雷慧闽

副教授
通信地址:北京市海淀区新水利馆
邮编:100084
电话号码:010-62783383
E-mail:leihm@tsinghua.edu.cn

教育背景

2001.9~2005.7 清华大学 水利水电建筑工程 学士

2005.9~2011.7 清华大学 水利工程 博士

工作履历

长聘副教授、博导,清华大学水利水电工程系(2022/08~现在)

准聘副教授、博导,清华大学水利水电工程系(2017/08~2022/07)

助理教授、博导,清华大学水利水电工程系(2016/08~2017/07)

讲师,清华大学水利水电工程系(2013/07~2016/07)

博士后, 清华大学水利水电工程系 (2011/07~2013/06)

开设课程

本科生课程《水工程设计》、《认知实习》

研究生课程《生态水文学》

研究领域

陆地水碳通量变化

生态水文过程与生态水文模型

流域分布式水文模型

作物耗水机理与作物模型

科研项目

1) 博士后基金一等项目“黄河中下游地区不同典型植被条件下生态水文过程机理研究”,2011~2013年

2) 国家自然科学基金青年基金项目“北方典型农田水热传输过程与作物生长的耦合机理及其模拟”(51209117),2013~2015年

3) 十二五国家科技支撑计划课题:南水北调大型跨(穿)河建筑物运行风险识别和预警关键技术研究与示范(2015BAB07B07)(专题负责人(大型跨(穿)河建筑物洪水预警技术))(项目名称:南水北调中东线工程运行管理关键技术及应用)2015.4.1~2017.12.31

4) “水资源高效开发利用”重点专项项目“黄河流域水沙变化机理与趋势预测”的第4课题“沟道工程对流域水沙变化影响及其贡献率”(2016YFC0402404,专题负责人:沟道工程调峰消能机理与模拟),2016/7~2020/6

5) 国家自然科学基金面上项目“华北平原极端天气气候下作物生长对蒸散发的调节机理研究”(51679120),2017~2020年

6) 国家自然科学基金面上项目“温带半干旱草原生态水文过程变化机理及其对荒漠化的影响”(51979139),2020~2023年

7) 国家自然科学基金优秀青年基金项目“流域生态水文学”(51922063),2020~2022年

学术兼职

Agricultural and Forest Meteorology, Editor

《灌溉排水学报》编委

《人民珠江》编委

Water Resources Research, Associate Editor

《农业工程学报》青年编委

奖励与荣誉

2025年清华大学优秀博士学位论文指导教师

2020年度高等学校科学研究自然科学一等奖,干旱过程机理与时空变化规律

2019年度内蒙古自治区自然科学一等奖,荒漠化地区水文过程及其生态响应研究

2015年度高等学校科学研究自然科学一等奖,变化环境下流域生态水文响应机理与规律

学术成果

[1] Zhang Z, Cong Z*, Huang Y, Li S, Lei H, Yang D. Ecohydrological effects of photovoltaic plants in Kubuqi Desert based on ecohydrological modeling and field observation[J]. Ecohydrology, 2026, 19: e70181. https://doi.org/10.1002/eco.70181.

[2] Li F, Xin Q, Green J K, Yi C, Kemanian A R, Kannenberg S A, Stoy P C, Yang Y, Lei H, Xiong Y, Fu Z*. Event-specific meteorological drivers shape diverse water-use efficiency trajectories under drought propagation[J]. Global Change Biology, 2026, 32(1): e70690.

[3] Liu Y, Wang Y, Zhao Y, Chen S, Wang L, Yang W, Li X, Li X, Lei H, Chang H, Zhai J, Zhu Y, Wang Q, Ye T. Evapotranspiration stress intensifies with enhanced sensitivity to soil moisture deficits in a rapidly greening China[J]. Hydrology and Earth System Sciences, 2025, 29(14): 3379-3404.

[4] Cheng Y, Lei H*. Development of an ecohydrological model for coupled simulation of water and carbon fluxes, crop growth, and canopy spectra over croplands[J]. Computers and Electronics in Agriculture, 2025, 235: 110336.

