›› 2018, Vol. 35 ›› Issue (6): 1251-1261.doi: 10.13866/j.azr.2018.06.01
ZHAO Jun1, YANG Jian-xia1, ZHU Guo-feng1, 2
Received:
2018-03-20
Revised:
2018-04-16
Online:
2018-11-15
Published:
2018-11-08
ZHAO Jun, YANG Jian-xia, ZHU Guo-feng. Effect of ecological water conveyance on vegetation coverage in surrounding area of the Qingtu Lake[J]., 2018, 35(6): 1251-1261.
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[1] 石万里.人工输水对石羊河下游青土湖区域生态环境的影响分析[J].生态学报,2017,37(18) :5 951-5 960.[Shi Wanli. Effect of artificial water transfer on ecological environment of Qingtu lake in the lower reaches of Shiyang River [J]. Acta Ecologica Sinica,2017,37(18): 5 951-5 960.] [2] 邓铭江.塔里木河下游应急输水植被恢复响应及生态修复研究[J].中国水利,2004(14) : 15-18.[Deng Mingjiang. Plant recovery responses to the emergency water diversion in the lower reaches of the Tarim River and ecological recovery study[J]. China Water Resources,2004,(14): 15-18.] [3] 石丽,吐尔逊·哈斯木,韩桂红.塔里木河下游生态输水的背景、效益和存在的问题[J]. 水土保持通报,2008,28(1):176-180.[Shi Li,Tuerxun Hasimu,Han Guihong. Background, benefits and problems of water conveyance to the lower reaches of the Tarim River [J].Bulletin of Soil and Water Conservation,2008,28(1):176-180.] [4] 徐海量,陈亚宁,李卫红. 塔里木河下游生态输水后地下水的响应研究[J]. 环境科学研究,2003,16(2) : 19-22,38.[Xu Hailiang, Chen Yaning, Li Weihong. Study on response of groundwater after ecological water transport at the lower reaches of the Tarim River [J]. Research of Environmental Sciences ,2003,16(2) : 19-22,38.] [5] 陈亚宁,李卫红,陈亚鹏,等. 新疆塔里木河下游断流河道输水与生态恢复[J].生态学报,2007,27(2) : 538-545.[Chen Yaning,Li Weihong,Chen Yapeng,et al. Water conveyance in dried-up riverway and ecological restoration in the lower reaches of Tarim River, China [J]. Acta Ecologica Sinica,2007,27(2) : 538-545.] [6] 陈永金,陈亚宁,刘加珍. 塔里木河下游植被覆盖度变化与地下水质关系[J]. 环境科学,2010,31(3):612-617.[Chen Yongjin,Chen Yaning Liu Jiazhen. Correlationships between the coverage of vegetation and the quality of ground water in the lower reaches of the Tarim River [J]. Environmental Science,2010,31(3) : 612-617.] [7] 沙代提·木沙,玉米提·哈力克,托乎提·艾合买提,等. 塔里木河下游生态输水过程中荒漠河岸林活力恢复监测[J].生态环境学报,2009,18(5) : 1 898-1 902.[ Shadaiti Musha1 , Umut Halik, Tuohuti Aihemaiti,et al. Monitoring on vitality dynamics of tugai vegetation in the lower reaches of Tarim River by ecological water delivery [J]. Ecology and Environmental Sciences,2009,18(5):1 898-1 902.] [8] 邓铭江.塔里木河下游生态输水及植被恢复遥感监测评价[J]. 冰川冻土,2007,29(3) :380-386.[Deng Mingjiang. An appraisal of remote-sensing monitoring on vegetation restoration and ecological water-conveying in the lower reaches of Tarim River [J]. Journal of Glaciology and Geocryology,2007,29(3) :380-386.] [9] 阮晓,王强,陈亚宁,等.塔里木河流域荒漠河岸植物对应急输水的生理响应[J].生态学报,2005,25(8):1 966-1 973.[Ruan Xiao,Wang Qiang,Chen Yaning,et al. Physiological response of desert plants to watering in hyper arid areas of Tarim River [J]. Acta Ecologica Sinica,2005,25(8) :1 966-1 973.] [10] 滑永春,李增元,高志海,等.2001年以来甘肃民勤植被覆盖变化分析[J].干旱区研究,2017,34(2) : 337-343.[Hu Yongchun, Li Zengyuan, Gao Zhihai,et al. Variation of vegetation coverage in Minqin County since 2001 [J]. Arid Zone Research,2017,34(2): 337-343.] [11] 周金霖,马明国,肖青,等.西南地区植被覆盖动态及其与气候因子的关系[J].遥感技术与应用,2017,32(5):966-972.[Zhou Jinlin,Ma Mingguo,Xiao Qing,et al. Vegetation dynamics and its relationship with climatic factors in southwestern China [J]. Remote Sensing Technology and Application,2017,32(5):966-972.] [12] 苏王新,李卓,陈书琴,等.