[1] Duan M J.Remote sensing monitoring of Stipa Purpurea alpine grassland aboveground biomass under the grazing disturbance in northern Tibet. Beijing: Chinese Academy of Agricultural Sciences, 2011. 段敏杰. 放牧干扰下藏北紫花针茅高寒草地生物量遥感监测.北京: 中国农业科学院, 2011. [2] Zhao H L, Okuro T, Li Y L, et al. Effects of human activities and climate changes on plant diversity in Horqin sandy grassland, Inner Mongolia. Acta Prataculturae Sinica, 2008, 17(5): 1-8. 赵哈林, 大黑俊哉, 李玉霖, 等. 人类放牧活动与气候变化对科尔沁沙质草地植物多样性的影响. 草业学报, 2008, 17(5): 1-8. [3] An H, Li G Q.Effects of grazing on plant biomass and soil nutrient in desert steppe. Journal of Plant Nutrition and Fertilizers, 2013, 19(3): 705-712. 安慧, 李国旗. 放牧对荒漠草原植物生物量及土壤养分的影响. 植物营养与肥料学报, 2013, 19(3): 705-712. [4] Liu D W.Effect of grazing on community characteristis and changing of nutrient contents in Deyeuxia angustifolia meadow. Harbin: Northeast Agricultural University, 2012. 刘冬伟. 放牧对小叶章草场群落特征和营养成分变化的影响. 哈尔滨: 东北农业大学, 2012. [5] Dong Y J, Sun Z J, An S Z.Effects of grazing and grazing exclusion on species diversity in grassland vegetation and organic carbon. Chinese Journal of Grassland, 2018, 40(1): 105-114. 董乙强, 孙宗玖, 安沙舟. 放牧和禁牧影响草地物种多样性和有机碳库的途径. 中国草地学报, 2018, 40(1): 105-114. [6] Milchunas D G, Lauenroth W K.Quantitative effects of grazing on vegetation and soils over a global range of environments. Ecol Monogr, 1993, 63: 327-366. [7] Paul B, Gibson-Roy.Grasses and grassland ecology. Proceedings of the Annual Congresses of the Grassland Society of Southern Africa, 2009, 27(1): 63-64. [8] Bailey D W.Evaluating new approaches to improve livestock grazing distribution using GPS and GIS technology. Las Vegas, NV: IstNational Conference on Grazing Lands, 2000: 91-99. [9] Anderson D M, Rus D, Detweiler C, et al. Husbandry of free-ranging cows using virtual fencing concepts. Huhhot: XXI International Grassland Congress & the VIII International Rangeland Congress, 2008. [10] Li Z H.A modelling study on diversity patterns of plant life forms in central China. Beijing: North China Electric Power University, 2014. 李宗翰. 华中地区植物生活型多样性格局模型研究. 北京: 华北电力大学, 2014. [11] Cao W M, Liu X Y, Wang G L, et al. Combined analyses of MRT and DCCA on relationships between plant community distribution and ecological factors of Horqin Sandy Land. Chinese Journal of Ecology, 2017, 36(2): 318-327. 曹文梅, 刘小燕, 王冠丽, 等. 科尔沁沙地自然植被与生境因子的MRT分类及DCCA分析. 生态学杂志, 2017, 36(2): 318-327. [12] Wang Y H, Xu X, Zhang D J, et al. Effects of climate and habitat heterogeneity on the distribution pattern of plant life form in north China. Journal of Anhui Argicultural Sciences, 2016, 44(16): 9-13. 王艳红, 徐翔, 张东杰, 等. 气候和生境异质性对华北地区植物生活型分布格局的影响. 安徽农业科学, 2016, 44(16): 9-13. [13] Zhao L.Climate change and its impact on rangeland vegetation in Tianshan Mountains. Urumqi: Xinjiang Argicultural University, 2012. 赵玲. 天山山区气候变化及其对草地植被的影响. 乌鲁木齐: 新疆农业大学, 2012. [14] Luo L.Grassland resources and its rational utilization in Xinjiang. Urumqi: Xinjiang Medical Publishing House of Science and Technology, 1993. 罗麟. 新疆草地资源及其合理利用. 