[5] Liu M, Lei H*, Wang X, Paredes P. High-resolution mapping of evapotranspiration over heterogeneous cropland affected by soil salinity[J]. Agricultural Water Management, 2025, 308: 109301.

[6] Zhong L, Lei H*, Li Z, Jiang S. Advancing streamflow prediction in data-scarce regions through vegetation-constrained distributed hybrid ecohydrological models[J]. Journal of Hydrology, 2024, 629: 132165.

[7] Huang Y, Lei H*, Duan L. Resistance of grassland productivity to drought and heatwave over a temperate semi-arid climate zone[J]. Science of The Total Environment, 2024, 951: 175495.

[8] Yang H, Wang T, Yang D*, Yan Z, Wu J, Lei H. Runoff and sediment effect of the soil-water conservation measures in a typical river basin of the Loess Plateau[J]. Catena, 2024, 243: 108218.

[9] Zhong L, Lei H*, Yang J. Development of a distributed physics-informed deep learning hydrological model for data‐scarce regions[J]. Water Resources Research, 2024, 60: e2023WR036333. https://doi.org/10.1029/2023WR036333.

[10] Wang X, Wei Q, Wang W, Wang S, Huo Z*, Qu Y, Lei H. Estimating and partitioning evapotranspiration in a film mulched cropland with shallow groundwater by the improved dual source model[J]. Journal of Hydrology, 2024, 637: 131375.

[11] Cheng Y, Lei H*. Evaluation of data assimilation strategies on improving the performance of crop modeling based on a novel evapotranspiration assimilation framework[J]. Agricultural and Forest Meteorology, 2024, 346: 109882.

[12] Lei H*, Wang X, Liu Y. Editorial Virtual Special Issue “Changes in hydrological processes and water resources in the context of climate change and carbon neutrality”[J]. Journal of Hydrology, 2023, 620: 130268.

[13] Dou J*, Grimmond S, Miao S, Huang B, Lei H, Liao M. Surface energy balance fluxes in a suburban of Beijing: energy partitioning variability[J]. Atmospheric Chemistry and Physics, 2023, 23: 13143-13166.

[14] Yan Z, Lei H, Gao H, Ma T, Yang H, Yang D*. Simulating the Hydrological Impacts of Intensive Soil and Water Conservation Measures in the Yellow River Basin Using a Distributed Physically-based Model[J]. Journal of Hydrology, 2023, 625: 129936. https://doi.org/10.1016/j.jhydrol.2023.129936.

[15] Zhong L, Lei H*, Gao B. Developing a physics-informed deep learning model to simulate runoff response to climate change in Alpine catchments[J]. Water Resources Research, 2023, 59: e2022WR034118. https://doi.org/10.1029/2022WR034118.

[16] Zhang N, Zhang Z*, Cong Z, Lei H, Luo Y. The impact of photovoltaic power plants on surface energy budget based on an ecohydrological model[J]. Renewable Energy, 2023, 212: 589-600.

[17] Han S*, Zhao Y, Zhang B, Wang Y, Lei H, Zhang X, Zhao F. Abrupt change of the generalized complementary relationship of evaporation over irrigated double cropping North China Plain with East Asian monsoon[J]. Water Resources Research, 2023, 59: e2022WR033902. https://doi.org/10.1029/2022WR033902.

[18] Ramos T B*, Liu M, Paredes P, Shi H*, Feng Z, Lei H, Pereira L S. Salts dynamics in maize irrigation in the Hetao plateau using static water table lysimeters and HYDRUS-1D with focus on the autumn leaching irrigation[J]. Agricultural Water Management, 2023, 283: 108306.

[19] Wang X, Lei H, et al. Estimating evapotranspiration and yield of wheat and maize croplands through a remote sensing-based model[J]. Agricultural Water Management, 2023, 282: 108294.

[20] Pang X, Fatichi S, Lei H*, Cong Z, Yang H, Duan L. Environmental changes promoted vegetation growth and reduced water yield over the temperate semi-arid grassland of China during 1901-2016[J]. Journal of Hydrology, 2023, 618: 129235. https://doi.org/10.1016/j.jhydrol.2023.129235.

