Page 86 - 《高原气象》2025年第5期
P. 86

高     原      气     象                                 44 卷
              1204
                 Tibetan Plateau in boreal summer[J]. Atmosphere, 12(3): 379.  Yang  K,  He  J,  2019. China  meteorological  forcing  dataset (1979-
                 DOI: 10. 3390/atmos12030379.                      2018)[Z]. National Tibetan Plateau Data Center. DOI: 10. 11888/
             Suriano Z J, Leathers D J, 2017. Synoptic climatology of lake-effect   AtmosphericPhysics. tpe. 249369. file.
                 snowfall conditions in the eastern Great Lakes region[J]. Interna‐  Yao T D, Masson-Delmotte V, Gao J, et al, 2013. A review of climat‐
                                                                             18
                 tional  Journal  of  Climatology,  37(12):  4377 − 4389. DOI:   ic controls on δ O in precipitation over the Tibetan Plateau: Ob‐
                 10. 1002/joc. 5093.                               servations and simulations[J]. Reviews of Geophysics, 51(4):
             Tang Y,  Huang A  N, Wu  P  L,  et  al,  2021. Drivers  of  summer  ex‐  525-548. DOI: 10. 1002/rog. 20023.
                 treme precipitation events over East China[J].  Geophysical Re‐  You Q L, Min J Z, Zhang W, et al, 2015. Comparison of multiple da‐
                 search  Letters,  48(11):  e2021GL093670. DOI:  10. 1029/  tasets with gridded precipitation observations over the Tibetan Pla‐
                 2021GL093670.                                     teau[J]. Climate  Dynamics,  45(3):  791-806. DOI:  10. 1007/
             Umek L, Gohm A, 2016. Lake and orographic effects on a snowstorm   s00382-014-2310-6.
                 at  Lake  Constance[J]. Monthly  Weather  Review,  2016,  144  Zeng J W, Huang A N, Wu P L, et al, 2023. Typical synoptic pat‐
                (12): 4687-4707. DOI: 10. 1175/MWR-D-16-0032. 1    terns  responsible  for  summer  regional  hourly  extreme  precipita‐
             Von Luxburg U, 2007. A tutorial on spectral clustering[J]. Statistics   tion events over the middle and lower Yangtze River Basin, China
                 and Computing, 17(4): 395-416. DOI: 10. 1007/s11222-007-  [J]. Geophysical  Research  Letters,  50,  e2023GL104829. DOI:
                 9033-z.                                           10. 1029/2023GL104829.
             Wang B B, Ma Y Y, Su Z B, et al, 2020. Quantifying the evapora‐  Zhang J, Hu Q W, Li Y K, et al, 2021. Area, lake-level and volume
                 tion amounts of 75 high-elevation large dimictic lakes on the Ti‐  variations of typical lakes on the Tibetan Plateau and their response
                 betan  Plateau[J]. Science Advances,  6(26):  eaay8558. DOI:   to  climate  change,  1972-2019[J]. Geo-spatial  Information  Sci‐
                 10. 1126/sciadv. aay8558.                         ence, 24(3): 458-473. DOI: 10. 1080/10095020. 2021. 1940318.
             Wang Y, Wu G, 2018. Meteorological observation data from the inte‐  Zhang X, Duan K Q, Shi P H, et al, 2016. Effect of lake surface tem‐
                 grated  observation  and  research  station  of  multiple  spheres  in   perature on the summer precipitation over the Tibetan Plateau[J].
                 Namco (2005-2016)[Z]. National Tibetan Plateau Data Center.  Journal of Mountain Science, 13(5): 802-810. DOI: 10. 1007/
                 DOI: 10. 11888/AtmosPhys. tpe. 00000049. file.    s11629-015-3743-z.
             Wen L L, Lyu S H, Kirillin G, et al, 2016. Air-lake boundary layer   Zhu L J, Jin J M, Liu Y M, 2020. Modeling the effects of lakes in the
                 and  performance  of  a  simple  lake  parameterization  scheme  over   Tibetan Plateau on diurnal variations of regional climate and their
                 the  Tibetan  highlands[J]. Tellus A:  Dynamic  Meteorology  and   seasonality[J]. Journal  of  Hydrometeorology,  21(11):  2523-
                 Oceanography, 68(1): 31091. DOI: 10. 3402/tellusa. v68. 31091.  2536. DOI: 10. 1175/JHM-D-20-0091. 1.
