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1 期 张荣平等:土壤湿度非均匀性对青藏高原一次中尺度对流系统初生过程影响的数值模拟研究 15
2002a. A primary study of the relationship between TBB fields issn. 1000-1379. 2021. 04. 008. Wang Z T, Li S B, Zhang Z Y,
and water vapor distribution over Qinghai-Xizang Plateau in sum‐ 2021. Multi-scale accuracy evaluation of GPM precipitation prod‐
mer[J]. Plateau Meteorology, 21(1): 20-24. ucts over the Qinghai-Tibet Plateau[J]. Yellow River, 43(4): 8.
江吉喜, 范梅珠, 2002b. 夏季青藏高原上的对流云和中尺度对流系 DOI: 10. 3969/j. issn. 1000-1379. 2021. 04. 008.
统[J]. 大气科学, 26(2): 263-270. DOI: 10. 3878/j. issn. 1006- 王宾宾, 马耀明, 马伟强, 2012. 青藏高原那曲地区 MODIS 地表温
9895. 2002. 02. 12. Jiang J X, Fan M Z, 2002b. Convective 度估算[J]. 遥感学报, 16(6): 1289-1309. DOI: 10. 11834/jrs.
clouds and mesoscale convective systems over the Tibetan Plateau 20121268. Wang B B, Ma Y M, Ma W Q, 2012. Estimation of
in summer[J]. Chinese Journal of Atmospheric Sciences, 26(2): land surface temperature retrieved from EOS/MODIS in Naqu ar‐
263-270. DOI: 10. 3878/j. issn. 1006-9895. 2002. 02. 12. ea over Tibetan Plateau[J]. National Remote Sensing Bulletin, 16
康潆文, 巩远发, 2021. 基于高分辨率 OLR 资料的青藏高原和南亚 (6): 1289-1309. DOI: 10. 11834/jrs. 20121268.
地区夏季对流日变化特征[J]. 高原气象, 40(3): 472-485. 王芳, 梁静, 孙洪伟, 等, 2022. 三江平原土壤湿度记忆性及其与水
DOI: 10. 7522/j. issn. 1000-0534. 2020. 00105. Kang Y W, 热气候条件的关系[J]. 气象与环境学报, 38(4): 102-109.
Gong Y F, 2021. Diurnal variation characteristics of summer con‐ DOI: 10. 3969/j. issn. 1673-503X. 2022. 04. 012. Wang F, Li‐
vection over the Qinghai-Xizang Plateau and South Asia area ang J, Sun H W, et al, 2022. A memory of soil moisture and its
based on the high-resolution OLR data[J]. Plateau Meteorology,
relation with hydrothermal climatic conditions in the Sanjiang
40(3): 472-485. DOI: 10. 7522/j. issn. 1000-0534. 2020. 00105. Plain[J]. Journal of Meteorology and Environment, 38(4): 102-
李博, 张淼, 唐世浩, 等, 2018. 基于组网观测的那曲土壤湿度不同
109. DOI: 10. 3969/j. issn. 1673-503X. 2022. 04. 012.
时间尺度的变化特征[J]. 气象学报, 76(6): 1040-1052. DOI:
魏永恒, 范广洲, 2020. 青藏高原土壤湿度对一次对流降水影响的
10. 11676/qxxb2018. 057. Li B, Zhang M, Tang S H, et al,
昼夜对比分析[J]. 成都信息工程大学学报, 35(1): 96-103.
2018. Variations of soil moisture over Nagqu at different time
DOI: 10. 16836/j. cnki. jcuit. 2020. 01. 013. Wei Y H, Fan G Z,
scales based on network observations[J]. Acta Meteorologica Si‐
2020. Day and night comparison analysis of the effect of soil
nica, 76(6): 1040-1052. DOI: 10. 11676/qxxb2018. 057.
moisture on a case of convective precipitation over Qinghai-Tibet‐
刘维成, 张强, 刘新伟, 2021. 陆-气相互作用对大气对流活动影响
an plateau[J]. Journal of Chengdu University of Information
研究进展和展望[J]. 高原气象, 40(6): 1278-1293. DOI: 10.
Technology, 35(1): 96-103. DOI: 10. 16836/j. cnki. jcuit.
7522/j. issn. 1000-0534. 2021. zk0019. Liu W C, Zhang Q, Liu
2020. 01. 013.