乌鲁木齐: 新疆科技卫生出版社, 1993. [15] Hulbert I A R, Wyllie J T B, Waterhouse A, et al. A note on the circadian rhythm and feeding behaviour of sheep fitted with a lightweight GPS collar. Applied Animal Behaviour Science, 1998, 60(4): 359-364. [16] Kawamura K, Akiyama T, Yokota H, et al. Quantifying grazing intensities using geographic information systems and satellite remote sensing in the Xilingol steppe region, Inner Mongolia, China. Agriculture, Ecosystems & Environment, 2005, 107(1): 83-93. [17] Wang C J, Wang W Q, Lu W H, et al. Feed intake distribution model for herd based on grazing spatio-temporal trajectory data. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(13): 125-130. 汪传建, 王伟强, 鲁为华, 等. 基于放牧时空轨迹数据的牧群采食量分布模型. 农业工程学报, 2016, 32(13): 125-130. [18] Wang J X.Study on plant functional trait and community phylogenetic assembly based on different grazing intensity in alpine steppe habitat of the Qinghai-Tibet Plateau. Beijing: China Agricultural University, 2016. 王建勋. 基于不同放牧强度的高寒草原植物功能性状及群落谱系构建研究. 北京: 中国农业大学, 2016. [19] Li K C, Wu X, Wang J H.Health is the prevention and treatment of degraded grassland desertification using basic way. Xinjiang Agricultural Science, 2010, (S2): 85-88. 李克昌, 武新, 王进华. 健康利用是防治草原沙化退化的基本途径. 新疆农业科学, 2010, (S2): 85-88. [20] Luo D, Chai L R, Chang S H, et al. Yak grazing management systems and optimization on the Qinghai-Tibet Plateau. Pratacultural Science, 2017, 34(4): 881-891. 罗惦, 柴林荣, 常生华, 等. 我国青藏高原地区牦牛草地放牧系统管理及优化. 草业科学, 2017, 34(4): 881-891. [21] Jia X Y, Ma H B, Zhou Y, et al. Floristic quantitative classification and successional characteristics of typical grassland under different ecological restoration methods in the Loess Hilly Region of Ningxia. Acta Prataculturae Sinica, 2018, 27(2): 15-25. 贾希洋, 马红彬, 周瑶, 等. 不同生态恢复措施下宁夏黄土丘陵区典型草原植物群落数量分类和演替. 草业学报, 2018, 27(2): 15-25. [22] Sun D S.Studies on the effects of grazing intensity on vegetation and soil in alpine meadow on the eastern Qinghai-Tibetan Plateau. Lanzhou: Lanzhou University, 2012. 孙大帅. 不同放牧强度对青藏高原东部高寒草甸植被和土壤影响的研究. 兰州: 兰州大学, 2012. [23] Yang Y C.Differentiation and maintenance of vegetation patterns along the topographical gradients in mid-subtropical hilly and lower mountainous area in east China. Shanghai: East China Normal University, 2005. 杨永川. 中国中亚热带东部低山丘陵地形梯度上植被的分异及其形成和维持机制. 上海: 华东师范大学, 2005. [24] Li J Y.Response of community structure and function to environmental disturbance in the alpine meadow of Tibetan Plateau. Lanzhou: Lanzhou University, 2016. 李君勇. 青藏高原高寒草甸群落结构和功能对环境干扰的响应. 兰州: 兰州大学, 2016. [25] Wang X, Song N P, Yang X G, et al. The response of grassland plant diversity to soil factors under grazing disturbance. Acta Prataculturae Sinica, 2013, 22(5): 27-36. 王兴, 宋乃平, 杨新国, 等. 放牧扰动下草地植物多样性对土壤因子的响应. 草业学报, 2013, 22(5): 27-36. [26] Yin R, Deng H, Wang H L, et al. Vegetation type affects soil enzyme activities and microbial functional diversity following revegetation of a severely eroded red soil in sub-tropical China. Catena, 2014, 115(3): 96-103. [27] Ren X M.Quantitative classification of main plant communities and environmental explanation of species composition and richness in Taibai Mountain of China. Yangling: Norehwest A&F University, 2012. 任学敏. 太白山主要植物群落数量分类及其物种组成和丰富度的环境解释. 