• Journal of Resources and Ecology
  • Vol. 11, Issue 3, 272 (2020)
Yanan CAO1, Jianshuang WU2, Xianzhou ZHANG3、4、*, Ben NIU3, and Yongtao HE3、4
Author Affiliations
  • 1School of Earth Science and Engineering, Hebei University of Engineering, Handan 056038, Hebei, China
  • 2Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural Sciences, Beijing 100081, China
  • 3Lhasa Plateau Ecosystem Research Station, Key Laboratory of Ecosystem Network Observation and Modelling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, Beijing 100101, China
  • 4College of Resources and Environment, University of Chinese Academy of Sciences, Beijing 100049, China
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    DOI: 10.5814/j.issn.1674-764X.2020.03.004 Cite this Article
    Yanan CAO, Jianshuang WU, Xianzhou ZHANG, Ben NIU, Yongtao HE. Comparison of Methods for Evaluating the Forage-livestock Balance of Alpine Grasslands on the Northern Tibetan Plateau[J]. Journal of Resources and Ecology, 2020, 11(3): 272 Copy Citation Text show less
    References

    [1] Cai HY, Yang XH, Xu XL. Human-induced grassland degradation/restoration in the central Tibetan Plateau: The effects of ecological protection and restoration projects. Ecological Engineering, 83, 112-119(2015).

    [2] Campbell BM, Gordon IJ, Luckert MK et al. In search of optimal stocking regimes in semi-arid grazing lands: One size does not fit all. Ecological Economics, 60, 75-85(2006).

    [3] Cao YN, Wu JS, Zhang XZ et al. Dynamic forage-livestock balance analysis in alpine grasslands on the Northern Tibetan Plateau. Journal of Environmental Management, 238, 352-359(2019).

    [4] Chang HQ, Xu WY, YuanJ et al. Current situation of grassland resources and grazing capacity in Ali, Tibet. Pratacultural Science, 29, 1660-1664(2012).

    [5] Chen BX, Zhang XZ, TaoJ et al. The impact of climate change and anthropogenic activities on alpine grassland over the Qinghai-Tibet Plateau. Agricultural and Forest Meteorology, 189, 11-18(2014).

    [6] Currie PO. Field evaluation of five grasses grown on a saline soil. Journal of Range Management, 39, 386-388(1986).

    [7] EbrahimiM, KhosraviH, RigiM. Short-term grazing exclusion from heavy livestock rangelands affects vegetation cover and soil properties in natural ecosystems of southeastern Iran. Ecological Engineering, 95, 10-18(2016).

    [8] Fan JW, Shao QQ, Liu JY et al. Assessment of effects of climate change and grazing activity on grassland yield in the Three Rivers Headwaters Region of Qinghai-Tibet Plateau, China. Environmental Monitoring and Assessment, 170, 571-584(2010).

    [9] Fan YJ, Hou XY, Shi HX et al. Effects of grazing and fencing on carbon and nitrogen reserves in plants and soils of alpine meadow in the three headwater resource regions. Russian Journal of Ecology, 44, 80-88(2013).

    [10] FensholtR, RasmussenK, Nielsen TT et al. Evaluation of earth observation based long term vegetation trends — Intercomparing NDVI time series trend analysis consistency of Sahel from AVHRR GIMMS, Terra MODIS and SPOT VGT data. Remote Sensing of Environment, 113, 1886-1898(2009).

    [11] Gang CC, ZhouW, Chen YZ et al. Quantitative assessment of the contributions of climate change and human activities on global grassland degradation. Environmental Earth Sciences, 72, 4273-4282(2014).

    [12] GaoL, Kinnucan HW, ZhangY et al. The effects of a subsidy for grassland protection on livestock numbers, grazing intensity, and herders’ income in Inner Mongolia. Land Use Policy, 54, 302-312(2016).

    [13] Harris RB. Rangeland degradation on the Qinghai-Tibetan plateau: A review of the evidence of its magnitude and causes. Journal of Arid Environments, 74, 1-12(2010).

