Scientia Agricultura Sinica ›› 2011, Vol. 44 ›› Issue (22): 4583-4592.doi: 10.3864/j.issn.0578-1752.2011.22.004

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Variation of Cropland Phenology in Mid-eastern Inner Mongolia

 TAO  Jian, ZHANG  Ge-Li, WANG  Jun-Bang, DONG  Jin-Wei   

  1. 1.农业部资源遥感与数字农业重点开放实验室,中国北京 100081
    2.中国科学院地理科学与资源研究所生态系统网络观测与模拟重点实验室,中国北京 100101
    3.俄克拉荷马大学植物与微生物学院空间分析中心,美国俄克拉荷马州 73019
  • Received:2011-04-27 Online:2011-11-15 Published:2011-06-13

Abstract: 【Objective】 Using RS technique, this paper monitored phonological trend of cropland in mid-eastern Inner Mongolia, and analyzed the influences of temperature and precipitation on phenology thereby potential influences on net primary productivity (NPP). 【Method】 Variation of cropland phenology and productivity was analyzed by trend analysis. The influences of climate change on NPP were explored by spatial correlation and significance analysis. 【Result】 Cropland phenology of most cropland lengthened obviously. Regions with advanced starting and delayed ending occupied the maximal percentage, followed by delayed starting and advanced ending, phenology variation was sensitive to temperature and precipitation spatially, growing season was shortened by precipitation significantly thereby resulting in decrease and large fluctuation of NPP. Inter annual NPP of cropland significantly influenced by temperature increased steadily and apparently. 【Conclusion】 Cropland phenology could be addressed by remotely sensing technique. Response of cropland phenology to temperature and precipitation evidently, and NPP was affected by climate change according to that.

Key words: mid-eastern Inner Mongolia, phonological, cropland, MODIS, growing season, temperature, precipitation, productivity

[1]Brown L R, Zaba B. Who will feed China? Futurist, 1996, 30(1): 14-18.

[2]Jiang B. Advances in food research: China. Journal of the Science of Food and Agriculture, 2005, 85(6): 891-893.

[3]Abbott P. Development Dimensions of High Food Prices. Paris Cedex: OECD Publishing, 2009.

[4]中国气候变化对策协调小组办公室. 中华人民共和国气候变化初始国家信息通报. 北京:中国计划出版社, 2004: 23-24.

National Coordination Committee on Climate Change. The People’s Republic of China Initial National Communication on Climate Change. Beijing: China Planning Press, 2004: 23-24. (in Chinese)

[5]Ding Y H, Ren G Y, Zhao Z C, Xu Y, Luo Y, Li Q P, Zhang J. Detection, causes and projection of climate change over China: An overview of recent progress. Advances in Atmospheric Sciences, 2007, 24: 954-971.

[6]刘纪远, 刘明亮, 庄大方, 张增祥, 邓祥征. 中国近期土地利用变化的空间格局分析. 中国科学(D辑), 2002, 32(12):1031-1040.

Liu J Y, Liu M L, Zhuang D F, Zhang Z X, Deng X Z. An analysis on the spatial - temporal dynamic changes of land–use of China. Science in China (Series D), 2002, 32(12):1031-1040.(in Chinese)

[7]刘纪远, 张增祥, 徐新良, 匡文慧, 周万村, 张树文, 李仁东, 颜长珍, 于东升, 吴世新, 江 南. 21世纪初中国土地利用变化的空间格局与驱动力分析. 地理学报, 2009, 64(12): 1411-1420.

Liu J Y, Zhang Z X, Xu X L, Kuang W H, Zhou W C, Zhang S W, Li R D, Yan C Z, Yu D S, Wu S X, Jiang N. Spatial patterns and driving forces of land use change in China in the early 21st century. Acta Geographica Sinica, 2009,64(12): 1411-1420. (in Chinese)

[8]刘纪远, 张增祥, 庄大方, 王一谋, 周万村, 张树文, 李仁东, 江南, 吴世新. 20世纪90年代中国土地利用变化时空特征及其成因分析. 地理研究, 2003, 22(1): 1-12.

