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陈斌(Bin Chen)


  陈斌

    研究员/博士生导师

chenbin@cma.gov.cn

010-68409649


研究兴趣

高原气象;大气水分循环;极端天气气候事件等


教育背景

博士学位(2009年)南京信息工程大学和中国气象科学研究院联合培养 气象学专业

硕士学位(2004年)南京信息工程大学 气象学专业

学士学位(2021年)山东烟台师范学院 地理科学专业


研究经历

201712-至今, 中国气象科学研究院灾害天气国家重点实验室,研究员

201208-201711,中国气象科学研究院灾害天气国家重点实验室,副研究员

200912-201206,中国气象科学研究院灾害天气国家重点实验室,博士后

200709-201112,香港中文大学太空与地球信息科学研究所,访问研究/Research Associate


承担课题

国家自然科学基金面上项目,川藏铁路沿线夏季极端强降水的大气水分循环异常“前兆”信号和关键物理过程识别研究,202501-20281248万,主持

国家自然科学基金委面上项目,南亚季风区近地层向平流层大气输送"烟囱"的三维结构及其形成和维持机制,201501-20181280万,主持

国家自然科学基金委重大研究计划培育项目,青藏高原水汽“源汇”结构的多尺度变化及其对区域降水影响研究,201701-20191268万,主持

国家自然科学基金青年项目:青藏高原及周边区域夏季对流层-平流层水汽交换的拉格朗日数值模拟研究,201201-20141225万,主持

国家重点研发计划课题,川藏铁路沿线气象灾害成灾机理、风险评估及预警 关键技术研究, 202111-2024111660万,专题负责人

科技部重点研发计划项目,东亚季风气候年际预测理论与方法研究,201812-2021111921万,骨干参加(专题负责人)

科技部第二次青藏高原综合科学考察研究,西风-季风协同作用对亚洲水塔变化的影响,201909-2024094424万,骨干参加

西藏自治区科技计划高原气象领域科技重大专项,青藏高原气候变化特征、机理、影响及应对研究与技术集成示范,202501-20271240万,骨干参加

国家自然科学基金委重点项目,青藏高原对梅雨区水份循环及降水变异的影响,201201-201612310万,骨干参加

国家自然科学基金委重大研究计划,青藏高原地—气耦合系统变化及其全球气候效应学术交流活动及项目工作计划实施,201311-202212(三项),400万,骨干参加

中国气象科学研究院人才支持项目,高层次人才培养计划项目,201601-20181230万,主持

公益性科研院所基本科研业务费,2013年青藏高原第三次科学试验水分循环观测与研究,201304-201312180万,主持


学术兼职

中国计算物理学会 理事

中国气象学会第29届动力气象学委员会 委员


获奖情况

四川省科技进步一等奖(7),青藏高原东南缘上游关键区灾害天气监测分析预警理论与技术研究,(2016年)

西藏自治区科学技术奖一等奖(7),青藏高原多圈层地气相互作用综合观测系统的建立与应用发展研究(2021年)

中国气象科学研究院高层次 “领军人才”培养计划(2015年)


发表论文(近5, 2019-

(本人名称加粗,通讯作者加*号)

Zhao, R., Chen, B*., Zhang, W. et al. (2024): Revisiting the dry-to-wet shift of summer precipitation over the Three-River Headwaters region, hinterland of the Tibetan Plateau: a perspective of moisture sources changes. Clim Dyn. DOI: https://doi.org/10.1007/s00382-024-07362-4.

Ruiyu, Z., Bin Chen*, Wei, Z., Shuai, Y., XiangDe, X., (2024): Formation mechanisms of persistent extreme precipitation events over the eastern periphery of the Tibetan Plateau: Synoptic conditions, moisture transport and the effect of steep terrain. Atmos. Res., 107341. https://doi.org/10.1016/j.atmosres.2024.107341.

CHEN Bin *, Jianzhong MA, Wei ZHANG, Jianchun BIAN, Tianliang ZHAO, Xiangde XU. (2024): Recent Enhanced Deep Troposphere-to-Stratosphere Air Mass Transport Accompanying the Weakening Asian Monsoon. Journal of Meteorological Research. DOI: 10.1007/s13351-024-3155-5.

Tian, Y., Zhao, Y., Li, J., Chen, B., Deng, L., & Wen, D. (2024): East Asia atmospheric river forecast with a deep learning method: GAN-UNet. Journal of Geophysical Research: Atmospheres, 129, e2023JD039311. DOI: https://doi.org/10.1029/2023JD039311.

Zhao, R., Chen, Bin *Zhang, W.Yang, S., & Xu, X. (2023). Moisture source anomalies connected to flood-drought changes over the three-rivers headwater region of Tibetan PlateauInternational Journal of Climatology43(12), 53035316https://doi.org/10.1002/joc.8147.

Chen, L.; Chen, Bin *; Zhao, R*.; Xu, X. Characterizing the Synoptic-Scale Precursors of Extreme Precipitation Events in the Southeastern Edge of the Tibetan Plateau: Anomalous Evolution of Atmospheric Dynamic-Thermal Structure. (2023). Water15, 1407. https://doi.org/10.3390/w15071407

李延, 陈斌*, 徐祥德. 2023. 青藏高原冬春积雪异常对中国东部夏季降水频次和强度变化的影响[J]. 大气科学, 47(4): 1231−1246.  doi:  10.3878/j.issn.1006-9895.2202.22018.