河北坝上地区植被覆盖演化特征及其风险评估[J].干旱区研究,2018,35(3):686-694.[Su Wang Xin,Li Zhuo,Chen Shuqin,et al. Evolution trend of vegetation coverage and its risk assessment in the bashang region in Hebei Province [J]. Arid Zone Research,2018,35(3):686-694.] [13] 张勇,杨自辉,王立,等.石羊河中游生长季植被覆盖对气候的响应[J].干旱区研究,2018,35(3):662-668.[Zhang Yong,Yang Zihui,Wang Li, et al. Response of vegetation coverage to climatic factors in the middle reaches of the Shiyang River in growing season [J]. Arid Zone Research,2018,35(3):662-668.] [14] Yang X, Liu S, Yang T, et al. Spatial-temporal dynamics of desert vegetation and its responses to climatic variations over the last three decades: a case study of Hexi region in Northwest China[J]. Journal of Arid Land, 2016, 8(4): 556-568. [15] Yang X, Liu S, Yang T, et al. Spatial-temporal dynamics of desert vegetation and its responses to climatic variations over the last three decades: a case study of Hexi region in Northwest China[J]. Journal of Arid Land, 2016, 8(4): 556-568. [16] 李海亮.基于MODIS数据的石羊河流域植被覆盖时空变化研究[D]. 兰州:西北师范大学,2009. [Li Hailiang. Study on the Tempoyal-Spatial Change of Vegetation Cover in Shiyang River Basin Based on MODIS Data [D]. Lanzhou:Northwest Normal University,2009.] [17] 李卫红,杨玉海,覃新闻,等. 塔里木河下游断流河道输水的生态变化分析[J]. 中国水土保持,2009(6) :10-12.[Li Weihong,Yang Yuhai, Tan Xinwen,et al. Ecological changes of water conveyance in dried-up river way in the down stream of Tarim River [J]. Soil and Water Conservation in China,2009(6):10-12.] [18] 陈政融,刘世增,刘淑娟,等.青土湖水面形成对区域典型植被分布的影响[J].中国农学通报,2015,31(21):177-183.[Chen Zhengrong,Liu Shizeng,Liu Shujuan, et al . Effect of water body forming on the distribution of typical vegetation in Qingtu lake [J]. Chinese Agricultural Science Bulletin,2015,31(21):177-183.] [19] 陈政融,刘世增,刘淑娟,等.芦苇和白刺空间格局对青土湖生态输水的响应[J].草业科学,2015,32(12):1 960-1 968.[Chen Zhengrong,Liu Shizeng, Liu Shujuan, et al. Response of form.phragmites australis and form.Nitraria tangutorum after ecological water delivery to Qingtu lake [J]. Pratacultural Science,2015,32(12):1 960-1 968.] [20] 张永明,候敏慧,何玉琛.石羊河流域行业取耗水总量控制与水资源保障方案研究[M].北京:中国水利水电出版社,2015:1-114. [Zhang Yongming,Hou Minhui,He Yuchen. Study on Total Water Consumption Control and Water Resources Guarantee Scheme in Shiyang River Basin [M]. Beijing: China Water Conservancy and Hydropower Press,2015:1-114.] [21] 蓝欣,郑娇玉,江帆,等.石羊河流域下游植被覆盖变化与地下水和气候的响应分析[J].兰州大学学报,2015,51(6):865-870,876.[Lan Xin,Zheng Jiaoyu,Jiang Fan, et al. Astudy on the responses of vegetation cover to dynamic changes in groundwater and climatic factors in the lower reaches of Shiyang River basin[J]. Journal of Lanzhou University(Natural Sciences),2015,51(6):865-870,876.] [22] 赵军,韦莉,陈姗. 石羊河流域上游生态系统服务价值的变化研究[J]. 干旱区资源与环境,2010,24(1):36-40.[Zhao Jun,Weili,Chen Shan. Dynamics of the ecosystem service values a long the upper reaches of Shiyang River basin [J]. Journal of Arid Land Resources and Environment,2010,24(1):36-40] [23] 姚正毅,王涛,杨经培,等. 阿拉善高原频发沙尘暴因素分析[J]. 干旱区资源与环境, 2008, 22(9): 54-61. [Yao Zhengyi,Wang Tao,Yang Jingpei,et al. Analysis on frequently occurrence of dust storm in the Alxa Plateau [J]. Journal of Arid Land Resources and Environment,2008,22(9): 54-61.] [24] 颉耀文,汪桂生.黑河流域历史时期水资源利用空间格局重建[J]. 地理研究,2014, 33(10): 1 977-1 991. [Jie Yaowen,Wang Guisheng. Reconstruction of historic spatial pattern for water resources utilization in the Heihe River basin [J]. Geographical Research,2014,33(10): 1 977-1 991.] [25] 汤奇成,张捷斌. 