[1] 徐雨晴, 肖风劲, 於琍. 中国森林生态系统净初级生产力时空分布及其对气候变化的响应研究综述[J]. 生态学报, 2020, 40(14): 4710 − 4723.

XU Yuqing, XIAO Fengjin, YU Li. Review of spatio-temporal distribution of net primary productity in forest ecosystem and its responses to climate change in China [J]. Acta Ecologica Sinica, 2020, 40(14): 4710 − 4723.
[2] 丁楠, 沙晓军, 高颖会, 等. 1961—2010年浙江省极端降水特征分析[J]. 中国农村水利水电, 2017(2): 104 − 107.

DING Nan, SHA Xiaojun, GAO Yinghui, et al. The characteristics of extreme precipitation in Zhejiang Province from 1961 to 2010 [J]. China Rural Water and Hydropower, 2017(2): 104 − 107.
[3]

GAO Lu, HUANG Jie, CHEN Xingwei, et al. Contributions of natural climate changes and human activities to the trend of extreme precipitation [J]. Atmospheric Research, 2018, 205: 60 − 69.
[4]

WEI Siyu, HAN Guangxuan, CHU Xiaojing, et al. Prolonged impacts of extreme precipitation events weakened annual ecosystem CO2 sink strength in a coastal wetland [J/OL]. Agricultural and Forest Meteorology, 2021, 310: 108655[2023-12-23]. doi: 10.1016/j.agrformet.2021.108655.
[5]

WANG Miaomiao, ZHAO Jian, WANG Shaoqiang, et al. Detection and attribution of positive net ecosystem productivity extremes in China’s terrestrial ecosystems during 2000−2016 [J/OL]. Ecological Indicators, 2021, 132: 108323[2023-12-23]. doi: 10.1016/j.ecolind.2021.108323.
[6]

LIU Bingjun, CHEN Junfan, CHEN Xiaohong, et al. Uncertainty in determining extreme precipitation thresholds [J]. Journal of Hydrology, 2013, 503: 233 − 245.
[7] 卢珊, 胡泽勇, 王百朋, 等. 近56年中国极端降水事件的时空变化格局[J]. 高原气象, 2020, 39(4): 683 − 693.

LU Shan, HU Zeyong, WANG Baipeng, et al. Spatio-temporal patterns of extreme precipitation events over China in recent 56 years [J]. Plateau Meteorology, 2020, 39(4): 683 − 693.
[8]

PIAO Shilong, HE Yue, WANG Xuhui, et al. Estimation of China’s terrestrial ecosystem carbon sink: methods, progress and prospects [J]. Science China (Earth Sciences), 2022, 65(4): 641 − 651.
[9]

CHEN Jing, CHEN Wenjun, LIU Jane, et al. Annual carbon balance of Canada’s forests during 1895–1996 [J]. Global Biogeochemical Cycles, 2000, 14(3): 839 − 849.
[10]

MAO Fangjie, DU Huaqiang, ZHOU Guomo, et al. Simulated net ecosystem productivity of subtropical forests and its response to climate change in Zhejiang Province, China [J/OL]. Science of the Total Environment, 2022, 838: 155993[2023-12-31]. doi: 10.1016/j.scitotenv.2022.155993.
[11]

WANG Shaoqiang, CHEN Jingming, JU Weimin, et al. Carbon sinks and sources in China’s forests during 1901−2001 [J]. Journal of Environmental Management, 2007, 85(3): 524 − 537.
[12]

LI Xuejian, DU Huaqiang, MAO Fangjie, et al. Mapping spatiotemporal decisions for sustainable productivity of bamboo forest land [J]. Land Degradation &Development, 2020, 31(8): 939 − 958.
[13] 俞静芳, 余树全, 张超, 等. 应用CASA模型估算浙江省植被净初级生产力[J]. 浙江农林大学学报, 2012, 29(4): 473 − 481.

YU Jingfang, YU Shuquan, ZHANG Chao, et al. Net primary productivity estimates for Zhejiang Province based on the CASA model [J]. Journal of Zhejiang A&F University, 2012, 29(4): 473 − 481.
[14] 肖晶晶, 李正泉, 郭芬芬, 等. 浙江省1901—2017年降水序列构建及变化特征分析[J]. 气候变化研究进展, 2018, 14(6): 553 − 561.

XIAO Jingjing, LI Zhengquan, GUO Fenfen, et al. Construction and analysis of annual precipitation series from 1901 to 2017 in Zhejiang Province [J]. Climate Change Research, 2018, 14(6): 553 − 561.
[15] 孔锋, 史培军, 方建, 等. 全球变化背景下极端降水时空格局变化及其影响因素研究进展和展望[J]. 灾害学, 2017, 32(2): 165 − 174.

KONG Feng, SHI Peijun, FANG Jian, et al. Advances and prospects of spatiotemporal pattern variation of ex-treme precipitation and its affecting factors under the background of global climate change [J]. Journal of Catastrophology, 2017, 32(2): 165 − 174.
[16]

LI Yangguang, HAN Ning, LI Xuejian, et al. Spatiotemporal estimation of bamboo forest aboveground carbon storage based on landsat data in Zhejiang, China [J]. Remote Sensing, 2018, 10(6): 898 − 898.
[17]

SAXTON K E, RAWLS W J, ROMBERGER J S, et al. Estimating generalized soil‐water characteristics from texture [J]. Soil Science Society of America Journal, 1986, 50(4): 1031 − 1036.
[18]

MAO Fangjie, DU Huaqiang, ZHOU Guomo, et al. Coupled LAI assimilation and BEPS model for analyzing the spatiotemporal pattern and heterogeneity of carbon fluxes of the bamboo forest in Zhejiang Province, China [J]. Agricultural and Forest Meteorology, 2017, 242: 96 − 108.
[19] 莫康, 刘光裕, 贺治国, 等. 气候变化下浙江省极端降水时空变化研究[J]. 中国农村水利水电, 2021(3): 74 − 79, 87.

MO Kang, LIU Guangyu, HE Zhiguo, et al. Research on the spatial-temporal changes of extreme precipitation in Zhejiang Province under climate changes [J]. China Rural Water and Hydropower, 2021(3): 74 − 79, 87.
[20] 江志红, 丁裕国, 陈威霖. 21世纪中国极端降水事件预估[J]. 气候变化研究进展, 2007, 3(4): 202 − 207.

JIANG Zhihong, DING Yuguo, CHEN Weilin. Projection of precipitation extremes for the 21st century over China [J]. Advances in Climate Change Research, 2007, 3(4): 202 − 207.
[21] 蔡丽莎, 陈先刚, 郭颖, 等. 贵州省退耕还林工程碳汇潜力预测[J]. 浙江林学院学报, 2009, 26(5): 722 − 728.

CAI Lisha, CHEN Xiangang, GUO Ying, et al. Carbon sequestration potential with the Grain for Green Program in Guizhou Province [J]. Journal of Zhejiang Forestry College, 2009, 26(5): 722 − 728.
[22]

PIŃSKWAR I. Complex changes of extreme precipitation in the warming climate of Poland [J]. International Journal of Climatology, 2022, 42(2): 817 − 833.