Abstract
Spatial patterns of annual and seasonal precipitation over the source region of the Yellow River and the corresponding long-term trends for the period 1960–2013 are investigated using the meteorological station data. The spatial precipitation variability analysis shows an increasing gradient of precipitation from northeast to southwest in the study area. Annual, spring, summer, and winter precipitation present increasing trend, but autumn precipitation shows a decreasing trend in the last 50 years. It is also noted that the distribution of the intra-annual precipitation is very uneven, precipitation in rainy season (May–October) accounts for about 90 % of the total annual rain. Meanwhile, this research analyzes the spatial precipitation characteristic of the rainy season in 2013 (mainly from June to September). Based on the observed precipitation data and the meteorological station data, the rainy season precipitation that varies according to different topographic conditions is analyzed, and the regression model between recorded precipitation and geographical factors is built up too. The spatial distribution graph of the rainy season precipitation is generated on GIS platform by regression model and graphical features. This distribution shows a general northeast–southwest gradient of increasing rainy season precipitation in the study area and has detailed spatial precipitation characteristic along with altitude.








Similar content being viewed by others
Explore related subjects
Discover the latest articles and news from researchers in related subjects, suggested using machine learning.References
Alcott TI, Steenburgh WJ (2013) Orographic influences on a Great Salt Lake-effect snowstorm. Mon Weather Rev 141(7):2432–2450
Biermann T, Babel W, Ma WQ, Chen XL, Thiem E, Ma YM, Foken T (2014) Turbulent flux observations and modelling over a shallow lake and a wet grassland in the Nam Co basin, Tibetan Plateau. Theor Appl Climatol 116(1–2):301–316
Bing LF, Shao QQ, Liu JY, Zhao ZP (2011) Runoff characteristic in flood and dry seasons in source regions of Changjiang River and Huanghe River based on wavelet analysis. Acta Geogr Sin 31(2):232–238 (in Chinese with English abstract)
Burnett AW, Kirby ME, Mullins HT, Patterson WP (2003) Increasing great lake-effect snowfall during the twentieth century: a regional response to global warming? J Clim 16(21):3535–3542
Cui XF, Graf HF (2009) Recent land cover changes on the Tibetan Plateau: a review. Clim Change 94(1–2):47–61
Cui XF, Graf HF, Langmann B, Chen W, Huang RH (2007) Hydrological impacts of deforestation on the southeast Tibetan Plateau. Earth Interact 11(2007–15):1–18
Curic M, Janc D (2011) Comparison of modeled and observed accumulated convective precipitation in mountainous and flat land areas. J Hydrometeorol 12(2):245–261
D’Almeida C, Vorosmarty CJ, Hurtt GC, Marengo JA, Dingman SL, Keim BD (2007) The effects of deforestation on the hydrological cycle in Amazonia: a review on scale and resolution. Int J Climatol 27(5):633–647
Duan AM, Wu GX (2005) Role of the Tibetan Plateau thermal forcing in the summer climate patterns over subtropical Asia. Clim Dyn 24:793–807
Feng L, Zhou TJ (2012) Water vapor transport for summer precipitation over the Tibetan Plateau: multidata set analysis. J Geophys Res Atmos 117(D20114):1–16
Fu BP (1992) The effect of topography and elevation on precipitation. Acta Geogr Sin 47(4):302–314 (in Chinese with English abstract)
Gerken T, Biermann T, Babel W, Herzog M, Ma YM, Foken T, Graf HF (2014) A modelling investigation into lake-breeze development and convection triggering in the Nam Co Lake basin, Tibetan Plateau. Theor Appl Climatol 117(1–2):149–167