Liu J Y, Zhang Z X, Zhuang D F, Wang Y M , Zhou W C, Zhang S W, Li R D, Jiang N, Wu S X. A study on the spatial - temporal dynamic changes of land–use and driving forces analyses of China in the 1990s. Geographical Research, 2003, 22(1): 1-12. (in Chinese)

[9]Tao F L, Yokozawa M, Xu Y L, Yousay Hayashi b, Zhang Z.  Climate changes and trends in phenology and yields of field crops in China, 1981–2000. Agricultural and Forest Meteorology, 2006, 138: 82-92.

[10]吴文斌, 杨 鹏, 唐华俊, Shibasaki Ryosuke, 周清波, 张 莉. 基于NDVI 数据的华北地区耕地物候空间格局. 中国农业科学, 2009, 42(2): 552-560.

Wu W B, Yang P, Tang H J, Ryosuke S, Zhou Q B, Zhang L. Monitoring spatial patterns of cropland phenology in north China based on NOAA NDVI data. Scientia Agricultura Sinica, 2009, 42(2): 552-560. (in Chinese)

[11]张 峰, 吴炳方, 刘成林, 罗治敏. 利用时序植被指数监测作物物候的方法研究. 农业工程学报, 2004, 20(1): 155-159.

Zhang F, Wu B F, Liu C L, Luo Z M. Methods of monitoring crop phonological stages using time series of vegetation indicator. Transactions of the CSAE, 2004, 20(1): 155-159. (in Chinese)

[12]Piao S L, Fang J Y, Ji W, Guo Q H, Ke J H, Tao S. Variations in a satellite-based vegetation index in relation to climate in China. Journal of Vegetation Science, 2004, 15: 219-226.

[13]Piao S L, Fang J Y, Liu H Y, Zhu B. NDVI-indicated decline in desertification in China in the past two decades. Geophysical Research Letters, 2005, 32: 6402.

[14]Piao S L, Fang J Y, Zhou L M, Ciais P, Zhu B. Variations in satellite-derived phenology in China’s temperate vegetation. Global Change Biology, 2006, 12: 672-685.

[15]邓振镛, 张 强, 徐金芳, 黄蕾诺, 文小航, 王润元, 王小燕, 奚立宗. 全球气候增暖对甘肃农作物生长影响的研究进展. 地球科学进展, 2008, 23(10): 1070-1078.

Deng Z Y, Zhang Q, Xu J F, Huang L N, Wen X H, Wang R Y, Wang X Y, Xi L Z. Research progress of the impact of global climate warming on crops in Gansu province. Advances in Earth Science, 2008, 23(10): 1070-1078. (in Chinese)

[16]邓振镛, 张 强, 宁惠芳, 梁东升, 王 强, 徐金强, 王劲松. 西北地区气候暖干化对作物气候生态适应性的影响. 中国沙漠, 2010, 30(3): 633-639.

Deng Z Y, Zhang Q, Ning H F, Liang D S, Wang Q, Xu J Q, Wang J S. Influence of climate warming and drying on crop eco-climate adaptability in Northwestern China. Journal of Desert Research, 2010, 30(3): 633-639. (in Chinese)

[17]Huete A, Didan K, Miura T, Rodriguez E P, Gao X, Ferreira L G. Overview of theradiometric and biophysical performance of the MODIS vegetation indices. Remote Sensing of Environment, 2002, 83 (1-2): 195-213.

[18]Schaaf C B, Gao F, Strahler A H, Lucht W, Li X W, Tsang T, Strugnell N C, Zhang X Y, Jin Y F, Muller J P, Lewis P, Barnsley M, Hobson P, Disney M, Roberts G, Dunderdale M, Doll C, d'Entremont R P, Hu B X, Liang S L, Privette J L, Roy D. First operational BRDF, albedo nadir reflectance products from MODIS. Remote Sensing of Environment, 2002, 83 (1-2): 135-148.

[19]Zhang X Y, Friedl M A, Schaaf C B, Strahler A H, Hodges J C F, Gao F, Reed B C, Huete A. Monitoring vegetation phenology using MODIS. Remote Sensing of Environment, 2003,84 (3): 471-475.

[20]王军邦, 陶 健, 李贵才, 庄大方. 内蒙古中部 MODIS 植被动态监测分析. 地球信息科学学报, 2010,12(6): 835-842.

Wang J B, Tao J, Li G C, Zhuang D F. Monitoring inter-annual vegetation variation in middle Inner Mongolia through MODIS NDVI. Journal of Geo-information Science, 2010,12(6): 835-842. (in Chinese)

[21]董金玮, 徐新良. 典型农牧交错区 LUCC 及农牧交替演化过程分析. 地球信息科学学报, 2009, 11(4): 413- 420.