[21] Wang X, Lei H*, Li J, Qu Y, Kong D, Huo Z. Climate and management impacts on the spatiotemporal dynamics of water-carbon fluxes in the North China Plain[J]. Agriculture, Ecosystems & Environment, 2023, 343: 108270.

[22] Cheng Y, Lei H*. Climate and management impacts on crop growth and evapotranspiration in the North China Plain based on long-term eddy covariance observation[J]. Agricultural and Forest Meteorology, 2022, 325: 109147.

[23] Li J, Lei H*. Impacts of climate change on winter wheat and summer maize dual-cropping system in the North China Plain[J]. Environmental Research Communications, 2022, 4(7): 075014.

[24] Chang Y, Lei H*. How intensive revegetation affects runoff in semiarid watersheds: a case study based on an integrated modeling framework[J]. Ecohydrology, 2022: e2451.

[25] Xie Z, Yang H*, Lv H, Lei H, Yang D. Long-term observed evapotranspiration and its variation caused by anthropogenic controls in an ecofragile region[J]. Agriculture, Ecosystems & Environment, 2022, 335: 108008.

[26] Li M, Liu T*, Duan L, Ma L, Wang Y, Wang G, Lei H, Singh V. Spatiotemporal hysteresis distribution and decomposition of solar activities and climatic oscillation during 1900–2020[J]. Environmental Research, 2022: 113435.

[27] Wang Y, Duan L, Liu T*, Luo Y, Li D, Tong X, Li W, Lei H, Singh V P. Evaluation of non-stationarity in summer precipitation and the response of vegetation over the typical steppe in Inner Mongolia[J]. Climate Dynamics, 2022, 58: 2227-2247.

[28] Zhang K, Liu D*, Liu H*, Lei H, Guo F, Xie S, Huang Q. Energy flux observation in a shrub ecosystem of a gully region of the Chinese Loess Plateau[J]. Ecohydrology & Hydrobiology, 2022, 22(2): 323-336.

[29] Chang Y, Lei H*, Zhou F, Yang D. Spatial and temporal variations of rainfall erosivity in the middle Yellow River basin based on hourly rainfall data[J]. Catena, 2022, 216(Part B): 106406.

[30] Wu H, Lei H, Lu W*, Liu Z. Future changes in precipitation over the upper Yangtze River basin based on bias correction spatial downscaling of models from CMIP6[J]. Environmental Research Communications, 2022, 4(4): 045002.

[31] Zhao B, Lei H, Yang D*, Yang S, Santisirisomboon J. Runoff and sediment response to deforestation in a large Southeast Asian monsoon watershed[J]. Journal of Hydrology, 2022: 127432.

[32] Miao C*, Gou J, Fu B, Tang Q, Duan Q, Chen Z, Lei H, Chen J, Guo J, Borthwick A G L, Ding W, Duan X, Li Y, Kong D, Guo X, Wu J. High-quality reconstruction of China’s natural streamflow[J]. Science Bulletin, 2021. https://doi.org/10.1016/j.scib.2021.09.022.

[33] Wang X, Wang X, Wei Q, Wang W, Wang S, Huo Z*, Lei H. Coupling of net ecosystem CO2 exchange and evapotranspiration of irrigated maize field in arid areas[J]. Journal of Hydrology, 2021: 127140.

[34] Hu X, Lei H*. Evapotranspiration partitioning and its interannual variability over a winter wheat-summer maize rotation system in the North China Plain[J]. Agricultural and Forest Meteorology, 2021, 310: 108635.

[35] Pang X, Lei H*, Cong Z, Yang H, Duan L, Yang D. Long term variation of evapotranspiration and water balance based on upscaling eddy covariance observations over the temperate semi-arid grassland of China[J]. Agricultural and Forest Meteorology, 2021, 308-309: 108566.

