• Geographical Research
  • Vol. 39, Issue 3, 735 (2020)
Junjie LIU1、1、2、2, Ziwu PAN1、1、2、2, Fen QIN1、1、2、2、3、3, Jiangyan GU1、1, Mingyang ZHU1、1, and Fang ZHAO1、1、*
Author Affiliations
  • 1College of Environment and Planning, Henan University, Kaifeng 475004, Henan, China
  • 1河南大学环境与规划学院,开封 475004
  • 2Key Laboratory of Geospatial Technology for the Middle and Lower Yellow River Regions, Kaifeng 475004, Henan, China
  • 2黄河中下游数字地理技术教育部重点实验室,开封 475004
  • 3Henan Industrial Technology Academy of Spatio-Temporal Big Data, Henan University, Zhengzhou 450000, China
  • 3河南省时空大数据产业技术研究院,郑州 450000
  • show less
    DOI: 10.11821/dlyj020190164 Cite this Article
    Junjie LIU, Ziwu PAN, Fen QIN, Jiangyan GU, Mingyang ZHU, Fang ZHAO. Estimation of air temperature based on MODIS and analysis of mass elevation effect in the Qinling-Daba Mountains[J]. Geographical Research, 2020, 39(3): 735 Copy Citation Text show less
    References

    [1] Körner C. Worldwide Positions of Alpine Treelines and Their Causes[D]. Berlin: Springer(1998).

    [2] Körner C. Alpine Treelines: Functional Ecology of the Global High Elevation Tree Limits[D]. Berlin: Springer Science & Business Media(2012).

    [3] Zhang B P, Yao Y H. Implications of mass elevation effect for the altitudinal patterns of global ecology[D]. Journal of Geographical Sciences, 26, 871-877(2016).

    [11] Tang Z, Fang J. Temperature variation along northern and southern slope of Mt. Taibai, China[D]. Agricultural & Forest Meteorology, 139, 200-207(2006).

    [17] Quervain A D. Die Hebung der atmosphärischen lsothermenin der Schweizer Alpen und ihre[D]. Beziehungzuderen Höhengrenzen. Gerlands Beitr. Geophys., 6, 481-533(1904).

    [18] Grubb P J. Interpretation of the ‘Massenerhebung’effect on tropical mountains[D]. Nature, 229, 44(1971).

    [19] Holtmeier F K. Mountain Timberlines: Ecology, Patchiness, and Dynamics[D]. Berlin: Springer Science & Business Media(2009).

    [20] Troll C. The upper timberlines in different climatic zones[D]. Arctic and Alpine Research, 5, A3-A18(1973).

    [21] Schickhoff U. The upper timberline in the Himalayas, Hindu Kush and Karakorum: a review of geographical and ecological aspects[D]. Mountain Ecosystems: Studies in Treeline Ecology. Heidelberg: Springer Berlin Heidelberg, 275-354(2005).

    [26] Barry R G. A climatological transect on the east slope of the Front Range, Colorado[D]. Arctic and Alpine Research, 5, 89-110(1973).

    [27] Rao G V, Erdogan S. The atmospheric heat source over the Bolivian plateau for a mean[D]. January. Boundary-Layer Meteorology, 46, 13-33(1989).

    [28] Zhang H B, Zhang F, Ye M et al. Estimating daily air temperatures over the Tibetan Plateau by dynamically integrating MODIS LST data[D]. Journal of Geophysical Research: Atmospheres, 121, 425-11(2016).

    [29] Benali A, Carvalho A C, Nunes J P et al. Estimating air surface temperature in Portugal using MODIS LST data[D]. Remote Sensing of Environment, 124, 108-121(2012).

    [30] Zhang H B, Zhang F, Zhang G Q et al. Daily air temperature estimation on glacier surfaces in the Tibetan Plateau using MODIS LST data[D]. Journal of Glaciology, 64, 132-147(2018).

    [32] Yao Y H, Xu M, Zhang B P. The implication of mass elevation effect of the Tibetan Plateau for altitudinal belts[D]. Journal of Geographical Sciences, 25, 1411-1422(2015).

    [34] Wan Z. New refinements and validation of the MODIS land-surface temperature/emissivity products[D]. Remote Sensing of Environment, 112, 59-74(2008).

    [35] Wang M M, He G J, Zhang Z M et al. Comparison of spatial interpolation and regression analysis models for an estimation of monthly near surface air temperature in China[D]. Remote Sensing, 9, 1278(2017).

    [36] Propastin P, Kappas M, Erasmi S. Application of geographically weighted regression to investigate the impact of scale on prediction uncertainty by modelling relationship between vegetation and climate[D]. IJSDIR, 3, 73-94(2008).

    [37] Fotheringham A S, Brunsdon C, Charlton M. Geographically weighted regression: The analysis of spatially varying relationships[D]. New York: John Wiley & Sons(2003).

    [38] Brunsdon C, Fotheringham A S, Charlton M E. Geographically weighted regression: A method for exploring spatial nonstationarity[D]. Geographical Analysis, 28, 281-298(1996).

    [40] Barry R G. Mountain Weather and Climate[D]. London: Routledge(1992).

    [41] Jobbágy E G, Jackson R B. Global controls of forest line elevation in the northern and southern hemispheres[D]. Global Ecology and Biogeography, 9, 253-268(2000).

    [44] Yao Y H, Zhang B P. MODIS-based air temperature estimation in the southeastern Tibetan Plateau and neighboring areas[D]. Journal of Geographical Sciences, 22, 152-166(2012).

    [45] Vancutsem C, Ceccato P, Dinku T et al. Evaluation of MODIS land surface temperature data to estimate air temperature in different ecosystems over Africa[D]. Remote Sensing of Environment, 114, 449-465(2010).

    [46] Zhu W B, Lű A, Jia S F. Estimation of daily maximum and minimum air temperature using MODIS land surface temperature products[D]. Remote Sensing of Environment, 130, 62-73(2013).

    [47] Li X P, Wang L, Chen D L et al. Near‐surface air temperature lapse rates in the mainland China during 1962-2011[D]. Journal of Geophysical Research: Atmospheres, 118, 7505-7515(2013).

    [49] Fang J Y, Lechowicz M. Climatic limits for the present distribution of beech (Fagus L. ) species in the world[D]. Journal of Biogeography, 33, 1804-1819(2006).

    [50] Yeh T C. Some aspects of the thermal influences of the Qinghai-Tibetan Plateau on the atmospheric circulation[D]. Meteorology and Atmospheric Physics, 31, 205-220(1982).

    [51] Molnar P, Emanuel K A. Temperature profiles in radiative‐convective equilibrium above surfaces at different heights[D]. Journal of Geophysical Research: Atmospheres, 104, 24265-24271(1999).

    Junjie LIU, Ziwu PAN, Fen QIN, Jiangyan GU, Mingyang ZHU, Fang ZHAO. Estimation of air temperature based on MODIS and analysis of mass elevation effect in the Qinling-Daba Mountains[J]. Geographical Research, 2020, 39(3): 735
    Download Citation