| [1] |
穆少杰, 周可新, 陈奕兆, 等. 草地生态系统碳循环及其影响因素研究进展[J]. 草地学报, 2014, 22(3): 439-447.
doi: 10.11733/j.issn.1007-0435.2014.03.002
|
|
[Mu Shaojie, Zhou Kexin, Chen Yizhao, et al. Research progress on the carbon cycle and impact factors of grassland ecosystem[J]. Acta Agrestia Sinica, 2014, 22(3): 439-447.]
doi: 10.11733/j.issn.1007-0435.2014.03.002
|
| [2] |
沈海花, 朱言坤, 赵霞, 等. 中国草地资源的现状分析[J]. 科学通报, 2016, 61(2): 139-154.
|
|
[Shen Haihua, Zhu Yankun, Zhao Xia, et al. Analysis of current grassland resources in China[J]. Chinese Science Bulletin, 2016, 61(2): 139-154.]
|
| [3] |
何源, 李星锐, 杨晓帆, 等. 内蒙古锡林郭勒盟典型草原固碳量及固碳潜力估算[J]. 草地学报, 2021, 29(10): 2274-2285.
doi: 10.11733/j.issn.1007-0435.2021.10.019
|
|
[He Yuan, Li Xingrui, Yang Xiaofan, et al. The estimation of actual and potential carbon sequestration in typical steppe in Xilingol County, Inner Mongolia[J]. Acta Agrestia Sinica, 2021, 29(10): 2274-2285.]
doi: 10.11733/j.issn.1007-0435.2021.10.019
|
| [4] |
张珺, 任鸿瑞. 人类活动对锡林郭勒盟草原净初级生产力的影响研究[J]. 自然资源学报, 2017, 32(7): 1125-1133.
doi: 10.11849/zrzyxb.20160736
|
|
[Zhang Jun, Ren Hongrui. Effects of human activities on net primary productivity in the Xilingol grassland[J]. Journal of Natural Resources, 2017, 32(7): 1125-1133.]
|
| [5] |
汤曾伟, 王宏, 李晓兵, 等. 锡林郭勒盟2006—2015年植被NPP变化分析[J]. 草业科学, 2018, 35(12): 2812-2821.
|
|
[Tang Zengwei, Wang Hong, Li Xiaobing, et al. Variation of vegetation net primary productivity and its influential factors in Xilingol League from 2006 to 2015[J]. Pratacultural Science, 2018, 35(12): 2812-2821.]
|
| [6] |
Huenneke L F, Anderson J P, Remmenga M, et al. Desertification alters patterns of aboveground net primary production in Chihuahuan ecosystems[J]. Global Change Biology, 2002, 8(3): 247-264.
|
| [7] |
洪长桥, 金晓斌, 陈昌春, 等. 集成遥感数据的陆地净初级生产力估算模型研究综述[J]. 地理科学进展, 2017, 36(8): 924-939.
doi: 10.18306/dlkxjz.2017.08.002
|
|
[Hong Changqiao, Jin Xiaobin, Chen Changchun, et al. Overview on estimation models of land net primary productivity integrating remote sensing data[J]. Progress in Geography, 2017, 36(8): 924-939.]
doi: 10.18306/dlkxjz.2017.08.002
|
| [8] |
Potter C S, Randerson J T, Field C B, et al. Terrestrial ecosystem production: A process model based on global satellite and surface data[J]. Global Biogeochemical Cycle, 1993, 7(4): 811-841.
|
| [9] |
朱文泉, 陈云浩, 徐丹, 等. 陆地植被净初级生产力计算模型研究进展[J]. 生态学杂志, 2005, 24(3): 296-300.
|
|
[Zhu Wenquan, Chen Yunhao, Xu Dan, et al. Advances in terrestrial net primary productivity (NPP) estimation models[J]. Chinese Journal of Ecology, 2005, 24(3): 296-300.]
|
| [10] |
张美玲, 陈全功, 蒋文兰. 不同草地类型净初级生产力(NPP)模拟及其敏感性分析[J]. 干旱区地理, 2021, 44(2): 369-378.
doi: 10.12118/j.issn.1000–6060.2021.02.08
|
|
[Zhang Meiling, Chen Quangong, Jiang Wenlan. Simulation and sensitivity analysis of net primary productivity (NPP) of different grassland types[J]. Arid Land Geography, 2021, 44(2): 369-378.]
doi: 10.12118/j.issn.1000–6060.2021.02.08
|
| [11] |
杜波波, 阿拉腾图娅, 包刚, 等. 基于CASA模型模拟锡林郭勒草原净初级生产力[J]. 水土保持研究, 2021, 28(5): 293-300.
|
|
[Du Bobo, Alatentoya, Bao Gang, et al. Simulation of net primary productivity of Xilingol grassland based on CASA model[J]. Research of Soil and Water Conservation, 2021, 28(5): 293-300.]
|
| [12] |
张峰, 周广胜, 王玉辉. 基于CASA模型的内蒙古典型草原植被净初级生产力动态模拟[J]. 植物生态学报, 2008, 32(4): 786-797.