[36] Xue B, Helman D, Wang G*, Xu C, Xiao J, Liu T, Wang L, Li X, Duan L, Lei H. Low hydrologic resilience of Asian Water Tower basins to adverse climatic changes[J]. Advances in Water Resources, 2021. (In press)

[37] Duan L, Liu T*, Ma L, Lei H, Singh V P. Analysis of soil respiration and influencing factors in a semiarid dune–meadow cascade ecosystem[J]. Science of The Total Environment, 2021, 796: 148993.

[38] Li M, Liu T*, Duan L, Ma L, Wang Y, Zhou Y, Li Y, Zhao X, Wang X, Wang G, Lei H. Hydrologic gradient changes of soil respiration in typical steppes of Eurasia[J]. Science of The Total Environment, 2021, 794: 148684.

[39] Bao Y, Liu T*, Duan L, Tong X, Zhang L, Singh V P, Lei H, Wang G. Comparison of an improved Penman-Monteith model and SWH model for estimating evapotranspiration in a meadow wetland in a semiarid region[J]. Science of The Total Environment, 2021: 148736.

[40] Li J, Lei H*. Tracking the spatio-temporal change of planting area of winter wheat-summer maize cropping system in the North China Plain during 2001-2018[J]. Computers and Electronics in Agriculture, 2021, 187: 106222.

[41] Hu X, Lei H*. Fifteen-year Variations of Water Use Efficiency over a Wheat-Maize Rotation Cropland in the North China Plain[J]. Agricultural and Forest Meteorology, 2021, 306: 108430.

[42] Bao Y, Duan L, Liu T*, Tong X, Wang G, Lei H, Zhang L, Singh V P. Simulation of evapotranspiration and its components for the mobile dune using an improved dual-source model in semi-arid regions[J]. Journal of Hydrology, 2021, 592: 125796.

[43] Long D, Yan L, Bai L, Zhang C, Li X, Lei H, Shi C. Generation of MODIS-like land surface temperatures under all-weather conditions based on a data fusion approach[J]. Remote Sensing of Environment, 2020, 246: 111863.

[44] Jia Y, Lei H, Yang H*, Hu Q. Terrestrial water storage change retrieved by GRACE and its implication in the Tibetan Plateau: Estimating areal precipitation in ungauged region[J]. Remote Sensing, 2020, 12(19): 3129. https://doi.org/10.3390/rs12193129.

[45] Lu B, Lei H*, Yang D, Fu X. Separating the effects of revegetation and sediment-trapping dams construction on runoff and its application to a semi-arid watershed of the Loess Plateau[J]. Ecological Engineering, 2020, 158: 106043.

[46] Lu W, Lei H, Yang D*, Yang W, Yang J. Comparison of Floods Driven by Tropical Cyclones and Monsoons in the Southeastern Coastal Region of China[J]. Journal of Hydrometeorology, 2020, 21(7): 1589-1603.

[47] Zhang Q*, Lei H*, Yang D, Xiong L. Decadal variation of CO2 flux and its budget in a wheat and maize rotation cropland over the North China Plain[J]. Biogeosciences, 2020, 17: 2245-2262. https://doi.org/10.5194/bg-17-2245-2020. (Co-corresponding author)

[48] Lin B, Lei H, Hu M, Visessri S, H C*. Canopy resistance and estimation of evapotranspiration above a humid cypress forest[J]. Advances in Meteorology, 2020, 2020: 4232138. https://doi.org/10.1155/2020/4232138.

[49] Fang B, Lei H*, Zhang Y, Quan Q, Yang D. Spatio-temporal patterns of evapotranspiration based on upscaling eddy covariance measurements in the dryland of the North China Plain[J]. Agricultural and Forest Meteorology, 2020, 281: 107844.

[50] Long D*, Bai L, Yan L, Zhang C, Yang W, Lei H, Quan J*, Meng X, Shi C. Generation of spatially complete and daily continuous surface soil moisture of high spatial resolution[J]. Remote Sensing of Environment, 2019, 233: 111364.

[51] Zheng G, Yang Y, Yang D*, Dafflon B, Lei H, Yang H. Satellite-based simulation of soil freezing/thawing processes in the northeast Tibetan Plateau[J]. Remote Sensing of Environment, 2019, 231: 111269.

