PLoS Biology, 11, e1001569.
DOI URL PMID |
[34] | Olff H, Ritchie ME (1998). Effects of herbivores on grassland plant diversity. Trends in Ecology & Evolution, 13, 261- 265. |
[35] | Pykälä J, Luoto M, Heikkinen RK, Kontula T (2005). Plant species richness and persistence of rare plants in abandoned semi-natural grasslands in northern Europe. Basic and Applied Ecology, 6, 25-33. |
[36] | Reynolds JF, Stafford Smith D (2002). Global Desertification: Do Humans Cause Deserts? Dahlem University Press. Berlin. 88. |
[37] | Sasaki T, Okayasu T, Jamsran U, Takeuchi K (2008). Threshold changes in vegetation along a grazing gradient in Mongolian rangelands. Journal of Ecology, 96, 145-154. |
[38] | Schönbach P, Wan HW, Gierus M, Bai YF, Müller K, Lin LJ, Susenbeth A, Taube F (2011). Grassland responses to grazing: effects of grazing intensity and management system in an Inner Mongolian steppe ecosystem. Plant and Soil, 340, 103-115. |
[39] | Shan YM, Chen DM, Guan XX, Zheng SX, Chen HJ, Wang MJ, Bai YF (2011). Seasonally dependent impacts of grazing on soil nitrogen mineralization and linkages to ecosystem functioning in Inner Mongolia grassland. Soil Biology and Biochemistry, 43, 1943-1954. |
[40] | Tang ZY, Fang JY (2004). A review on the elevational patterns of plant species diversity. Biodiversity Science, 12, 20-28. (in Chinese with English abstract) |
[ 唐志尧, 方精云 (2004). 植物物种多样性的垂直分布格局. 生物多样性, 12, 20-28.] | |
[41] | Tilman D, Downing JA (1994). Biodiversity and stability in grasslands. Nature, 367, 363-365. |
[42] | Tilman D, Haddi A El (1992). Drought and biodiversity in grasslands. Oecologia, 89, 257-264. |
[43] | Tilman D, Knops J, Wedin D, Reich P, Ritchie M, Siemann E (1997). The influence of functional diversity and composition on ecosystem processes. Science, 277, 1300-1302. |
[44] | Wan HW, Bai YF, Schonbach P, Gierus M, Taube F (2011). Effects of grazing management system on plant community structure and functioning in a semiarid steppe: scaling from species to community. Plant and Soil, 340, 215-226. |
[45] | Wang CT, Wang QJ, Shen ZX, Jing ZC, Wang WY (2003). Response of biodiversity and productivity to simulated rainfall on an alpine Kobresia humilis meadow. Acta Botanica Boreali-Occidentalia Sinica, 23, 1713-1718. (in Chinese with English abstract) |
[ 王长庭, 王启基, 沈振西, 景增春, 王文颖 (2003). 高寒矮嵩草草甸群落植物多样性和初级生产力对模拟降水的响应. 西北植物学报, 23, 1713-1718.] | |
[46] | Wang GJ, Wang SP, Hao YB, Cai XC (2005). Effect of grazing on the plant functional group diversity and community biomass and their relationship along a precipitation gradient in Inner Mongolia Steppe. Acta Ecologica Sinica, 25, 1649-1656. (in Chinese with English abstract) |
[ 王国杰, 汪诗平, 郝彦宾, 蔡学彩 (2005). 水分梯度上放牧对内蒙古主要草原群落功能群多样性与生产力关系的影响. 生态学报, 25, 1649-1656.] | |
[47] | West NE (1993). Biodiversity of rangelands. Journal of Range Management, 46, 2-13. |
[48] | White RP, Murray S, Rohweder M (2000). Pilot Analysis of Global Ecosystems: Grassland Ecosystems. World Resources Institute, Washington DC. |
[49] | Whittaker RH (1960). Vegetation of the Siskiyou Mountains, Oregon and California. Ecological Monographs, 30, 279-338 |
[50] | Whittaker RJ, Willis KJ, Field R (2001). Scale and species richness: towards a general, hierarchical theory of species diversity. Journal of Biogeography, 28, 453-470 |
[51] | Wu JS, Li XJ, Shen ZX, Zhang XZ, Shi PL, Yu CQ, Wang JS, Zhou YT (2012). Species diversity distribution pattern of alpine grasslands communities along a precipitation gra- dient across Northern Tibetan Plateau. Acta Prataculturae Sinica, 21, 17-25. (in Chinese with English abstract) |
[ 武建双, 李晓佳, 沈振西, 张宪洲, 石培礼, 余成群, 王景升, 周宇庭 (2012). 藏北高寒草地样带物种多样性沿降水梯度的分布格局. 草业学报, 21, 17-25.] | |
[52] | Xue R, Zheng SX, Bai YF (2010). Impacts of grazing intensity and management regimes on aboveground primary productivity and compensatory growth of grassland ecosystems in Inner Mongolia. Biodiversity Science, 18, 300-311. (in Chinese with English abstract) |
[ 薛睿, 郑淑霞, 白永飞 (2010). 不同利用方式和载畜率对内蒙古典型草原群落初级生产力和植物补偿性生长的影响. 生物多样性, 18, 300-311.] | |
[53] |
Yachi S, Loreau M (1999). Biodiversity and ecosystem productivity in a fluctuating environment: the insurance hypothesis. Proceedings of the National Academy of Sciences of the United States of America, 96, 1463-1468.
URL PMID |
[54] | Yuan JL, Jing XL, Huang WB, Wang G (2004). Effects of grazing intensity and grazing season on plant species diversity in alpine meadow. Acta Prataculturae Sinica, 13, 16-21. (in Chinese with English abstract) |
[ 袁建立, 江小蕾, 黄文冰, 王刚 (2004). 放牧季节及放牧强度对高寒草地植物多样性的影响. 草业学报, 13, 16-21.] | |
[55] | Zheng SX, Lan ZC, Li WH, Shao RX, Shan YM, Wan HW, Taube F, Bai YF (2011). Differential responses of plant functional trait to grazing between two contrasting dominant C3 and C4 species in a typical steppe of Inner Mongolia, China. Plant and Soil, 340, 141-155. |
[56] | Zheng W, Dong QM, Li SX, Li HT, Liu Y, Yang SH (2012). Impact of grazing intensities on community biodiversity and productivity of alpine grassland in Qinghai Lake region. Acta Prataculturae Sinica, 20, 1033-1038. (in Chinese with English abstract) |
[ 郑伟, 董全民, 李世雄, 李红涛, 刘玉, 杨时海 (2012). 放牧强度对环青海湖高寒草原群落物种多样性和生产力的影响. 草地学报, 20, 1033-1038.] | |
[57] | Zhu SH, Xu CL, Fang QE, Liu FY (2006). Effect of white yak grazing intensity on species diversity of plant communities in alpine grassland. Journal of Gansu Agricultural University, 41, 71-75. (in Chinese with English abstract) |
[ 朱绍宏, 徐长林, 方强恩, 刘发央 (2006). 白牦牛放牧强度对高寒草原植物群落物种多样性的影响. 甘肃农业大学学报, 41, 71-75.] |
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