Page 181 - 《高原气象》2026年第1期
P. 181

1 期                 范   典等:一次稳定少动型西南涡演变的结构特征及其与暴雨的关系                                       177
               李跃清, 2021. 西南涡涡源研究的有关新进展[J]. 高原气象, 40             王金虎, 李栋梁, 王颖, 2015. 西南涡活动特征的再分析[J]. 气象
                 (6):  1394-1406. DOI:  10. 7522/j. issn. 1000-0534. 2021.  科学, 35(2): 133-139. DOI: 10. 3969/2014jms. 0039. Wang J
                  zk005. Li Y Q, 2021. New related progress on researches of the   H, Li D L, Wang Y, 2015. Characteristics reanalysis on South‐
                  vortex source of southwest China vortex[J]. Plateau Meteorolo‐  west vortex[J]. Journal of the Meteorological Sciences, 35(2):
                  gy, 40(6): 1394-1406. DOI: 10. 7522/j. issn. 1000-0534. 2021.  133-139. DOI: 10. 3969/2014jms. 0039.
                  zk005.                                         王晓芳, 廖移山, 闵爱荣, 等, 2007. 影响“05·06·25”长江流域暴雨
               刘金卿, 刘红武, 徐靖宇, 2021. 西南涡引发的强对流天气特征[J].               的西南低涡特征[J]. 高原气象, 26 (1): 197-205. Wang X F,
                  高原气象, 40(3): 525-534. DOI: 10. 7522/j. issn. 1000-0534.  Liao Y S, Min A R, et al, 2007. Characteristics of southwest vor‐
                  2020. 00027. Liu  J  Q,  Liu  H  W,  Xu  J  Y,  2021. Analysis  on   tex of influencing “05·06·25” Yangtze River rainstorm[J]. Pla‐
                  strong convective weather triggered by southwest vortex[J]. Pla‐  teau Meteorology, 26 (1): 197-205.
                  teau  Meteorology,  40(3):  525-534. DOI:  10. 7522/j. issn.  肖贻青, 娄盼星, 李明娟, 等, 2023. 西北涡与西南涡共同作用引发
                  1000-0534. 2020. 00027.                           秦巴区域大暴雨的成因分析[J]. 高原气象, 42(1): 98-107.
               刘冲, 赵平, 2020. 1979-2016年四川盆地低涡的气候特征分析[J].
                                                                    DOI: 10. 7522/j. issn. 1000-0534. 2022. 00013. Xiao Y Q, Lou
                  气候变化研究进展, 16(2): 203-214. DOI: 10. 12006/j. issn.  P X, Li M J, et al, 2023. Analysis on a heavy rainstorm in Qinba
                  1673-1719. 2019. 051. Liu  C,  Zhao  P,  2020. Climatological
                                                                    Region  caused  by  Southwest  Vortex  and  Northwest  Vortex[J].
                  characteristics of Sichuan Basin vortex during 1979-2016[J]. Cli‐
                                                                    Plateau  Meteorology,  42(1):  98-107. DOI:  10. 7522/j. issn.
                  mate  Change  Research,  16 (2):  203-214. DOI:  10. 12006/j.
                                                                    1000-0534. 2022. 00013.
                  issn. 1673-1719. 2019. 051.
                                                                 徐晓齐, 衡志炜, 李跃清, 等, 2024. 云微物理参数化的改进及其对
               卢敬华, 1986. 西南低涡概论[M]. 北京: 气象出版社, 57–63. Lu
                                                                    川藏铁路沿线降水的模拟优势[J]. 中国科学(地球科学), 54
                  J  H,  1986. Introduction  to  the  Southwest  Vortex[M]. Beijing:
                                                                    (03): 874-891. DOI: 10. 1360/SSTe-2023-0178. Xu X, Heng
                  China Meteorological Press, 57-63.
                                                                    Z,  Li Y,  et  al,  2024. Improvement  of  cloud  microphysical  pa‐
               卢萍, 李跃清, 2021. 增强副热带高压对西南涡影响的数值试验
                                                                    rameterization  and  its  advantages  in  simulating  precipitation
                 [J]. 大气科学, 45(4): 851-862. DOI: 10. 3878/j. issn. 1006-
                                                                    along the Sichuan-Xizang Railway[J]. Science China Earth Sci‐
                  9895. 2008. 20161. Lu P, Li Y Q, 2021. Simulation of effect of
                                                                    ences, 67(3): 856-873. DOI: 10. 1360/SSTe-2023-0178.
                  subtropical  high  enhancement  on  southwest  vortex[J]. Chinese
                                                                 姚静, 李培荣, 肖贻青, 等, 2024. 陕南西南涡暴雨的热动力特征分
                  Journal  of Atmospheric  Sciences,  45(4):  851-862. DOI:  10.
