Drought variability in Inner Mongolia of northern China during 1960–2013 based on standardized precipitation evapotranspiration index
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  • 作者:Shulin Liu ; Wenping Kang ; Tao Wang
  • 关键词:Drought variability ; Abrupt change ; Standardized precipitation evapotranspiration index (SPEI) ; Inner Mongolia
  • 刊名:Environmental Earth Sciences
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:75
  • 期:2
  • 全文大小:3,632 KB
  • 参考文献:Begueria S, Vicente-Serrano SM, Reig F, Latorre B (2014) Standardized precipitation evapotranspiration index (SPEI) revisited: parameter fitting, evapotranspiration models, tools, datasets and drought monitoring. Int J Climatol 34:3001–3023. doi:10.​1002/​joc.​3887 CrossRef
    Byun HR, Wilhite DA (1999) Objective quantification of drought severity and duration. J Clim 12:2747–2756CrossRef
    Chun X, Dan D, Bi LG, Liu MP, Liu Y, Hu HDL (2013) Climate change in Alxa Plateau over recent 60 years. J China Hydrol 33(2):43–50
    Dai AG (2011) Drought under global warming: a review. Wiley Interdiscip Rev Clim Change 2:45–65. doi:10.​1002/​wcc.​81 CrossRef
    Demaree GR, Nicolis C (1990) Onset of sahelian drought viewed as a fluctuation-induced transition. Quart J R Meteorol Soc 116(491):221–238CrossRef
    Diro GT, Sushama L, Martynov A, Jeong DI, Verseghy D, Winger K (2014) Land-atmosphere coupling over North America in the CRCM5. J Geophys Res. doi:10.​1002/​2014JD021677
    Edwards DC, McKee TB (1997) Characteristics of 20th century drought in the United States at Multiple Scales. Atmos Sci Paper No. 634, Climatology Report 97-2, Colarado State University, Fort Collins, pp 1–30
    Feng J, Yan DH, Li CZ, Yu FL, Zhan C (2014) Assessing the impact of climatic factors on potential evapotranspiration in droughts in North China. Quat Int 336:6–12. doi:10.​1016/​j.​quaint.​2013.​06.​011 CrossRef
    Fuchs B, Svoboda M, Nothwehr J, Poulsen C, Sorensen W, Guttman N (2012) A new national drought risk Atlas for the US from the National Drought Mitigation Center. http://​www.​clivar.​org/​sites/​default/​files/​Fuchs.​pdf
    Giannakopoulos C, Sager PL, Bindi M, Moriondo M, Kostopoulou E, Goodess CM (2009) Climatic changes and associated impacts in the Mediterranean resulting from a 2 °C global warming. Global Planet Change 68(3):209–224CrossRef
    Giorgi F (2006) Climate change hot-spots. Geophys Res Lett 33(4):L08707. doi:08710.01029/02006GL025734
    Goossens C, Berger A (1987) How to recognize an abrupt climatic change? In: Berger WH, Labeyrie LD (eds) Abrupt climatic change, evidence and implications, NATO ASI series C: mathematical and physical sciences 216. D. Reidel publishing company Dordrecht, Holland, pp 31–45
    Goudie AS, Middleton NJ (1992) The changing frequency of dust storms through time. Clim Change 20(3):197–225. doi:10.​1007/​BF00139839 CrossRef
    Hao YX, Han FL, Xu J, Dong CY, Huang FR (2010) The influence of urban heat island on climatic change of Xilinhot. Meteorol J Inner Mongolia 6:34–37
    Hayes M, Wilhite DA, Svoboda M, Vanyarkho O (1999) Monitoring the 1996 drought using the standardized precipitation index. Bull Am Meteorol Soc 80:429–438CrossRef
    Hijmans RJ, Cameron SE, Parra JL, Jones PG, Jarvis A (2005) Very high resolution interpolated climate surfaces f or global land areas. Int J Climatol 25:1965–1978CrossRef
    Hu Q, Pan FF, Pan XB, Zhang D, Li QY, Pan ZH, Wei YR (2015) Spatial analysis of climate change in Inner Mongolia during 1961–2012, China. Appl Geogr 60(SI):254–260CrossRef
    Huang J, Sun SL, Xue Y, Zhang JC (2015) Changing characteristics of precipitation during 1960–2012 in Inner Mongolia, northern China. Meteorol Atmos Phys 127(3):257–271. doi:10.​1007/​s00703-014-0363-z CrossRef
