基本信息
王国庆,男,1971.4出生,山东成武人,博士,南京水利科学研究院教授级高级工程师(二级),水利部应对气候变化研究中心副总工。是科技部重点领域创新团队“水利应对气候变化研究创新团队”负责人,“十四五”国家重点研发计划项目首席科学家,政府间气候变化专委会(IPCC)评价报告的国际评阅专家和中国气候变化国家评价报告的主笔专家。主要从事流域水文模型、关键带水文生态过程、气候变化影响、水资源管理等方面的基础科学研究。出版或参编学术专(译)著7部,发表论文300余篇,其中SCI源刊论文100余篇;获国家授权发明专利/软件著作权20余项;
获国家科技进步二等奖1项,省部级以上科技奖励7项。
人才计划入选
科技部重点领域创新团队“水利应对气候变化研究创新团队”负责人(2015年)
国家高层次人才特殊支持计划科技创新领军人才(2018)
享受国务院政府特殊津贴专家(2018年)
国家百千万人才工程(2017)
国家级有突出贡献的中青年专家(2017)
全国优秀科技工作者(2016)
江苏省333人才工程中青年领军人才(第二层次,2016,2022)
水利部水利领军人才(2021)
国际组织任职
2019.7- ,国际水文科学协会(IAHS)地表水专委会(ICSW)副主席
2017年7月至今,世界气象组织(WMO)全球水文情势与展望系统(Global-HydroSOS)第二工作组(WP2a)组长
2011年7月至今,国际水文协会中国国家委员会,副主席,地表水专委会主席
联系方式
电话:+86-25-85828531
Email: gqwang@nhri.cn
地址:南京市广州路223号,南京水利科学研究院
邮编: 210029
专业教育及技术培训
2007.05~2009.04 南京水利科学研究院,博士后
2003.03~2006.12 河海大学水资源环境学院,水文水资源专业,工学博士,导师:张建云
1998.09~2001.04 合肥工业大学,水力学与河流动力学专业,工学硕士,导师:孙肇初
1989.09~1993.07 成都科技大学,陆地水文专业,工学学士
工作经历
1993.07~2005.05 黄河水利科学研究院,助理工程师,工程师,高级工程师
2005.05~2007.04 黄河水利委员会防汛办公室,高级工程师
2009.05~ 南京水利科学研究院/水利部应对气候变化研究中心,高级工程师,教授级高级工程师
2004.01~2004.12 澳大利亚南澳大学(UniSA, Adelaide, Australia),学术访问
2002.03~2002.06 荷兰代尔夫特技术大学(TU Delft, Delft, Netherlands),国际合作
2009.03-2009.04 瑞典水文气象研究所(SMHI, Sweden),气候变化国际高级培训班
主要业绩成果
2010年以来,作为项目负责人或技术负责人,承担国家和省部级科研项目及横向生产项目30余项,其中,承担的主要国家级及国际合作项目如下:
2021.12-2025.11 “十四五”国家重点研发计划项目“黄河水源涵养区环境变化的径流效应及水资源预测”(项目编号:2021YFC3201100),1888万元,项目负责人
2019.1-2023.12 自然科学基金重点项目“东部低山丘陵区关键带水分物质运移过程、转化机理及数值模拟”,(项目编号:41830863),305万元,项目负责人
2019.1-2022.12 自然科学基金面上项目“城市河流洪水风险对环境变化的响应机理及归因定量识别”,(项目编号:51879162),60万元,项目负责人
2018.1-2020.12 科技部“万人计划”科技创新领军人才项目“水利应对气候变化影响研究”, 90万,项目负责人
2019.1-2021.12江苏省“333 工程”第二层次科研资助项目“环境变化对秦淮河洪水风险驱动机理及影响评价”(项目编号:BRA2018082),25万,项目负责人
2017.01-2021.12 科技部重点领域创新团队中央科研院所专项经费项目“水利应对气候变化创新研究”,600万元,团队负责人
2016.06-2021.05 国家“十三五”重点研发计划项目课题“自然和人类活动对地球系统陆地水循环的影响机理”(课题编号:2016YFA0601501),680万元,课题负责人
2016.07-2021.06 国家“十三五”重点研发计划项目专题“跨境流域径流变化归因及其地域差异”,(专题编号:2016YFA0601601),60万元,专题负责人
2014.01 -2017.12 国家自然科学基金面上项目“不同尺度流域水文循环过程对气候与植被变化的耦合响应关系及模拟”(编号41371063),75万元,项目负责人
2014.01 - 2018.12 国家自然科学基金重点项目“变化环境下不同气候区河川径流变化归因定量识别研究”(项目编号41330854),308万元,项目技术负责人
2012.1-2015.12 国家“十二五”科技支撑计划项目课题“沿海地区应对海平面上升适应技术集成与应用”(编号:2012BAC21B01),,677万元,课题负责人
2012.1-2015.12 国家“十二五”科技支撑计划项目专题“气候变化对水资源影响与风险评估技术”(编号:2012BAC19B03),75万元,专题负责人