doi: 10.3773/j.issn.1005-264x.2008.04.007
|
|
[Zhang Feng, Zhou Guangsheng, Wang Yuhui. Dynamics simulation of net primary productivity by a satellite data-driven casa model in Inner Mongolian typical steppe, China[J]. Chinese Journal of Plant Ecology, 2008, 32(4): 786-797.]
doi: 10.3773/j.issn.1005-264x.2008.04.007
|
| [13] |
施亚林, 曹艳萍, 苗书玲. 黄河流域草地净初级生产力时空动态及其驱动机制[J]. 生态学报, 2023, 43(2): 731-743.
|
|
[Shi Yalin, Cao Yanping, Miao Shuling. Spatiotemporal dynamics of grassland net primary productivity and its driving mechanisms in the Yellow River Basin[J]. Acta Ecologiga Sinca, 2023, 43(2): 731-743.]
|
| [14] |
徐士博, 张美玲. 1978—2020年青藏高原草地净初级生产力时空演变分析[J]. 冰川冻土, 2024, 46(3): 1028-1042.
doi: 10.7522/j.issn.1000-0240.2024.0082
|
|
[Xu Shibo, Zhang Meiling. Spatial-temporal evolution of net primary productivity of grasslands on the Qinghai-Xizang Plateau from 1978 to 2020[J]. Journal of Glaciology and Geocryology, 2024, 46(3): 1028-1042.]
doi: 10.7522/j.issn.1000-0240.2024.0082
|
| [15] |
范毅宁, 廖梓龙, 龙胤慧, 等. 内蒙古阴山北麓草原植被净初级生产力变化特征及其气候驱动力[J]. 水利水电技术, 2024, 55(8): 38-50.
|
|
[Fan Yining, Liao Zilong, Long Yinhui, et al. Characteristics of vegetation net primary productivity change and its climatic driving forces in the Yinshanbeilu steppe, Inner Mongolia[J]. Water Resources and Hydropower Engineering, 2024, 55(8): 38-50.]
|
| [16] |
小红, 王永芳, 郭恩亮, 等. 干旱对锡林郭勒草原植被净初级生产力的影响[J]. 气候与环境研究, 2024, 29(1): 90-102.
|
|
[Xiao Hong, Wang Yongfang, Guo Enliang, et al. Effects of drought on net primary productivity of vegetation in the Xilingol grassland[J]. Climatic and Environmental Research, 2024, 29(1): 90-102.]
|
| [17] |
王爽, 李庆旭, 张彪. 锡林郭勒盟净初级生产力时空变化及其气候影响[J]. 生态学杂志, 2021, 40(3): 825-834.
|
|
[Wang Shuang, Li Qingxu, Zhang Biao. Spatiotemporal variation of net primary productivity and its climatic driving factors in Xilingol League[J]. Chinese Journal of Ecology, 2021, 40(3): 825-834.]
doi: 10.13292/j.1000-4890.202103.028
|
| [18] |
李辉, 红英, 邓国荣, 等. 1982—2015年气候变化和人类活动对内蒙古草地净初级生产力的影响[J]. 应用生态学报, 2021, 32(2): 415-424.
doi: 10.13287/j.1001-9332.202102.002
|
|
[Li Hui, Hong Ying, Deng Guorong, et al. Impacts of climate change and human activities on net primary productivity of grasslands in Inner Mongolia, China during 1982—2015[J]. Chinese Journal of Applied Ecology, 2021, 32(2): 415-424.]
doi: 10.13287/j.1001-9332.202102.002
|
| [19] |
朱文泉, 潘耀忠, 张锦水. 中国陆地植被净初级生产力遥感估算[J]. 植物生态学报, 2007, 31(3): 413-424.
doi: 10.17521/cjpe.2007.0050
|
|
[Zhu Wenquan, Pan Yaozhong, Zhang Jinshui. Estimation of net primary productivity of Chinese terrestrial vegetation based on remote sensing[J]. Chinese Journal of Plant Ecology, 2007, 31(3): 413-424.]
doi: 10.17521/cjpe.2007.0050
|
| [20] |
包刚, 辛晓平, 包玉海, 等. 内蒙古草原植被最大光能利用率取值优化研究[J]. 光谱学与光谱分析, 2016, 36(10): 3280-3286.
|
|
[Bao Gang, Xin Xiaoping, Bao Yuhai, et al. Optimization of maximum light use efficiency in Inner Mongolian steppe[J]. Spectroscopy and Spectral Analysis, 2016, 36(10): 3280-3286.]
pmid: 30246964
|
| [21] |
张磊, 罗平平, 王小珲, 等. 1960—2019年关中平原极端降水时空变化及非平稳性分析[J]. 水利水电技术, 2023, 54(3): 35-46.