    Hutchinson MF (2004) ANUSPLIN Version 4.3 User Guide. Canberra: the Australia National University, Center for Resource and Environment Studies 2004. http://​cres.​anu.​edu.​au/​outputs/​anusplin.​Php
    Jensen ME, Burman RD, Allen RG (eds) (1990) Evapotranspiration and irrigation water requirements. ASCE Manuals and Reports on Engineering Practices No. 70. Am Soc Civil Eng New York, p 360
    Jeong DI, Sushama L, Khaliq MN (2014) The role of temperature in drought projections over North America. Clim Change 127:289–303. doi:10.​1007/​s10584-014-1248-3 CrossRef
    Jin GY (2006) New thinking: how to process extraordinary flood data in frequency analysis. J China Hydrol 26(3):27–32
    Keyantash J, Dracup JA (2002) The quantification of drought: an evaluation of drought indices. Bull Am Meteorol Soc 83:1167–1180CrossRef
    Lehner B, Doll P, Alcamo J, Henrichs T, Kaspar F (2006) Estimating the impact of global change on flood and drought risks in Europe: a continental, integrated analysis. Clim Change 75:273–299CrossRef
    Li WG, Yi X, Hou MT, Chen HL, Chen ZL (2012) Standardized precipitation evapotranspiration index shows drought trends in China. Chin J Eco Agric 20(5):643–649. doi:10.​3724/​SP.​J.​1011.​2012.​00643 CrossRef
    Linares JC, Camarero JJ (2011) From pattern to process: linking intrinsic water-use efficiency to drought-induced forest decline. Glob Change Biol 18:1000–1015CrossRef
    Liu ZH, Li LT, McVicar TR, Van Niel TG, Yang QK, Li R (2008) Introduction of the professional interpolation software for meteorology data: ANU SPLINN. Meteorol Monogr 34(2):92–100
    Ma ZG, Fu CB (2001) Trend of surface humid index in the arid area of northern China. Acta Meteorol Sin 59(6):737–746
    Martínez-Villalta J, López BC, Adell N, Badiella L, Ninyerola M (2008) Twentieth century increase of Scots pine radial growth in NE Spain shows strong climate interactions. Glob Chang Biol 14:2868–2881CrossRef
    Mavromatis T (2007) Drought index evaluation for assessing future wheat production in Greece. Int J Climatol 27(7):911–924. doi:10.​1002/​joc.​1444 CrossRef
    McKee TB, Doesken NJ, Kleist J (1993) The relationship of drought frequency and duration to time scales. Proceeding of the Ninth Conference on Applied Climatology. American Meteorological Society, Boston, pp 179–184
    McVicar TR, Roderick ML, Donohue RJ, Li LT, Van Niel TG, Thomas A, Grieser J, Jhajharia D, Himri Y, Mahowald NM, Mescherskaya AV, Kruger AC, Rehman S, Dinpashoh Y (2012) Global review and synthesis of trends in observed terrestrial near-surface wind speeds: implications for evaporation. J Hydrol 416–417:182–205. doi:10.​1016/​j.​jhydrol.​2011.​10.​024 CrossRef
    Mishra AK, Singh VP (2010) A review of drought concepts. J Hydrol 391(1):202–216. doi:10.​1016/​j.​jhydrol.​2010.​07.​012 CrossRef
    Moraes JM, Pellegrino HQ, Ballester MV, Martinelli LA, Victoria R, Krusche AV (1998) Trends in hydrological parameters of a southern Brazilian watershed and its relation to human induced changes. Water Resour Manag 12:295–311. doi:10.​1023/​A:​1008048212420 CrossRef
    Morid S, Smakhtin V, Moghaddasi M (2006) Comparison of seven meteorological indices for drought monitoring in Iran. Int J Climatol 26:971–985CrossRef
    Nandintsetseg B, Shinoda M (2013) Assessment of drought frequency, duration, and severity and its impact on pasture production in Mongolia. Nat Hazards 66:995–1008. doi:10.​1007/​s11069-012-0527-4 CrossRef
    Palmer WC (1965) Meteorological droughts. US Department of Commerce Weather Bureau Research Paper 45, 58
    Qian WH, Qin A (2008) Precipitation division and climate shift in China from 1960 to 2000. Theor Appl Climatol 93(1–2):1–17CrossRef
    Romm J (2011) The next dust bowl. Nature 478:450–451. doi:10.​1038/​478450a CrossRef