2012.1-2014.12 中国工程院重大咨询项目课题“淮河中下游地区旱涝事件集合应对战略研究”,67万,课题负责人
2010.7-2014.12国家973重点基础研究发展计划项目课题“气候变化对区域水资源影响评估及不确定性分析”(编号:2010CB951103),920万元,课题负责人。
2011.1-2013.12公益性行业专项“变化环境条件下海河流域水资源评价技术研究”(编号:201101015),244万元,项目负责人
2010.1-2012.12 国家国际科技合作项目“气候变化对黄土高原典型支流水文水资源的影响及适应对策研究”(编号:2010DFA24330),150万元,项目技术负责人
2010.4-2012.12,中英瑞气候变化适应项目(ACCC项目)“气候变化对中国区域水资源影响评价”(项目编号:ACCC20100202),100万元,项目负责人
2008.01-2011.12 公益性重大水利行业科研项目“气候变化对我国水安全的影响及适应对策研究”(项目编号:200801001),1024万元,项目技术负责人
科研奖励及荣誉
2010年以来,获得国家科技进步二等奖一项,省部级以上奖励7项:
国家科技进步二等奖,气候变化对区域水资源与旱涝的影响及风险应对关键技术,2018,排名:3/9
大禹水利科学技术进步一等奖,长三角河湖水源地水质安全保障理论技术及应用,2021年,排名:4/15
大禹水利创新团队奖,南京水利科学研究院变化环境下水文生态效应创新团队,2020,排名:2/15
大禹水利科学技术进步一等奖,气候变化下黄淮海流域水循环模拟预测关键技术及适应性对策,2016,排名:5/15
大禹水利科学技术进步特等奖,气候变化对旱涝灾害的影响及风险评估技术,2015,排名:9/50
大禹水利科学技术进步一等奖,气候变化对中国水安全的影响及对策研究,2014, 排名:1/15
教育部自然科学二等奖,变化环境下极端水文事件模拟及不确定性理论与方法,2018,排名:3/7
江苏省科学技术进步二等奖,南京水利科学研究院科学技术壹等奖,“气候变化对需水的影响分析与调控技术”,排名:5/10
代表性专著、专利及科技论文
张建云、王国庆等著,气候变化对水文水资源的影响研究,北京,科学出版社,2007年4月
张建云、王国庆等著,河川径流变化及归因定量识别,北京,科学出版社,2014年4月
刘艳丽、许钦、王国庆等译,环境模拟:一个不确定性的未来?中国水利水电出版社,2015年4月
Wang Guoqing, Rebecca Nadin and Sarah Opitz - Stapleton. A balancing act: China’s water resources and climate change. In: Climate Risk and Resilience in China. Taylor & Francis Group. London and New York. 2015. P96 - 129。
一种可降低不确定性的气候变化情景评价及修订方法,专利号: ZL201410539158.6 (排名:1/8)。
一种人类活动对河川径流过程显著影响期的判断方法,专利号: ZL201410491734.4 (排名:1/8)。
气候变化和人类活动对河川径流变化定量分析方法,专利号:ZL201410528842.4 (排名:1/8)。
线性水库滞留汇流及嵌套流域(多子流域)汇流方法,专利号:ZL201410536584.4 (排名:2/8)
Qiao, C., Ning, Z., Wang, Y., Sun, J., Lin, Q. and Wang, G.*, 2022. Impact of climate change on water availability in water source areas of the South-to-North Water Diversion Project in China. Future Climate Scenarios: Regional Climate Modelling and Data Analysis. DOI: 10.3389/feart.2021.747429
Deng, X., Wang, G.*, Yan, H., Zheng, J. and Li, X., 2022. Spatial–Temporal Pattern and Influencing Factors of Drought Impacts on Agriculture in China. Frontiers in Environmental Science. DOI: 10.3389/fenvs.2022.820615
Wang, G.Q., Zhang, J.Y., Pagano, T.C., Liu, Y.L., Liu, C.S., Bao, Z.X., Jin, J.L. and He, R.M., 2015. Using hydrological simulation to detect human-disturbed epoch in runoff series. Water Science and Technology, 71(5):691-699.