Hu Y, Maskey S, Uhlenbrook S, Zhao H (2011) Streamflow trends and climate linkages in the source region of the Yellow River, China. Hydrol Process 25:3399–3411
Huang RH, Zhou DG (2012) The impact of climate change on the runoff of the Yellow River and ecosystem and frozen soil in its source area. Chin J Nat 34(1):1–9 (in Chinese with English abstract)
Huntington TG (2006) Evidence for intensification of the global water cycle: review and synthesis. J Hydrol 319(1):83–95
Insel N, Poulsen CJ, Ehlers TA (2010) Influence of the Andes Mountains on South American moisture transport, convection, and precipitation. Clim Dyn 35(7–8):1477–1492
Jarosch AH, Anslow FS, Clarke GKC (2012) High-resolution precipitation and temperature downscaling for glacier models. Clim Dyn 38(1–2):391–409
Jin HJ, He RX, Cheng GD, Wu QB, Wang SL, Lue LZ, Chang XL (2009) Changes in frozen ground in the source area of the Yellow River on the Qinghai–Tibet Plateau, China, and their eco-environmental impacts. Environ Res Lett 4(2009–045206):1–11
Johnson GL, Hanson CL (1995) Topographic and atmospheric influences on precipitation variability over a moutainous watershed. J Appl Meteorol 34:68–87
Kanae S, Oki T, Musiake K (2001) Impact of deforestation on regional precipitation over the Indochina Peninsula. J Hydrometeorol 2(1):51–70
Kirshbaum DJ (2011) Cloud-resolving simulations of deep convection over a heated mountain. J Atmos Sci 68(2):361–378
Konnerup D, Sorrell BK, Brix H (2011) Do tropical wetland plants possess convective gas flow mechanisms? New Phytol 190(2):379–386
Konrad CE (1996) Relationships between precipitation event types and topography in the southern Blue Ridge Mountains of the southeastern USA. Int J Climatol 16:49–62
Krajewski WF, Ciach GJ, Habib E (2003) An analysis of small-scale rainfall variability in different climatic regimes. Hydrol Sci J 48(2):151–162
Kurita N, Yamada H (2008) The role of local moisture recycling evaluated using stable isotope data from over the middle of the Tibetan Plateau during the monsoon season. J Hydrometeorol 9(4):760–775
Kurosaki Y, Kimura F (2002) Relationship between topography and daytime cloud activity around Tibetan Plateau. J Meteorol Soc Jpn 80(6):1339–1355
Kuwagata T, Numaguti A, Endo N (2001) Diurnal variation of water vapor over the central Tibetan Plateau during summer. J Meteorol Soc Jpn 79(1B):401–418
Laird NF, Desrochers J, Payer M (2009) Climatology of lake-effect precipitation events over lake champlain. J Appl Meteorol Climatol 48(2):232–250
Lan YC, Shen YP, Li ZY, Liu JP, Ma JH (2006) Influences of global-warming on water resources system in the riverhead area of the Yellow River. J Arid Land Res Environ 20(6):57–62 (in Chinese with English abstract)
Li SC, Xu L, Guo YX, Qian WH, Zhang GQ, Li C (2007) Change of annual precipitation over Qinghai–Xizang Plateau and subregions in recent 34 years. J Desert Res 27(2):307–314 (in Chinese with English abstract)
Li SC, Li DL, Zhao P, Zhang GQ (2009) The climatic characteristics of vapor transportation in rainy season of the origin area of three rivers in Qinhai-Xizang Plateau. Acta Meteorol Sin 67(4):591–598 (in Chinese with English abstract)
Li L, Chen XG, Wang ZY, Xu WX, Tang HY (2010) Climate change and its regional differences over the Tibetan Plateau. Adv Clim Change Res 6(3):181–186
Li L, Shen HY, Dai S, Xiao JS, Shi XH (2011) Response to climate change and prediction of runoff in the source region of Yellow River. Acta Geogr Sin 66(9):1261–1269 (in Chinese with English abstract)
Lian LS, Shu J, Li CY (2009) The impacts of grassland degradation on regional climate over the origin area of three rivers in Qinghai-Tibet Plateau, China. Acta Meteorol Sin 67(4):580–590