李延,赵瑞瑜,陈斌*,青藏高原冬春多源积雪资料年际变化尺度上的适用性分析[J]. 高原气象,43(2): 277 – 292. DOI10. 7522/j. issn. 1000- 0534. 2023. 00057.

陈龙光,陈斌*, 赵瑞瑜, 徐祥德. 基于天气分型的四川盆地西侧极端强降水事件环流异常配置与演变特征[J]. 大气科学. DOI: 10.3878/j.issn.1006-9895.2303.23017

付文卓,陈斌*,徐祥德,青藏高原春季区域性极端大风频次下降成因[J. 高原气象, 433):1-15..

Hsu, P.-C., Xie, J., Lee, J.-Y., Zhu, Z., Li, Y., Chen, Bin., Zhang, S., (2023). Multiscale interactions driving the devastating floods in Henan Province, China during July 2021. Weather and Climate Extremes 39, 100541.

Bai L, Ren H-L, Wei Y, Wang Y, Chen B. Influence of Madden–Julian Oscillation on Precipitation over the Tibetan Plateau in Boreal Summer. Atmosphere. 2023; 14(1):70. https://doi.org/10.3390/atmos14010070.

Wang L, Ren H-L, Xu X, Gao L, Chen B, Li J, Che H, Wang Y, Zhang X. Improving Predictions of Tibetan Plateau Summer Precipitation Using a Sea Surface Temperature Analog-Based Correction Method. Remote Sensing. 2023; 15(24):5669. https://doi.org/10.3390/rs15245669.

Yu, Y., Gao, T., Xie, L., Zhang, R.-H., Zhang, W., Xu, H., Cao, F., Chen, B., 2022. Tropical cyclone over the western Pacific triggers the record-breaking ‘21/7’ extreme rainfall in Henan, central-eastern China. Environ Res Lett 17, 124003.

Wei, Y., Liu, F., Ren, H.-L., Chen, G., Feng, C., Chen, B., 2022. Western Pacific Premoistening for Eastward-Propagating BSISO and Its ENSO Modulation. J Climate 35, 4979-4996.

Sun, C., Xu, X., Zhao, T., Yao, T., Zhang, D., Wang, N., Ma, Y., Ma, W., Chen, B., Zhang, S., Cai, W., 2022. Distinct impacts of vapor transport from the tropical oceans on the regional glacier retreat over the Qinghai-Tibet Plateau. Sci. Total Environ. 823, 153545.

Xu, X., Sun, C., Chen, D., Zhao, T., Xu, J., Zhang, S., Li, J., Chen, B., Zhao, Y., Xu, H., Dong, L., Sun, X., and Zhu, Y.: A vertical transport window of water vapor in the troposphere over the Tibetan Plateau with implications for global climate change, Atmos. Chem. Phys., 22, 1149–1157, https://doi.org/10.5194/acp-22-1149-2022, 2022.

R. Zhao B., Chen*, and X. Xu (2021). Intensified Moisture Sources of Heavy Precipitation Events Contributed to Interannual Trend in Precipitation over Three-Rivers Headwater Region in China. Front. Earth Sci. | doi: 10.3389/feart.2021.674037.

Yang, S*., S. Li, B. Chen*, Z. Xie, and J. Peng (2021), Responses of Heat Stress to Temperature and Humidity Changes Due to Anthropogenic Heating and Urban Expansion in South and North China, Frontiers in Earth Science, 9(322). https://doi.org/10.3389/feart.2021.673943.

B. Chen*,, W. Zhang, S. Yang, and X. de Xu (2020), Roles of oceanic moisture exports in modulating summer rainfall over the middle-lower Yangtze River Basin: Inter-annual variability and decadal transition, Int J Climatol, 40(8), 3757-3770. https://doi.org/10.1002/joc.6426

Yang, S., W. Zhang, B. Chen*, X. Xu, and R. Zhao (2020), Remote moisture sources for 6-hour summer precipitation over the Southeastern Tibetan Plateau and its effects on precipitation intensity, Atmos. Res., 236, 104803. First Online:  10 December 2019

Yang, S., Z. Wei, B. Chen, and X. Xu (2020), Influences of atmospheric ventilation on the composition of the upper troposphere and lower stratosphere during the two primary modes of the South Asia high, Meteorol. Atmos. Phys., 132(4), 559-570.

Chen B, Zhang W*, Yang S, et al. Identifying and contrasting the sources of the water vapor reaching the subregions of the Tibetan Plateau during the wet season[J]. Climate Dynamics, 2019, 53(11): 6891-6907.

Zhao, Y., X. Xu, Z. Ruan, B. Chen, and F. Wang (2019), Precursory strong-signal characteristics of the convective clouds of the Central Tibetan Plateau detected by radar echoes with respect to the evolutionary processes of an eastward-moving heavy rainstorm belt in the Yangtze River Basin, Meteorol. Atmos. Phys., 131(4), 697-712.

Wang, Y., Xu, X., Zhou, M., Lenschow, D. H., Guo, X., Zhao, Y., and Chen, B.: The effect of low density over the “roof of the world” Tibetan Plateau on the triggering of convection, Atmos. Chem. Phys. Discuss., https://doi.org/10.5194/acp-2019-273, 2019.

Yang, S., X. Tang, S. Zhong, B. Chen, Y. Zhou, S. Gao, and C. Wang (2019), Convective Bursts Episode of the Rapidly Intensified Typhoon Mujigae (2015), Adv. Atmos. Sci., 36(5), 541-556.


  #以上信息由本人提供,更新时间:2024/10/30