[52] Zhang L, Lei H*, Shen H, Cong Z, Yang D, Liu T. Evaluating the representation of vegetation phenology in the Community Land model 4.5 in a temperate grassland[J]. Journal of Geophysical Research – Biogeosciences, 2019, 124. https://doi.org/10.1029/2018JG004866.

[53] Lu W, Lei H, Yang D*, Tang L, Miao Q. Quantifying the impacts of small dam construction on hydrological alterations in the Jiulong River Basin of Southeast China[J]. Journal of Hydrology, 2018, 567: 382-392.

[54] Zheng G, Yang H, Lei H, Yang D, Wang T, Qin Y. Development of a physically based soil albedo parameterization for the Tibetan Plateau[J]. Vadose Zone Journal, 2018, 17(1).

[55] Yuan X, Jiao Y, Yang D, Lei H. Reconciling the Attribution of Changes in Streamflow Extremes from a Hydroclimate Perspective[J]. Water Resources Research, 2018. https://doi.org/10.1029/2018WR022714.

[56] Muhammad W, Yang H, Lei H*, Muhammad A, Yang D. Improving the Regional Applicability of Satellite Precipitation Products by Ensemble Algorithm[J]. Remote Sensing, 2018, 10(4): 577. https://doi.org/10.3390/rs10040577.

[57] Zhang S, Yang D*, Yang Y, Piao S, Yang H, Lei H, Fu B. Excessive afforestation and soil drying on China’s Loess Plateau[J]. Journal of Geophysical Research: Biogeosciences, 2018, 123(3): 923-935.

[58] Ahmad I, Muhammad W, Lei H, Yang H, Yang D. Harmonious Level Indexing for Ascertainment of Human-Water Relationship[J]. Environmental Earth Sciences, 2018, 77: 125.

[59] Zhang Y, Lei H, Zhao W, Shen Y*, Xiao D. Comparison of the water budget for the typical cropland and pear orchard ecosystems in the North China Plain[J]. Agricultural Water Management, 2018, 198: 53-64.

[60] Lei H*, Gong T, Zhang Y, Yang D. Biological factors dominate the interannual variability of evapotranspiration in an irrigated cropland in the North China Plain[J]. Agricultural and Forest Meteorology, 2018, 250-251: 262-276.

[61] Sheng M, Lei H*, Jiao Y, Yang D. Evaluation of the runoff and river routing schemes in the Community Land Model of the Yellow River basin[J]. Journal of Advances in Modeling Earth Systems, 2017, 9. https://doi.org/10.1002/2017MS001026.

[62] Shen Q, Cong Z, Lei H*. Evaluating the impact of climate and underlying surface on runoff change within Budyko framework: a study across 224 catchments in China[J]. Journal of Hydrology, 2017, 554: 251-262.

[63] Jiao Y, Lei H*, Yang D, Huang M, Liu D, Yuan X. Impact of vegetation dynamics on hydrological processes in a semi-arid basin by using a land surface-hydrology coupled model[J]. Journal of Hydrology, 2017, 551: 116-131.

[64] Fang Y, Michalak A, Schwalm C, Huntzinger D, Berry J, Ciais P, Piao S, Poulter B, Fisher J, Cook R, Hayes D, Huang M, Ito A, Jain A, Lei H, Lu C, Mao J, Parazoo N, Peng S, Ricciuto D, Shi X, Tao B, Tian H, Wang W, Wei Y, Yang J. Global land carbon sink response to temperature and precipitation varies with ENSO phase[J]. Environmental Research Letters, 2017, 12(6): 064007.

[65] Huntzinger D N*, Michalak A M, Schwalm C, Ciais P, King A W, Fang Y, Schaefer K, Wei Y, Cook R B, Fisher J B, Hayes D, Huang M, Ito A, Jain A K, Lei H, Lu C, Maignan F, Mao J, Parazoo N, Peng S, Poulter B, Ricciuto D, Shi X, Tian H, Wang W, Zeng N, Zhao F. Uncertainty in the response of terrestrial carbon sink to environmental drivers undermines carbon-climate feedback predictions[J]. Scientific Reports, 2017, 7: 4765. https://doi.org/10.1038/s41598-017-03818-2.