Dong J W, Xu X L. Land use change especially alternations of farming and grazing in typical agro-pastoral transitional zone in 1988-2000: A case study in Chifeng City of Inner Mongoli. Journal of Geo-information Science,2009, 11(4) : 413- 420. (in Chinese)

[22]陈素华, 宫春宁. 内蒙古气候变化特征与草原生态环境效应. 中国农业气象, 2005, 26(4): 246-249.

Chen S H, Gong C N. Features of climate change and its impacts on ecosystems of grassland in Inner Mongolia. Agricultural Meteorology, 2005, 26(4): 246-249. (in Chinese)

[23]牛文元. 生态环境脆弱带 ECOTONE 的基础判定. 生态学报, 1989,9(2): 97-105.

Niu W Y. The discriminatory index with regard to the weakness, overlapness, and breadth of ecotone. Acta Ecologica Sinica, 1989, 9(2): 97-105.

[24]叶笃正. 中国的全球变化预研究. 北京: 气象出版社, 1992.

Ye D Z. Pre-study on Global Change in China. Beijing: China Meteorological Press, 1992. (in Chinese)

[25]Stowa D A, Hopea A, McGuireb D, Verbylac D, Gamond J, Huemmriche F, Houstond S, Racinef C, Sturmg M, Tapeh K, Hinzman L, Yoshikawai K, Tweediej C, Noylek B, Silapaswanl C, Douglasm D, Griffithn B, Jiao G S, Epsteino H, Walkerp D, Daeschnera S, Petersena A, Zhou L M, Myneni R. Remote sensing of vegetation and land-cover change in Arctic tundra ecosystems. Remote Sensing of Environment, 2004, 89(3): 281-308.

[26]Hope A, Boynton W, Stow D, Douglas D. Interannual growth dynamics of vegetation in the Kuparuk River watershed, Alaska based on the Normalized Difference Vegetation Index. International Journal of Remote Sensing, 2003, 24(17): 3413-3425.

[27]刘纪远, 布和敖斯. 中国土地利用变化现代过程时空特征的研究: 基于卫星遥感数据. 第四纪研究, 2000, 20(3): 229-239.

Liu J Y, Bu H A S. Study on spatial-temporal feature of modern land-use change in China: Using remote sensing techniques. Quaternary Scienses, 2000, 20(3): 229-239. (in Chinese)

[28]Hutchinson M. ANUSPLIN Version 4.2 User Guide. Canberra: The Australian National University, 2002.

[29]Hutchinson M F. A new procedure for griding elevation and stream line data with automatic removal of spurious pits. Journal of Hydrology, 1989, 106: 211-232.

[30]Stow D, Daeschner S, Hope A, Douglas D, Petersen A, Myneni R, Zhou L, Oechel W. Variability of the seasonally integrated normalized difference vegetation index across the North Slope of Alaska in the 1990s. International Journal of Remote Sensing, 2003, 24(5): 1111-1117.

[31]徐建华. 现代地理学中的数学方法. 北京: 高等教育出版社, 2002.

Xu J H. Mathematical Methods in Contemporary Geography. Beijing: Higher Education Press, 2002. (in Chinese)

[32]Xiao X M, Zhang Q Y, Braswell B, Urbanski S, Boles S, Wofsy S, Moore B, Ojima D. Modeling gross primary production of temperate deciduous broadleaf forest using satellite images and climate data. Remote Sensing of Environment, 2004, 91: 256-270.

[33]Yan H M, Fu Y L, Xiao X M, Huang H Q, He H L, Ediger L. Modeling gross primary productivity for winter wheat-maize   double cropping system using MODIS time series and CO2 eddy flux tower data. Agriculture, Ecosystems and Environment, 2009, 129: 391-400.

[34]王 宏, 李小冰, 李 霞, 莺 歌, 符 娜. 基于NOAA NDVI和MSAVI研究中国北方植被生长季变化. 生态学报, 2007, 27(2): 504-515.

Wang H, Li X B, Li X, Ying G, Fu N. The variability of vegetation growing season in the northern China based on NOAA NDVI and MSAVI from 1982 to 1999. Acta Ecologica Sinica, 2007, 27(2):  504-515. (in Chinese)
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