    Sandholt I, Rasmussen K, Andersen J (2002) A simple interpretation of the surface temperature—vegetation index space for assessment of surface moisture status. Remote Sens Environ 79(2):213–224CrossRef
    Schubert SD, Suarez MJ, Pegion PJ, Koster RD, Bacmeister JT (2004) On the cause of the 1930s Dust Bowl. Science 303(5665):1855–1859. doi:10.​1126/​science.​1095048 CrossRef
    Sha S, Guo N, Li YH, Han T, Zhao YX (2014) Introduction of application of temperature vegetation dryness index in China. J Arid Meteorol 32(1):128–134. doi:10.​11755/​j.​issn.​1006-7639(2014)-01-0128
    Shafer BA, Dezman LE (1982) Development of a surface water supply index (SWSI) to assess the severity of drought conditions in snowpack runoff areas. Proceedings of the Western snow conference. Colorado State University, Fort Collins, pp 164–175
    Sheffield J, Wood EF, Roderick ML (2012) Little change in global drought over the past 60 years. Nature 491:435–440. doi:10.​1038/​nature11575 CrossRef
    Shinoda M, Nachinshonhor GU, Nemoto M (2010) Impact of drought on vegetation dynamics of the Mongolian steppe: a field experiment. J Arid Environ 74(1):63–69. doi:10.​1016/​j.​jaridenv.​2009.​07.​004 CrossRef
    Sneyers R (1975) Sur l’analyse statistique des s´eries d’observations. Technical Note 143, WMO, Geneva
    Sternberg T (2011) Regional drought has a global impact. Nature 472:169CrossRef
    Sternberg T, Thomas D, Middleton N (2011) Drought dynamics on the Mongolian steppe 1970–2006. Int J Climatol. doi:10.​1002/​joc.​2195
    Svoboda M, LeComte D, Hayes M, Heim R, Gleason K, Angel J, Rippey B, Tinker R, Palecki M, Stooksbury D, Miskus D, Stephens S (2002) The drought monitor. Bull Am Meteorol Soc 83:1181–1192CrossRef
    Thornthwaite CW (1948) An approach toward a rational classification of climate. Geogr Rev 38:55–94CrossRef
    van der Schrier G, Jones PD, Briffa KR (2011) The sensitivity of the PDSI to the Thornthwaite and Penman-Monteith parameterizations for potential evapotranspiration. J Geophys Res 116:D03106. doi:10.​1029/​2010JD015001
    Vicente-Serrano SM, Beguería S, López-Moreno JI (2010) A multiscalar drought index sensitive to global warming: the standardized precipitation evapotranspiration index. J Clim 23:1696–1718. doi:10.​1175/​2009JCLI2909.​1 CrossRef
    Wang HJ (2001) The weakening of the Asian monsoon circulation after the end of 1970s. Adv Atmos Sci 18:376–386CrossRef
    Wang L, Chen W (2014) Applicability analysis of standardized precipitation evapotranspiration index in drought monitoring in China. Plateau Meteorol 33(2):423–431. doi:10.​7522/​j.​issn.​1000-0534.​2013.​00048
    Wang BJ, Huang YX, Tao JH, Li DL, Wang PX (2006) Regional features and variations of water vapor in northwest China. J Glaciol Geocryol 28(1):15–21
    Wang T, Wu W, Xue X, Han ZW, Zhang WM, Sun QW (2004) Spatial-temporal changes of sandy desertified land during last 5 decades in northern China. Acta Geogr Sin 59(2):203–212
    Wilhite D (2000) Drought as a natural hazard: concepts and definitions. In: Whilhite DA (ed) Drought: a global assessment. Routledge, London, pp 3–18
    Wilhite DA, Sivakumar MVK, Wood DA (2000) Early warning systems for drought preparedness and drought management. In: Proceedings of an expert group meeting Lisbon, Portugal. World Meteorological Organization, Geneva
    Williams AP, Xu Ch, McDowell NG (2011) Who is the new sheriff in town regulating boreal forest growth? Environ Res Lett. doi:10.​1088/​1748-9326/​6/​4/​041004
    Wu H, Hayes MJ, Welss A, Hu Q (2001) An evaluation the standardized precipitation index, the china-z index and the statistical z-score. Int J Climatol 21:745–758CrossRef