                                                                    析[J]. 高原气象, 43(3): 655-666. DOI: 10. 7522/j. issn. 1000-
                  3878/j. issn. 1006-9895. 2008. 20161.
                                                                    0534. 2023. 00074. Yao J, Li P R, Xiao Y Q, et al, 2024. Ther‐
               马勋丹, 智协飞, 王静, 等, 2018. 1979-2016 年夏季西南涡活动及
                                                                    modynamic characteristics of southwest vortex rainstorm in south‐
                  其与降水的关系[J]. 大气科学学报, 41(2): 198−206. DOI:
                                                                    ern  Shaanxi[J]. Plateau  Meteorology,  43(3):  655-666. DOI:
                  10. 13878/j. cnki. dqkxxb. 20171015001. Ma  X  D,  Zhi  X  F,
                                                                    10. 7522/j. issn. 1000-0534. 2023. 00074.
                  Wang J, et al, 2018. Analysis of the southwest vortex activities
                                                                 张雅馨, 许东蓓, 李跃清, 等, 2024. 四川盆地典型“西南型”盆地涡
                  in summer and their relationship with precipitation during the peri‐
                                                                    特征研究[J]. 高原气象, 43(4): 905-918. DOI: 10. 7522/j. issn.
                  od of 1979-2016[J]. Transactions of Atmospheric Sciences, 41
                                                                    1000-0534. 2023. 00100. Zhang Y  X,  Xu  D  B,  Li Y  Q,  et  al,
                 (2): 198−206. DOI: 10. 13878/j. cnki. dqkxxb. 20171015001.
                                                                    2024. Research on the characteristics of typical “Southwest Type”
               毛程燕, 马依依, 孙杭媛, 等, 2022. 不同路径移出型西南涡对中国
                                                                    basin  vortex  in  the  Sichuan  Basin[J]. Plateau  Meteorology,  43
                  中东部降水的影响[J]. 干旱气象, 40(3): 386-395. DOI: 10.
                  11755/j. issn. 1006-7639(2022)-03-0386. Mao C Y, Ma Y Y,   (4): 905-918. DOI: 10. 7522/j. issn. 1000-0534. 2023. 00100.
                  Sun  H  Y,  et  al,  2022. Impact  of  moving-out  southwest  vortex   赵大军, 江玉华, 李莹, 2011. 一次西南低涡暴雨过程的诊断分析
                  with different paths on precipitation in central-eastern China[J].  与数值模拟[J]. 高原气象, 30(5): 1158-1169. Zhao D J, Jiang
                  Journal of Arid Meteorology, 40(3): 386-395. DOI: 10. 11755/  Y H, Li Y, 2011. Diagnostic analysis and numerical simulation
                  j. issn. 1006-7639(2022)-03-0386.                 of a torrential rainstorm process caused southwestern low vortex
               屈顶, 李跃清, 李娟, 等, 2023. 不同类型九龙涡的水汽输送与热力                [J]. Plateau Meteorology, 30(5): 1158-1169.
                  结构特征的对比分析[J]. 大气科学, 47(5): 1481-1494. DOI:     周春花, 肖递祥, 郁淑华, 2022. 诱发四川盆地极端暴雨的西南涡
                  10. 3878/j. issn. 1006-9895. 2208. 21202. Qu D, Li Y Q, Li J,   环流背景和结构特征[J]. 气象, 48(12): 1577-1589. DOI: 10.
                  et  al,  2023. Comparative  analysis  of  water  vapor  transport  and   7519/j. issn. 1000-0526. 2022. 0811101. Zhou C H, Xiao D X,
                  thermodynamic characteristics of different types of Jiulong vorti‐  Yu S H, 2022. Circulation background and structure characteris‐
                  ces found in southwest China [J]. Chinese Journal of Atmospher‐  tics of the southwest vortex inducing extreme rain-storm in Sich‐
                  ic  Sciences,  47(5):  1481-1494. DOI:  10. 3878/j. issn. 1006-  uan  Basin[J]. Meteorological  Monthly,  48(12):  1577-1589.
                  9895. 2208. 21202.                                DOI: 10. 7519/j. issn. 1000-0526. 2022. 0811101.
   176   177   178   179   180   181   182   183   184   185   186