[66] Chen Z, Lei H, Yang H, Yang D, Cao Y. Historical and future trends in wetting and drying in 291 catchments across China[J]. Hydrology and Earth System Sciences, 2017, 21: 2233-2248. https://doi.org/10.5194/hess-21-2233-2017.

[67] Cong Z, Shahid M, Zhang D, Lei H, Yang D. Attribution of runoff change in the alpine basin: a case study of the Heihe Upstream Basin, China[J]. Hydrological Sciences Journal, 2017: 1-16.

[68] Gong T, Lei H*, Yang D, Jiao Y, Yang H. Monitoring the variations of evapotranspiration due to land use/cover change in a semiarid shrubland[J]. Hydrology and Earth System Sciences, 2017, 21: 863-877. https://doi.org/10.5194/hess-21-863-2017.

[69] Qin Y, Lei H, Yang D*, et al. Long-term change in the depth of seasonally frozen ground and its ecohydrological impacts in the Qilian Mountains, northeastern Tibetan Plateau[J]. Journal of Hydrology, 2016. https://doi.org/10.1016/j.jhydrol.2016.09.008.

[70] Wang A, Tang L, Yang D, Lei H. Spatial-temporal variation of net anthropogenic nitrogen inputs in the upper Yangtze River basin from 1990 to 2012[J]. Science China: Earth Sciences, 2016. https://doi.org/10.1007/s11430-016-0014-6.

[71] Ito A*, Inatomi M, Huntzinger D N, Schwalm C, Michalak A M, Cook R, King A W, Mao J, Wei Y, Post W M, Wang W, Arain M A, Huang S, Hayes D J, Ricciuto D M, Shi X, Huang M, Lei H, Tian H, Lu C, Yang J, Tao B, Jain A, Poulter B, Peng S, Ciais P, Fisher J B, Parazoo N, Schaefer K, Peng C, Zeng N, Zhao F. Decadal trends in the seasonal-cycle amplitude of terrestrial CO2 exchange resulting from the ensemble of terrestrial biosphere models[J]. Tellus B: Chemical and Physical Meteorology, 2016, 68(1): 28968.

[72] Wang S, Lei H*, Duan L, Liu T, Yang D. Attribution of the vegetation trends in a typical desertified watershed of northeast China over the past three decades[J]. Ecohydrology, 2016, 9(8): 1566-1579.

[73] Mao J, Fu W, Shi X, Ricciuto D M, Fisher J B, Dickinson R E, Lei H, Zhu Z. Disentangling climatic and anthropogenic controls on global terrestrial evapotranspiration trends[J]. Environmental Research Letters, 2015, 10(9): 094008.

[74] Liu Y, Lei H*. Responses of Natural Vegetation Dynamics to Climate Drivers in China from 1982 to 2011[J]. Remote Sensing, 2015, 7(8): 10243-10268. https://doi.org/10.3390/rs70810243.

[75] Mo K, Cong Z, Lei H. Optimal vegetation cover in the Horqin Sands, China[J]. Ecohydrology, 2015. https://doi.org/10.1002/eco.1668.

[76] Xu K, Yang D, Xu X, Lei H. Copula based drought frequency analysis considering the spatio-temporal variability in Southwest China[J]. Journal of Hydrology, 2015, 527: 630-640.

[77] Schwalm C R, Huntzinger D N, Fisher J B, Michalak A M, Bowman K, Ciais P, Cook R, El-Masri B, Hayes D, Huang M, Ito A, Jain A, King A W, Lei H, Liu J, Lu C, Mao J, Peng S, Poulter B, Ricciuto D, Schaefer K, Shi X, Tao B, Tian H, Wang W, Wei Y, Yang J, Zeng N. Toward “optimal” integration of terrestrial biosphere models[J]. Geophysical Research Letters, 2015, 42. https://doi.org/10.1002/2015GL064002.