             Wonsick M M, Pinker R T, 2014. The radiative environment of the Ti‐  杜娟, 文莉娟, 苏东生, 2020. 青藏高原不同深度湖泊无冰期湖气
                 betan Plateau[J]. International Journal of Climatology, 34(7):   温差及湖表辐射与能量平衡特征模拟分析[J]. 高原气象, 39
                 2153-2162. DOI: 10. 1002/joc. 3824.              (6) :  1181-1194. DOI:  10. 7522/j. issn. 1000-0534. 2019.
             Wu P, Liu Y J, Wang J, et al, 2022. Revisiting the variations of pre‐  00133. Du J, Wen L J, Su D S, 2020. Analysis of simulated tem‐
                 cipitation and water vapor budget from current reanalysis over the   perature difference between lake surface and air and energy bal‐
                 Tibetan  Plateau[J]. Advances  in  Climate  Change  Research,  14  ance of three alpine lakes with different depths on the Qinghai-Xi‐
                (1): 77-84. DOI: 10. 1016/j. accre. 2022. 12. 002.  zang Plateau during the ice-free period[J]. Plateau Meteorology,
             Wu Y, Huang A N, Lazhu, et al, 2020. Improvements of the coupled   39(6):  1181-1194. DOI:  10. 7522/j. issn. 1000-0534. 2019.
                 WRF-Lake  model  over  Lake  Nam  Co,  Central  Tibetan  Plateau  00133.
                [J]. Climate Dynamics, 55(9-10): 2703-2724. DOI: 10. 1007/  李国平, 张万诚, 2019. 高原低涡、 切变线暴雨研究新进展[J]. 暴
                 s00382-020-05402-3.                               雨 灾 害 , 38(5): 464-471. DOI: 10. 3969/j. issn. 1004-9045.
             Wu Y, Huang A N, Yang B, et al, 2019. Numerical study on the cli‐  2019. 05. 008. Li G P, Zhang W C, 2019. Recent advances in the
                 matic effect of the lake clusters over Tibetan Plateau in summer  research  of  heavy  rain  associated  with  vortices  and  shear  lines
                [J]. Climate Dynamics, 53(9-10): 5215-5236. DOI: 10. 1007/  come from the Tibetan Plateau[J]. Torrential Rain and Disasters,
                 s00382-019-04856-4.                               38(5):  464-471. DOI:  10. 3969/j. issn. 1004-9045. 2019.
             Xu X K, Huang A N, Huang D Q, et al, 2023. What are the dominant   05. 008.
                 synoptic patterns leading to the summer regional hourly extreme   李若莹, 姚秀萍, 2024. 青藏高原东南部-川西地区夏季小时极端降
                 precipitation events over central-eastern Tibetan Plateau and Sich‐  水事件特征研究[J]. 高原气象, 43(5): 1113-1124. DOI: 10.
                 uan Basin[J]. Geophysical Research Letters, 50, e2022GL10234  7522/j. issn. 1000-0534. 2024. 00005. Li R Y, Yao X P, 2024.
                 2. DOI: 10. 1029/2023GL102342.                    Characteristics of summer hourly extreme rainfall events in the re‐
             Yang K, Chen Y Y, Lazhu, et al, 2023. Cross-sectional rainfall obser‐  gion of Southeastern Xizang Plateau-Western Sichuan Basin[J].
                 vation on the central-western Tibetan Plateau in the warm season:   Plateau Meteorology, 43(5): 1113-1124. DOI: 10. 7522/j. issn.
                 System design and preliminary results[J]. Science China Earth Sci‐  1000-0534. 2024. 00005.
                 ences, 66(5): 1015-1030. DOI: 10. 1007/s11430-022-1081-4.  李双行, 王慧, 李栋梁, 等, 2024. 青藏高原中东部暖季极端降水的
   81   82   83   84   85   86   87   88   89   90   91