杨凌: 西北农林科技大学, 2012. [28] Gui D W, Lei J Q, Zeng F J, et al. Effect of ecological factors on plant communities of the Cele River Basin on the north slope of the middle Kunlun Mountains. Acta Prataculturae Sinica, 2010, 19(3): 38-46. 桂东伟, 雷加强, 曾凡江, 等. 中昆仑山北坡策勒河流域生态因素对植物群落的影响. 草业学报, 2010, 19(3): 38-46. [29] Wen M Z, Guo J X.Influences of litter on soil organisms in northeastern Leymus chinensis grassland of China. Chinese Journal of Grassland, 2008, 30(5): 7-12. 温明章, 郭继勋. 不同凋落物量对东北羊草草原土壤生物的影响. 中国草地学报, 2008, 30(5): 7-12. [30] Sun X F, Huang J H, Wang M, et al. Responses of litter decomposition to biodiversity manipulation in the Inner Mongolia grassland of China. Biodiversity Science, 2009, 17(4): 397-405. 孙晓芳, 黄建辉, 王猛, 等. 内蒙古草原凋落物分解对生物多样性变化的响应. 生物多样性, 2009, 17(4): 397-405. [31] Chen F L.Effects of plant litter composition on the structure and function of soil microbial communities. Changsha: Hunan Agricultrual University, 2009. 陈法霖. 植物凋落物组成对土壤微生物群落结构和功能的影响. 长沙: 湖南农业大学, 2009. [32] Wang J Z.Effects of foraging and feces of large herbivores on vegetation and nitrogen mineralization in a grassland dominated by Stipa grandis. Changchun: Northeast Normal University, 2017. 王镜植. 大型草食动物采食与粪便对大针茅草原植被特征及氮矿化的作用. 长春: 东北师范大学, 2017. [33] Liu J F, Zhu D H, Lan S R, et al. Association between environment and community of Pinus taiwanensis in Daiyun Mountain. Acta Ecologica Sinica, 2013, 33(18): 5731-5736. 刘金福, 朱德煌, 兰思仁, 等. 戴云山黄山松群落与环境的关联. 生态学报, 2013, 33(18): 5731-5736. [34] Aizhe X C.Effects of niche partitioning, dispersal and spatial structure of meta community on community repeatability, rarity and species-sorting. Lanzhou: Lanzhou University, 2013. 艾者协措. 生态位分化、扩散和集合群落空间构型对于群落可重复性、物种稀有性和物种配置的影响. 兰州: 兰州大学, 2013. [35] Xu Y J, Chen Y N, Li W H, et al. Distribution pattern and environmental interpretation of plant species diversity in the mountainous region of Ili River Valley, Xinjiang, China. Chinese Journal of Plant Ecology, 2010, 34(10): 1142-1154. 徐远杰, 陈亚宁, 李卫红, 等. 伊犁河谷山地植物群落物种多样性分布格局及环境解释. 植物生态学报, 2010, 34(10): 1142-1154. [36] Wang J Z, Lin G H, Huang J H, et al. Stable isotope in terrestrial ecosystems-plant application of the relationship in the study. Chinese Science Bulletin, 2004, 49(21): 2141-2149. 王建柱, 林光辉, 黄建辉, 等. 稳定同位素在陆地生态系统动-植物相互关系研究中的应用. 科学通报, 2004, 49(21): 2141-2149. [37] Wang W Q.Research for grazing behavior based on grazing spatio-temporal trajectory data. Shihezi: Shihezi University, 2017. 王伟强. 基于放牧时空轨迹数据的牧群采食行为研究. 石河子: 石河子大学, 2017. [38] Wang M J, Sun R, Liu Z, et al. A study of grazing intensity in the Hulunbuir grasslands using remote sensing. Acta Prataculturae Sinica, 2017, 26(6): 28-36. 王梦佳, 孙睿, 刘喆, 等. 基于遥感数据的呼伦贝尔草原放牧强度研究. 草业学报, 2017, 26(6): 28-36. [39] Song Y T, Wu Y N, Zhang J, et al. Effects of grazing intensity on vegetation landscape pattern in Stipa krylovii steppe in Inner Mongolia. Journal of Desert Research, 2016, 36(3): 674-680. 宋彦涛, 乌云娜, 张靖, 等. 放牧强度对克氏针茅(Stipa krylovii)草原植被景观格局的影响. 中国沙漠, 2016, 36(3): 674-680. [40] Huang C, Zhang Y, Wang J, et al. Spatial heterogeneity of vegetation under different grazing intensities in a Stipa brevifora desert steppe. Chinese Journal of Plant Ecology, 2014, 38(11): 1184-1193. 黄琛, 张宇, 王静, 等. 不同放牧强度下短花针茅荒漠草原植被的空间异质性. 植物生态学报, 2014, 38(11): 1184-1193. |