Lin ZY, Wu XD (1981) Climatic regionalization of the Qinghai–Xizang Plateau. Acta Geogr Sin 36(1):22–32
Liu J, Sun Z, Liang H, Xu X, Wu P (2005) Precipitable water vapor on the Tibetan Plateau estimated by GPS, water vapor radiometer, radiosonde, and numerical weather prediction analysis and its impact on the radiation budget. J Geophys Res Atmos 110(D17):1–11
Lu CX, Wang L, Xie GD, Leng YF (2007) Altitude effect of precipitation and spatial distribution of Qinghai–Tibetan Plateau. J Mt Sci 25(6):655–663 (in Chinese with English abstract)
Medvigy D, Walko RL, Avissar R (2011) Effects of deforestation on spatiotemporal distributions of precipitation in South America. J Clim 24(8):2147–2163
Nishiwaki N, Misumi R, Shimizu S, Maesaka T, Iwanami K, Sakurai N, Maki M, Suzuki S, Kato A, Yamaji A (2013) Behavior and structure of convective clouds developing around a mountainous area observed by stereo photogrammetry and Ka-band and X-band radars: case study of Northern Kanto, Japan. J Meteorol Soc Jpn 91(5):609–626
Peng W, Gao YH (2011) A simulation of the energy and water cycles in seasonal freezing–thawing process on the Tibetan Plateau. J Glaciol Geocryol 33(2):364–373
Qian C, Han JE, Zhu DG (2012) An analysis of geomorphologic characteristics of the Yellow River Source Region based on ASTER-GDEM. Geol China 39(5):1247–1260 (in Chinese with English abstract)
Qie X, Wu X, Yuan T, Bian J, Lu D (2014) Comprehensive pattern of deep convective systems over the Tibetan Plateau–South Asian Monsoon Region based on TRMM data. J Clim 27(17):6612–6626
Ray DK (2013) Dry season precipitation over the Mesoamerican Biological Corridor is more sensitive to deforestation than to greenhouse gas driven climate change. Clim Change 119(3–4):775–783
Ren W, Yao T, Yang X, Joswiak DR (2013) Implications of variations in delta O-18 and delta D in precipitation at Madoi in the eastern Tibetan Plateau. Q Int 313:56–61
Seth A, Giorgi F, Dickinson RE (1994) Simulating fluxes from heterogeneous land surfaces—explicit subgrid method employing the biosphere—atmosphere transfer scheme (BATS). J Geophys Res Atmos 99(D9):18651–18667
Shen YP, Liang H (2004) High precipitation in glacial region of high mountains in high Asia: possible cause. J Glaciol Geocryol 26(6):806–809 (in Chinese with English abstract)
Song J, Willmott CJ, Hanson B (1997) Influence of heterogeneous land surfaces on surface energy and mass fluxes. Theor Appl Climatol 58(3–4):175–188
Taniguchi K, Koike T (2008) Seasonal variation of cloud activity and atmospheric profiles over the eastern part of the Tibetan Plateau. J Geophys Res Atmos 113(D10104):1–18
Taylor CM (2010) Feedbacks on convection from an African wetland. Geophys Res Lett 37(L05406):1–6
Tian LD, Yao TD, Numaguti A, Sun WZ (2001) Stable isotope variations in monsoon precipitation on the Tibetan Plateau. J Meteorol Soc Jpn 79(5):959–966
Wang KL, Cheng GD, Ding YJ, Shen YP, Jiang H (2006) Characteristics of water vapor transport and atmospheric circulation for precipitation over the source regions of the Yellow and Yangtze Rivers. J Glaciol Geocryol 28(1):8–14 (in Chinese in Chinese with English abstract)
Wang GX, Li N, Hu HC (2009a) Hydrologic effect of ecosystem responses to climatic change in the source regions of Yangtze River and Yellow River. Adv Clim Change Res 5(4):202–208 (in Chinese with English abstract)
Wang NL, He JQ, Jiang X, Song GJ, Pu JC, Wu XB, Chen L (2009b) Study on the zone of maximum precipitation in the north slopes of the Central Qilian Mountains. J Glaciol Geocryol 31(3):395–403 (in Chinese with English abstract)