X W, 2021. The impact of land-atmosphere interaction on the ini‐
徐祥德, 陈联寿, 2006. 青藏高原大气科学试验研究进展[J]. 应用
tiation and development of convective activities: a review[J].
气 象 学 报 , 17(6): 756-772. DOI: 10. 11898/1001-7313.
Plateau Meteorology, 40(6): 1278-1293. DOI: 10. 7522/j. issn.
20060613. Xu X D, Chen L S, 2006. Advances of the study on
1000-0534. 2021. zk0019.
Tibetan Plateau experiment of atmospheric sciences[J]. Journal
栾澜, 孟宪红, 吕世华, 等, 2018. 青藏高原土壤湿度触发午后对流
of Applied Meteorological Science, 17(6): 756-772. DOI: 10.
降水模拟试验研究[J]. 高原气象, 37(4): 873-885. DOI: 10.
11898/1001-7313. 20060613.
7522/j. issn. 1000-0534. 2018. 00008. Luan L, Meng X H, Lv S
殷青青, 任璐, 田文寿, 等, 2022. 华北地区一次对流激发重力波的
H, et al, 2018. Simulation on afternoon convective precipitation
卫星观测和数值模拟研究[J]. 干旱气象, 40(3): 444. DOI:
triggered by soil moisture over the Qinghai-Tibetan Plateau[J].
10. 11755/j. issn. 1006-7639. Yin Q Q, Ren L, Tian W S, et al,
Plateau Meteorology, 37(4): 873-885. DOI: 10. 7522/j. issn.
2022. Satellite observation and numerical simulation of gravity
1000-0534. 2018. 00008.
wave excited by a convection over North China[J]. Arid Meteo‐
马耀明, 胡泽勇, 王宾宾, 等, 2021. 青藏高原多圈层地气相互作用
rology, 40(3): 444. DOI: 10. 11755/j. issn. 1006-7639.
过程研究进展和回顾[J]. 高原气象, 40(6): 1241-1262. DOI:
10. 7522/j. issn. 1000-0534. 2021. zk006. Ma Y M, Hu Z Y, 张晟宁, 2022. 青藏高原春末夏初土壤湿度与降水的干湿耦合性
Wang B B, et al, 2021. The review of the observation experi‐ 质及特征研究[D]. 兰州: 兰州大学 . DOI: 10. 27204/d. cnki.
ments on land-atmosphere interaction progress on the Qinghai-Xi‐ glzhu. 2022. 001426. Zhang S N, 2022. Characteristics of dry-
zang(Tibetan)Plateau[J]. Plateau Meteorology, 40(6): 1241- wet coupling between soil moisture and precipitation over the Ti‐
1262. DOI: 10. 7522/j. issn. 1000-0534. 2021. zk006. betan Plateau during late spring[D]. Lanzhou: Lanzhou Univer‐
马柱国, 符淙斌, 谢力, 等, 2001. 土壤湿度和气候变化关系研究中 sity. DOI: 10. 27204/d. cnki. glzhu. 2022. 001426.
的某些问题[J]. 地球科学进展, 16(4): 563. DOI: 10. 3321/j. 赵平, 李跃清, 郭学良, 等, 2018. 青藏高原地气耦合系统及其天气气
issn: 1001-8166. 2001. 04. 019. Ma G G, Fu Z B, Xie L, et al, 候效应: 第三次青藏高原大气科学试验[J]. 气象学报, 76(6):
2001. Some problems in the study on the relationship between 833-860. DOI: 10. 11676/qxxb2018. 060. Zhao P, Li Y Q, Guo
soil moisture and climatic change[J]. Advances in Earth Science, X L, et al, 2018. The Tibetan Plateau surface-atmosphere coupling
16(4): 563. DOI: 10. 3321/j. issn: 1001-8166. 2001. 04. 019. system and its weather and climate effects: The Third Tibetan Pla‐
汪梓彤, 李石宝, 张志友, 2021. GPM 近实时降水产品在青藏高原 teau Atmospheric Scientific Experiment[J]. Acta Meteorologica
的多尺度精度评价[J]. 人民黄河, 43(4): 8. DOI: 10. 3969/j. Sinica, 76(6): 833-860. DOI: 10. 11676/qxxb2018. 060.