    [14] Holben BN. Characteristics of maximum-value composite images from temporal avhrr data. International Journal of Remote Sensing, 7, 1417-1434(1986).

    [15] Holechek JL. An approach for setting the stocking rate. Rangelands, 10, 10-14(1988).

    [16] Holechek JL. Grazing studies: What we’ve learned. Rangelands, 21, 12-16(1999).

    [17] Hunt LP. Safe pasture utilisation rates as a grazing management tool in extensively grazed tropical savannas of northern Australia. Rangeland Journal, 30, 305-315(2008).

    [18] Hutchinson MF, XuT. Anusplin version 4.2 user guide. Centre for Resource and Environmental Studies. The Australian National University. Canberra.(2004).

    [19] Jia YL. On the concepts and practices concerning grassland- livestock balance. Acta Agrestia Sinica,, 13, 265-268(2005).

    [20] KrausmannF, Erb KH, GingrichS et al. Global human appropriation of net primary production doubled in the 20th century. Proceedings of the National Academy of Sciences of USA, 110, 10324-10329(2013).

    [21] LiL, ZhangY, LiuL et al. Current challenges in distinguishing climatic and anthropogenic contributions to alpine grassland variation on the Tibetan Plateau. Ecology Evolution, 8, 5949-5963(2018).

    [22] Li XJ, Zhang XZ, Wu JS et al. Root biomass distribution in alpine ecosystems of the Northern Tibetan Plateau. Environmental Earth Sciences, 64, 1911-1919(2011).

    [24] LiethH, Whittaker RH. Primary productivity of the biosphere. Kew Bulletin, 32, 237-263(1975).

    [25] LinB, Tan ZL, Tang SX et al. Research progress in methodologies for carrying capacity and proper stocking rate in grassland ecological system. Pratacultural Science, 25, 91-99(2008).

    [26] Liu XY, Feng QS, Liang TG et al. Spatial-temporal dynamic balance between livestock carrying capacity and productivity of rangeland in Gannan of Gansu Province, China. Chinese Journal of Grassland, 32, 99-106(2010).

    [27] Luo LH, MaW, Zhuang YL et al. The impacts of climate change and human activities on alpine vegetation and permafrost in the Qinghai-Tibet Engineering Corridor. Ecological Indicators, 93, 24-35(2018).

    [28] Melillo JM, Mcguire AD, Kicklighter DW et al. Global climate-change and terrestrial net primary production. Nature, 363, 234-240(1993).

    [29] Meng BP, GeJ, Liang TG et al. Evaluation of remote sensing inversion error for the above-ground biomass of alpine meadow grassland based on multi-source satellite data. Remote Sensing, 9, 372(2017). http://www.mdpi.com/2072-4292/9/4/372

    [30] . NY/T635-2015. Agriculture Industry Standard of the People’s Republic of China: Calculation of Proper Carrying Capacity of Range Land..

    [31] Petrie MD, Peters D PC, YaoJ et al. Regional grassland productivity responses to precipitation during multiyear above- and below-average rainfall periods. Global Change Biology, 24, 1935-1951(2018).

    [32] PetzK, AlkemadeR, BakkenesM et al. Mapping and modelling trade-offs and synergies between grazing intensity and ecosystem services in rangelands using global-scale datasets and models. Global Environmental Change-Human and Policy Dimensions, 29, 223-234(2014).

    [33] Piao SL, Fang JY, He JS. Variations in vegetation net primary production in the Qinghai-Xizang Plateau, China, from 1982 to 1999. Climatic Change, 74, 253-267(2006).

    [34] Piao SL, SitchS, CiaisP et al. Evaluation of terrestrial carbon cycle models for their response to climate variability and to CO2 trends. Global Change Biology, 19, 2117-2132(2013).