Wang, G.Q. and Zhang, J.Y., 2015. Variation of water resources in the Huang-huai-hai areas and adaptive strategies to climate change. Quaternary International, 380:180-186.
Wang, G.Q., Zhang, J.Y., Jin, J.L., Pagano, T.C., Calow, R., Bao, Z.X., Liu, C.S., Liu, Y.L. and Yan, X.L., 2012. Assessing water resources in China using PRECIS projections and a VIC model. Hydrology and Earth System Sciences, 16(1):231-240.
Bian, G., Zhang, J., Chen, J., Song, M., He, R., Liu, C., Liu, Y., Bao, Z., Lin, Q. and Wang, G.*, 2021. Projecting Hydrological Responses to Climate Change Using CMIP6 Climate Scenarios for the Upper Huai River Basin, China. Frontiers in Environmental Science. DOI:10.3389/fenvs.2021.759547
Wang, G.Q., Zhang, J.Y., Xu, Y.P., Bao, Z.X. and Yang, X.Y., 2017. Estimation of future water resources of Xiangjiang River Basin with VIC model under multiple climate scenarios. Water Science and Engineering, 10(2):87-96.
Shi, J., Wang, B., Wang, G.*, Yuan, F., Shi, C., Zhou, X., Zhang, L. and Zhao, C., 2021. Are the Latest GSMaP Satellite Precipitation Products Feasible for Daily and Hourly Discharge Simulations in the Yellow River Source Region?. Remote Sensing, 13(21):4199.
Wang, J., Wang, G.*, Elmahdi, A., Bao, Z., Yang, Q., Shu, Z. and Song, M., 2021. Comparison of hydrological model ensemble forecasting based on multiple members and ensemble methods. Open Geosciences, 13(1):401-415.
Wang, L., Zhang, J., Shu, Z., Wang, Y., Bao, Z., Liu, C., Zhou, X. and Wang, G.*, 2022. Evaluation of the ability of CMIP6 global climate models to simulate precipitation in the Yellow River Basin, China. Future Climate Scenarios: Regional Climate Modelling and Data Analysis. DOI: 10.3389/feart.2021.751974
Du, M., Zhang, J., Yang, Q., Wang, Z., Bao, Z., Liu, Y., Jin, J., Liu, C. and Wang, G.*, 2021. Spatial and temporal variation of rainfall extremes for the North Anhui Province Plain of China over 1976–2018. Natural Hazards, 105(3):2777-2797.
Du, M., Zhang, J., Wang, Y., Liu, H., Wang, Z., Liu, C., Yang, Q., Hu, Y., Bao, Z., Liu, Y., Jin, J., Zhou X. and Wang G.*, 2021. Evaluating the contribution of different environmental drivers to changes in evapotranspiration and soil moisture, a case study of the Wudaogou Experimental Station. Journal of Contaminant Hydrology, 243:103912.
Song, M., Zhang, J., Bian, G., Wang, J. and Wang, G.*, 2020. Quantifying effects of urban land-use patterns on flood regimes for a typical urbanized basin in eastern China. Hydrology Research, 51(6):1521-1536.
Yang, N., Zhang, J., Liu, J., Liu, G., Boyer, E.W., Guo, L. and Wang, G.*, 2020. Concentration–Discharge Relationships in Runoff Components during Rainfall Events at the Hydrohill Experimental Catchment in Chuzhou, China. Water, 12(11):3033.