|
|
[Zhang Lei, Luo Pingping, Wang Xiaohui, et al. Spatial and temporal variation and non-stationary analysis of extreme precipitation in Guanzhong Plain from 1960 to 2019[J]. Water Resources and Hydropower Engineering, 2023, 54(3): 35-46.]
|
| [22] |
Song Y Z, Wang J F, Ge Y, et al. An optimal parameters-based geographical detector model enhances geographic characteristics of explanatory variables for spatial heterogeneity analysis: Cases with different types of spatial data[J]. GIScience & Remote Sensing, 2020, 57(1): 593-610.
|
| [23] |
Liu C Y, Dong X F, Liu Y Y. Changes of NPP and their relationship to climate factors based on the transformation of different scales in Gansu, China[J]. Catena, 2015, 125: 190-199.
|
| [24] |
Hicke J A, Lobell D B, Asner G P. Cropland area and net primary production computed from 30 years of USDA agricultural harvest data[J]. Earth Interactions, 2004, 8(10): 1-20.
|
| [25] |
常屹冉, 张弛, 魏嘉诚, 等. 气候变化和人类活动对内蒙古植被净初级生产力的影响[J]. 草地学报, 2023, 31(11): 3444-3452.
doi: 10.11733/j.issn.1007-0435.2023.11.023
|
|
[Chang Yiran, Zhang Chi, Wei Jiacheng, et al. Impacts of climate change and human activities on the net primary productivity of vegetation in Inner Mongolia[J]. Acta Agrestia Sinica, 2023, 31(11): 3444-3452.]
doi: 10.11733/j.issn.1007-0435.2023.11.023
|
| [26] |
杨勇, 李兰花, 王保林, 等. 基于改进的CASA模型模拟锡林郭勒草原植被净初级生产力[J]. 生态学杂志, 2015, 34(8): 2344-2352.
|
|
[Yang Yong, Li Lanhua, Wang Baolin, et al. Simulation of net primary productivity by a satellite data-driven improved CASA model in Xilingol grassland[J]. Chinese Journal of Ecology, 2015, 34(8): 2344-2352.]
|
| [27] |
张俊怡, 刘廷玺, 罗艳云, 等. 半干旱草原型流域植被地上生物量时空分布特征及其影响因子[J]. 生态学杂志, 2020, 39(2): 364-375.
|
|
[Zhang Junyi, Liu Tingxi, Luo Yanyun, et al. Temporal and spatial distribution of aboveground biomass of vegetation and quantitative analysis of impact factors in semi-arid grassland basin[J]. Chinese Journal of Ecology, 2020, 39(2): 364-375.]
|
| [28] |
刘洋洋, 章钊颖, 同琳静, 等. 中国草地净初级生产力时空格局及其影响因素[J]. 生态学杂志, 2020, 39(2): 349-363.
|
|
[Liu Yangyang, Zhang Zhaoying, Tong Linjing, et al. Spatiotemporal dynamics of China’s grassland NPP and its driving factors[J]. Chinese Journal of Ecology, 2020, 39(2): 349-363.]
|
| [29] |
张齐飞, 陈亚宁, 孙从建, 等. 塔里木河流域水储量变化及绿洲生态安全评估[J]. 干旱区地理, 2024, 47(1): 1-14.
doi: 10.12118/j.issn.1000-6060.2023.247
|
|
[Zhang Qifei, Chen Yaning, Sun Congjian, et al. Changes in terrestrial water storage and evaluation of oasis ecological security in the Tarim River Basin[J]. Arid Land Geography, 2024, 47(1): 1-14.]
doi: 10.12118/j.issn.1000-6060.2023.247
|
| [30] |
利辉, 刘铁军, 王少慧, 等. 2001—2021年内蒙古荒漠草原水分利用效率时空变化特征及影响因素研究[J]. 干旱区地理, 2024, 47(6): 993-1003.
doi: 10.12118/j.issn.1000-6060.2023.388
|
|
[Li Hui, Liu Tiejun, Wang Shaohui, et al. Spatial and temporal variation of water use efficiency and its influencing factors in desert steppe of Inner Mongolia from 2001 to 2021[J]. Arid Land Geography, 2024, 47(6): 993-1003.]
doi: 10.12118/j.issn.1000-6060.2023.388
|
| [31] |
高清竹, 万运帆, 李玉娥, 等. 基于CASA模型的藏北地区草地植被净第一性生产力及其时空格局[J]. 应用生态学报, 2007, 18(11): 2526-2532.
|
|
[Gao Qingzhu, Wan Yunfan, Li Yu’e, et al. Grassland net primary productivity and its spatiotemporal distribution in northern Tibet: A study with CASA model[J]. Chinese Journal of Applied Ecology, 2007, 18(11): 2526-2532.]
pmid: 18260459
|
| [32] |
赵菂蒂, 钱勇. 放牧对草地退化演替的影响[J]. 青海草业, 2011, 20(2): 28-29, 33.
|
|
[Zhao Didi, Qian Yong. Effect of grazing for succession in degration grassland[J]. Qinghai Prataculture, 2011, 20(2): 28-29, 33.]
|