    Wu H, Svoboda MD, Hayes MJ, Wilhite DA, Wen FJ (2007) Appropriate application of the standardized precipitation index in arid locations and dry seasons. Int J Climatol 27:65–79. doi:10.​1002/​joc.​1371 CrossRef
    Yu MX, Li QF, Hayes MJ, Svoboda MD, Heime RR (2014) Are droughts becoming more frequent or severe in China based on the standardized precipitation evapotranspiration index: 1951–2010? Int J Climatol 34:545–558. doi:10.​1002/​joc.​3701 CrossRef
    Zhao FF, Xu ZX, Huang JX, Li JY (2008) Monotonic trend and abrupt changes for major climate variables in the headwater catchment of the Yellow River basin. Hydrol Process 22:4587–4599. doi:10.​1002/​hyp.​7063 CrossRef
    Zhuang SW, Zuo HC, Ren PC, Xiong GJ, Li BD, Dong WC, Wang LY (2013) Application of standardized precipitation evapotranspiration index in China. Clim Environ Res 18(5):617–625. doi:10.​3878/​j.​issn.​1006-9585.​2012
    Zou X, Zhai P, Zhang Q (2005) Variations in droughts over China: 1951–2003. Geophys Res Lett 32(4):L04707. doi:10.​1029/​2004GL021853 CrossRef
  • 作者单位:Shulin Liu (1) (2)
    Wenping Kang (1) (2)
    Tao Wang (1) (2)

    1. Key Laboratory of Desert and Desertification, Chinese Academy of Sciences, Lanzhou, 730000, China
    2. Cold and Arid Regions Environmental and Engineering Research Institute, Chinese Academy of Sciences, Lanzhou, 730000, China
  • 刊物类别:Earth and Environmental Science
  • 刊物主题:None Assigned
  • 出版者:Springer Berlin Heidelberg
  • ISSN:1866-6299
文摘
The standardized precipitation evapotranspiration index (SPEI) was widely used in climatology and hydrology studies, because its combination the sensitivity of the PDSI to the changes in ET (caused by air temperature fluctuations and trends) with the simplicity of calculation, but also has the robustness of the multitemporal nature of the SPI. In this article, the temporal and spatial pattern of drought based on SPEI was explored in the Inner Mongolia during 1960–2013. The results showed that SPEI can effectively reveal the multiscalar feature of drought, and the effect of air temperature rising on drought severity and cumulative effect of drought itself. SPEI is suitable for those longer time scales such as 6-month or longer, and better in semi-humid and semi-arid areas than in arid area, due to much zero values or extreme maximum values at shorter time scale or in arid area. Generally, there is a drying trend in the whole Inner Mongolia, and a very severe drought was revealed at multi-time scales during the 2000s. Annual SPEI change at 6-month scale from APR to SEP indicated that drought in plant-growth season is very frequent and increasingly serious, and it should be given more attention. The severities of drought vary in different sub-regions. A significant abrupt change point of drought change trend in the whole Inner Mongolia at 12-month time scale was diagnosed in late 1990s, while this abrupt point in the middle-west subarea is a little earlier than those in the northeast subarea and the southeast subarea. This lasting severe drought should be the result of joint action of increasing air temperature and obviously decreasing precipitation since 2000s. At the same time, the most severe and frequent drought mainly occurred along the Sino-Mongolia border and the Horqin Sandy Land, while the continuous belt along the Da Hinggan Ling Mountains, the Yinshan Mountains, the Hetao Plain and the Mu Us Sandy Land is the area with relative slight drying trend during the last decades. Drought spatial pattern indicated by SPEI was supported by spatial distribution of temperature vegetation drought index based on remote sensing. Keywords Drought variability Abrupt change Standardized precipitation evapotranspiration index (SPEI) Inner Mongolia

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