Smith, K., Silva Vara, L.R., Dixon, H., Barlow, V., Jenkins, A., Berod, D., Kim, H., Wang, G., Wolock, D., Tuteja, N. and Paudyal, G., 2020, May. HydroSOS: a pilot global Hydrological Status and Outlook System integrating national to global scale hydrological services for increased resilience to hydro-climatic risks. In EGU General Assembly Conference Abstracts.
Sun, L., Wang, Y.Y., Zhang, J.Y., Yang, Q.L., Bao, Z.X., Guan, X.X., Guan, T.S., Chen, X. and Wang, G.Q.*, 2019. Impact of environmental change on runoff in a transitional basin: Tao River Basin from the Tibetan Plateau to the Loess Plateau, China. Advances in Climate Change Research, 10(4):214-224.
Tang, X., Zhang, J., Gao, C., Ruben, G.B. and Wang, G.*, 2019. Assessing the uncertainties of four precipitation products for SWAT modeling in Mekong River Basin. Remote Sensing, 11(3):304.
Tang, X., Zhang, J., Wang, G.*, Ruben, G.B., Bao, Z., Liu, Y., Liu, C. and Jin, J., 2021. Error Correction of Multi-Source Weighted-Ensemble Precipitation (MSWEP) over the Lancang-Mekong River Basin. Remote Sensing, 13(2):312.
Wang, G., Liu, C., Wan, S., Bao, Z. and Liu, Y., 2017. Variability in stream flows of the Xiang River in a changing climate. International Journal of Global Warming, 12(1):129-144.
Wang, G., Zhang, J. and Yang, Q., 2016. Attribution of runoff change for the Xinshui River catchment on the Loess Plateau of China in a changing environment. Water, 8(6):267.
Wang, G., Zhang, J., He, R., Liu, C., Ma, T., Bao, Z. and Liu, Y., 2017. Runoff sensitivity to climate change for hydro-climatically different catchments in China. Stochastic Environmental Research and Risk Assessment, 31(4):1011-1021.
Wang, G., Zhang, J., Jin, J., Weinberg, J., Bao, Z., Liu, C., Liu, Y., Yan, X., Song, X. and Zhai, R., 2017. Impacts of climate change on water resources in the Yellow River basin and identification of global adaptation strategies. Mitigation and adaptation strategies for global change, 22(1):67-83.
Wang, G., Zhang, J., Li, X., Bao, Z., Liu, Y., Liu, C., He, R. and Luo, J., 2017. Investigating causes of changes in runoff using hydrological simulation approach. Applied Water Science, 7(5):2245-2253.
Wang, G., Zhang, J., Pagano, T.C., Xu, Y., Bao, Z., Liu, Y., Jin, J., Liu, C., Song, X. and Wan, S., 2016. Simulating the hydrological responses to climate change of the Xiang River basin, China. Theoretical and Applied Climatology, 124(3):769-779.
Wang, G.Q., Yan, X.L., Zhang, J.A., Liu, C.S., Jin, J.L., Liu, Y.L. and Bao, Z.X., 2013. Detecting evolution trends in the recorded runoffs from the major rivers in China during 1950–2010. Journal of Water and Climate Change, 4(3):252-264.
Wang, G.Q., Zhang, J.Y., Jin, J.L., Liu, Y.L., He, R.M., Bao, Z.X., Liu, C.S. and Li, Y., 2014. Regional calibration of a water balance model for estimating stream flow in ungauged areas of the Yellow River Basin. Quaternary International, 336:65-72.
Wang, G.Q., Zhang, J.Y., Pagano, T.C., Lin, J.L. and Liu, C.S., 2013. Identifying contributions of climate change and human activity to changes in runoff using epoch detection and hydrologic simulation. Journal of Hydrologic Engineering, 18(11):1385-1392.
Wang, G.Q., Zhang, J.Y., Xuan, Y.Q., Liu, J.F., Jin, J.L., Bao, Z.X., He, R.M., Liu, C.S., Liu, Y.L. and Yan, X.L., 2013. Simulating the impact of climate change on runoff in a typical river catchment of the Loess Plateau, China. Journal of Hydrometeorology, 14(5):1553-1561.