    [35] Potter CS, Randerson JT, Field CB et al. Terrestrial ecosystem production — A process model-based on global satellite and surface data. Global Biogeochemical Cycles, 7, 811-841(1993).

    [36] QianS, Mao LX, Hou YY et al. Livestock carrying capacity and balance between carrying capacity of grassland with added forage and actual livestock in the Qinghai-Tibet Plateau. Journal of Natural Resources, 22, 389-397(2007).

    [37] Ren HY, Han GD, SchonbachP et al. Forage nutritional characteristics and yield dynamics in a grazed semiarid steppe ecosystem of Inner Mongolia, China. Ecological Indicators, 60, 460-469(2016).

    [38] Scarnecchia DL. The relationship of stocking intensity and stocking pressure to other stocking variables. Journal of Range Management, 38, 558-559(1985).

    [39] SchirpkeU, KohlerM, LeitingerG et al. Future impacts of changing land-use and climate on ecosystem services of mountain grassland and their resilience. Ecosystem Services, 26, 79-94(2017).

    [40] TaoJ, Zhang YJ, Dong JW et al. Elevation-dependent relationships between climate change and grassland vegetation variation across the Qinghai-Xizang Plateau. International Journal of Climatology, 35, 1638-1647(2015).

    [41] WuJ, FengY, ZhangX et al. Grazing exclusion by fencing non-linearly restored the degraded alpine grasslands on the Tibetan Plateau. Scientific Reports, 7, 1-9(2017).

    [42] WuJ, LiM, FiedlerS et al. Impacts of grazing exclusion on productivity partitioning along regional plant diversity and climatic gradients in Tibetan alpine grasslands. Journal of Environmental Management, 231, 635-645(2018).

    [44] Wu JS, Zhang XZ, Shen ZX et al. Species richness and diversity of alpine grasslands on the Northern Tibetan Plateau: Effects of grazing exclusion and growing season precipitation. Journal of Resources and Ecology, 3, 236-242(2012).

    [45] Xu HJ, Wang XP, Zhang XX. Alpine grasslands response to climatic factors and anthropogenic activities on the Tibetan Plateau from 2000 to 2012. Ecological Engineering, 92, 251-259(2016).

    [46] Xu MY, Gao LJ, Li YQ. A review on grassland carrying capacity (Ⅱ): Parameters and calculation method. Acta Prataculturae Sinica,, 23, 311-321(2014).

    [47] Yang ZL, Yang GH. Potential productivity and livestock carrying capacity of high-frigid grassland in China. Resources Science, 22, 72-77(2000).

    [48] Yu CQ, Zhang XZ, ZhangJ et al. Grazing exclusion to recover degraded alpine pastures needs scientific assessments across the Northern Tibetan Plateau. Sustainability, 8, 1162(2016).

    [49] Zhang BH, ZhangL, XieD et al. Application of synthetic NDVI time series blended from landsat and MODIS data for grassland biomass estimation. Remote Sensing, 8, 10(2016). http://www.mdpi.com/2072-4292/8/1/10

    [50] Zhang HY, Fan JW, WangJ et al. Spatial and temporal variability of grassland yield and its response to climate change and anthropogenic activities on the Tibetan Plateau from 1988 to 2013. Ecological Indicators, 95, 141-151(2018).

    [51] Zhang JP, Zhang LB, Liu WL et al. Livestock-carrying capacity and overgrazing status of alpine grassland in the Three-River Headwaters region, China. Journal of Geographical Sciences, 24, 303-312(2014).

    [52] ZhongL, Ma YM, Salama MS et al. Assessment of vegetation dynamics and their response to variations in precipitation and temperature in the Tibetan Plateau. Climatic Change, 103, 519-535(2010).

    Yanan CAO, Jianshuang WU, Xianzhou ZHANG, Ben NIU, Yongtao HE. Comparison of Methods for Evaluating the Forage-livestock Balance of Alpine Grasslands on the Northern Tibetan Plateau[J]. Journal of Resources and Ecology, 2020, 11(3): 272
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