[78] Tian H*, Lu C*, Yang J, Banger K, Huntzinger D N, Schwalm C R, Michalak A M, Cook R, Ciais P, Hayes D, Huang M, Ito A, Jain A K, Lei H, Mao J, Pan S, Post W M, Peng S, Poulter B, Ren W, Ricciuto D, Schaefer K, Shi X, Tao B, Wang W, Wei Y, Yang Q, Zhang B, Zeng N. Global Patterns and controls of soil organic carbon dynamics as simulated by multiple terrestrial biosphere models: current status and future directions[J]. Global Biogeochemical Cycles, 2015, 29. https://doi.org/10.1002/2014GB005021.

[79] Yang D, Gao B, Jiao Y, Lei H. A distributed scheme developed for eco-hydrological modeling in the upper Heihe River[J]. Science China: Earth Sciences, 2015. https://doi.org/10.1007/s11430-014-5029-7.

[80] Lei H, Yang D, Yang H, Yuan Z, Lv H. Simulated impacts of irrigation on evapotranspiration in a strongly exploited region: a case study of the Haihe River basin, China[J]. Hydrological Processes, 2015, 29(12): 2704-2719. https://doi.org/10.1002/hyp.10402.

[81] Qin Y, Yang D, Lei H, Xu K, Xu X. Comparative analysis of drought based on precipitation and soil moisture indices in Haihe basin of North China during the period of 1960-2010[J]. Journal of Hydrology, 2014. https://doi.org/10.1016/j.jhydrol.2014.09.068.

[82] Zscheischler J, Michalak A M, Schwalm C, Mahecha M D, Huntzinger D N, Reichstein M, Berthier G, Ciais P, Cook R B, El-Masri B, Huang M, Ito A, Jain A, King A W, Lei H, Zeng N. Impact of large‐scale climate extremes on biospheric carbon fluxes: An intercomparison based on MsTMIP data[J]. Global Biogeochemical Cycles, 2014.

[83] Lei H, Huang M*, Leung L R, et al. Sensitivity of global terrestrial gross primary production to hydrologic states simulated by the Community Land Model using two runoff parameterizations[J]. Journal of Advances in Modeling Earth Systems, 2014, 6(3): 658-679. https://doi.org/10.1002/2013MS000252.

[84] Lei H, Yang D*. Impacts of climate change and vegetation dynamics on runoff in the mountainous region of the Haihe River basin in the past five decades[J]. Journal of Hydrology, 2014, 511: 786-799.

[85] Xu X, Yang D, Yang H, Lei H. Attribution analysis based on the Budyko hypothesis for detecting the dominant cause of runoff decline in Haihe basin[J]. Journal of Hydrology, 2014, 510: 530-540.

[86] Liu Z, Bambha R P, Pinto J P, Zeng T, Boylan J, Huang M, Lei H, Zhao C, Liu S, Mao J, Schwalm C R, Shi X, Wei Y, Michelsen H A. Toward verifying fossil fuel CO2 emissions with the CMAQ model: Motivation, model description and initial simulation[J]. Journal of the Air & Waste Management Association, 2014, 64(4): 419-435. https://doi.org/10.1080/10962247.2013.816642.

[87] Lei H, Yang D. Combining crop coefficient of winter wheat and summer maize with remotely-sensed vegetation index for estimating evapotranspiration in the North China Plain[J]. Journal of Hydrologic Engineering, 2014, 19(1): 243-251.

[88] Huntzinger D N, Schwalm C, Michalak A M, Schaefer K, King A W, Wei Y, Jacobson A, Liu S, Cook R B, Post W M, Berthier G, Hayes D, Huang M, Ito A, Lei H, Lu C, Mao J, Peng C, Peng S, Poulter B, Ricciuto D, Shi X, Tian H, Wang W, Zeng N, Zhao F, Zhu Q. The North American Carbon Program Multi-Scale Synthesis and Terrestrial Model Intercomparison Project – Part 1: Overview and experimental design[J]. Geoscientific Model Development, 2013, 6: 2121-2133. https://doi.org/10.5194/gmd-6-2121-2013.

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更新时间:2026-03-10