Guan, X., Zhang, J., Elmahdi, A., Li, X., Liu, J., Liu, Y., Jin, J., Liu, Y., Bao, Z., Liu, C., He, R. and Wang, G.*, 2019. The capacity of the hydrological modeling for water resource assessment under the changing environment in semi-arid river basins in China. Water, 11(7):1328.
Guan, X., Zhang, J., Bao, Z., Liu, C., Jin, J. and Wang, G.*, 2021. Past variations and future projection of runoff in typical basins in 10 water zones, China. Science of The Total Environment, 798:149277.
Yang, X., He, R., Ye, J., Tan, M.L., Ji, X., Tan, L. and Wang, G.*, 2020. Integrating an hourly weather generator with an hourly rainfall SWAT model for climate change impact assessment in the Ru River Basin, China. Atmospheric Research, 244:105062.
Yang, Y., Zhang, J., Yan, W., Zhang, Y., Wang, J., Wang, G.* and Yan, F., 2021. Impact assessment of water diversion project on urban aquatic ecological environment. Ecological Indicators, 125:107496.
Liu, Y., Zhang, J., Yang, Q., Zhou, X. and Wang, G.*, 2022. Changes in and Modelling of Hydrological Process for a Semi-arid Catchment in the Context of Human Disturbance. Future Climate Scenarios: Regional Climate Modelling and Data Analysis. DOI: 10.3389/feart.2021.759534
Zhang, J.Y., Wang, G.Q., Pagano, T.C., Jin, J.L., Liu, C.S., He, R.M. and Liu, Y.L., 2013. Using hydrologic simulation to explore the impacts of climate change on runoff in the Huaihe River basin of China. Journal of Hydrologic Engineering, 18(11):1393-1399.
管晓祥,刘翠善,鲍振鑫,金君良,王国庆*.黄河源区积雪变化时空特征及其与气候要素的关系[J].中国环境科学,2021,41(03):1045-1054.
刘晶,鲍振鑫,刘翠善,王国庆*,刘悦,王婕,管晓祥.近20年中国水资源及用水量变化规律与成因分析[J].水利水运工程学报,2019(04):31-41.
宁忠瑞,张建云,王国庆*.1948~2016年全球主要气象要素演变特征[J].中国环境科学,2021,41(09):4085-4095.
宋晓猛,张建云,王国庆,贺瑞敏,王小军.变化环境下城市水文学的发展和挑战-II.城市雨洪模拟与管理[J].水科学进展,2014,25(5):752-764.
王国庆,乔翠平,王婕,等.全球变化下澜沧江-湄公河流域水量平衡模拟[J].大气科学学报,2020,43(6):1010-1017.
王国庆*,张建云,管晓祥,鲍振鑫,刘艳丽,贺瑞敏,金君良,刘翠善,陈鑫.中国主要江河径流变化成因定量分析[J].水科学进展,2020,31(3):313-323.
王国庆,张建云,鲍振鑫,唐雄朋,严小林.人类活动和气候变化对岚河流域河川径流的影响[J].灌溉排水学报,2019,38(06):113-118
王会军,唐国利,陈海山,吴绍洪,效存德,姜大膀,周波涛,孙建奇,段明铿,徐影,罗勇,杨晓光,王凡,康世昌,王毅,高清竹,左军成,张元明,魏伟,郑景云,王国庆,高学杰,李宁,刘传玉,曾晓东,鲍艳松,张弛,曾刚,孙博,黄艳艳,施宁,尹志聪,张杰,俞淼,陈活泼,祝亚丽,马洁华,燕青,郭东林,张颖,高雅,吴通华,刘慧,谭显春,尹云鹤,于仁成,黄海军,许艳,刘娜,战云键,任玉玉.“一带一路”区域气候变化事实、影响及可能风险[J].大气科学学报,2020,43(1):1-9.
张建云,宋晓猛,王国庆,贺瑞敏,王小军.变化环境下城市水文学的发展与挑战-I.城市水文效应[J].水科学进展,2014,25(4):594-605.
张建云,王国庆,金君良,贺瑞敏,刘翠善.1956—2018年中国江河径流演变及其变化特征[J].水科学进展,2020,31(2):153-161.