Wu GX, Liu YM, He B, Bao Q, Duan AM, Jin FF (2012) Thermal controls on the Asian summermonsoon. Sci Rep 2:2045–2322
Xie CW, Ding YD, Liu SY, Wang GX (2003) Comparison analysis of runoff change in the source regions of the Yangtze and Yellow Rivers. J Glaciol Geocryol 25(4):414–422 (in Chinese with English abstract)
Xu X, Zhao T, Lu C, Guo Y, Chen B, Liu R, Li Y, Shi X (2014) An important mechanism sustaining the atmospheric “water tower” over the Tibetan Plateau. Atmos Chem Phys 14(20):11287–11295
Yanai MH, Li CF, Song ZS (1992) Seasonal heating of the Tibetan plateau and its effects on the evolution of the Asian summer monsoon. J. Meteorol 70:319–351
Yang K, Koike T, Fujii H, Tamura T, Xu XD, Bian LG, Zhou MY (2004) The daytime evolution of the atmospheric boundary layer and convection over the Tibetan Plateau: observations and simulations. J Meteorol Soc Jpn 82(6):1777–1792
Yang MX, Yao TD, Wang HJ, Gou XH, Tian LD (2006) Estimating of criterion for determining water vapor sources of summer precipitation on northern Tibetan Plateau. Hydrol Process 20:505–513
Yang K, Wu H, Qin J, Lin C, Tang W, Chen Y (2014) Recent climate changes over the Tibetan Plateau and their impacts on energy and water cycle: a review. Glob Planet Change 112:79–91
Zeng YN, Feng ZD, Cao GC, Wang WG (2003) Grassland desertification monitoring in the upper reach of the Yellow River, northeast Qinghai–Xizang Plateau by remote sensing and GIS. Mt Res Dev 23(4):353–361
Zhang J, Li DL, Wang W (2008) Influence of terrain on precipitation in Qinghai–Tibet Plateau during summer monsoon. Sci Geogr Sin 28(2):235–240 (in Chinese with English abstract)
Zhao L, Jin JM, Wang SY, Ek MB (2012) Integration of remote-sensing data with WRF to improve lake-effect precipitation simulations over the Great Lakes region. J Geophys Res Atmos 117(D09102):1–12
Zheng HX, Zhang L, Liu CM, Shao QX, Fukushima Y (2007) Changes in stream flow regime in headwater catchments of the Yellow River basin since the 1950s. Hydrol Process 21:886–893
Zhou DG, Huang RH (2012) Response of water budget to recent climatic changes in the source region of the Yellow River. Chin Sci Bull 57:2155–2162
Zhou CY, Li YQ, Li W, Chen LX (2005) Climatological characteristics of water vapor transport over eastern part of Qinghai–Xizang Plateau and its surroundings. Plateau Meteorol 24(6):880–888 (in Chinese with English abstract)
Zhou XJ, Zhao P, Chen JM, Chen LX, Li WL (2009) Impacts of thermodynamic processes over the Tibetan Plateau on the northern hemispheric climate. Sci China Ser D Earth Sci 52:1679–1693
Zhou SW, Wu P, Wang CH, Han JC (2012) Spatial distribution of atmospheric water vapor and its relationship with precipitation in summer over the Tibetan Plateau. J Geogr Sci 22(5):795–809
Zhu XD, Li L, Qin NS, Zhou LS, Wang QC, Wang ZY (2004) Partition and spatial distribution of precipitation in Qinghai–Tibetan Plateau. J Qinghai Meteorol 3:27–32 (in Chinese with English abstract)
Acknowledgments
This research was supported jointly by the National Natural Science Foundation of China (41571066, 41075007), the ‘Strategic Priority Research Program (B)’of CAS (XDB03030204), and the Innovation Research Group of NSFC (41421061). The authors appreciate the reviewers and editors for the positive remarks and insightful comments as well as suggestions.
Author information
Authors and Affiliations
Corresponding author
Rights and permissions
About this article
Cite this article
Li, Q., Yang, M., Wan, G. et al. Spatial and temporal precipitation variability in the source region of the Yellow River. Environ Earth Sci 75, 594 (2016). https://doi.org/10.1007/s12665-016-5583-8
Received:
Accepted:
Published:
DOI: https://doi.org/10.1007/s12665-016-5583-8