西北干旱地区水资源与生态环境保护[J]. 地理科学进展,2001, 20(3): 227-233.[Tang Qicheng,Zhang Jiebin. Water resources and eco-environment protection in the arid regions in northwest of China [J]. Progress In Geography,2001,20(3): 227-233.] [26] Tang Z, Shi Y, Nan Z, et al. The economic potential of payments for ecosystem services in water conservation: A case study in the upper reaches of Shiyang River basin, northwest China[J]. Environment and Development Economics, 2012, 17(4): 445-460. [27] Zhao Y, Wei Y, Li S, et al. Downstream ecosystem responses to middle reach regulation of river discharge in the Heihe River Basin, China[J]. Hydrology and Earth System Sciences, 2016, 20(11): 4 469-4 481 [28] 席海洋,冯起,司建华. 实施分水方案后对黑河下游地下水影响的分析[J]. 干旱区地理,2007,30(4): 487-495.[Xi Haiyang, Feng Qi,Si Jianhua. In fluence of water transport project on groundwater level at lower reaches of the Heihe River [J]. Arid Land Geography,2007,30(4):487-495.] [29] 郭铌,梁芸,王小平.黑河调水对下游生态环境恢复效果的卫星遥感监测分析[J]. 中国沙漠,2004,24(6): 740-744.[Guo Ni, Liang Yun,Wang Xiaoping. Remote sensing monitoring and analysis on effect of environmental recovery in lower reaches of Heihe River due to re-distributing runoff [J]. Journal of Desert Research,2004,24(6): 740-744.] [30] 阿布都米吉提·阿布力克木,阿里木江·卡斯木,艾里西尔·库尔班,等. 基于多源空间数据的塔里木河下游湖泊变化研究[J]. 地理研究,2016,35(11): 2 071-2 090.[Ablekim Abdimijit Kasimu Alimujiang Kurban Alishir,et al. Evolution of small lakes in lower reaches of Tarim River based on multi-source spatial data [J]. Geographical Research,2016,35(11): 2 071-2 090.] [31] 张一驰,于静洁,乔茂云,等. 黑河流域生态输水对下游植被变化影响研究[J]. 水利学报,2011,42(7): 757-765.[Zhang Yichi, Yu Jingjie, Qiao Maoyun,et al. Effects of eco-water transfer on changes of vegetation in the lower Heihe River Basin [J]. Journal of Hydraulic Engineering,2011,42(7): 757-765.] [32] 任娟,肖洪浪,王勇,等. 居延海湿地生态系统服务功能及价值评估[J]. 中国沙漠, 2012,32(3): 852-856.[Ren Juan,Xiao Honglang,Wang Yong,et al.Valuation of ecosystem service values of Juyan lake wetland[J]. Journal of Desert Research,2012,32(3): 852-856.] [33] Zhao Y, Wei Y, Li S, et al. Downstream ecosystem responses to middle reach regulation of river discharge in the Heihe River Basin, China[J]. Hydrology and Earth System Sciences,2016,20(11): 4 469-4 481. [34] Parmesan C, Yohe G. A globally coherent fingerprint of climate change impacts across natural systems[J]. Nature, 2003, 421(6 918): 37-42. [35] Xiao S, Xiao H, Peng X, et al. Hydroclimate-driven changes in the landscape structure of the terminal lakes and wetlands of the China’s Heihe River Basin[J]. Environmental monitoring and assessment, 2015, 187(1): 4 091. [36] Wolters M, Garbutt A, Bakker J P. Salt-marsh restoration: evaluating the success of de-embankments in north-west Europe[J]. Biological Conservation, 2005, 123(2): 249-268. [37] Li Y, Wang N A, Zhang C Q, et al. Early Holocene environment at a key location of the northwest boundary of the Asian summer monsoon: a synthesis on chronologies of Zhuye Lake, Northwest China[J]. Journal of Arid Land, 2014, 6(5): 511-528. [38] Li W, Li Z, Wang J. Evaluation of oasis ecosystem risk by reliability theory in an arid area: A case study in the Shiyang River Basin, China[J]. Journal of Environmental Sciences(China), 2007, 19(4): 508-512. [39] 邓晨晖, 白红英, 高山,等.秦岭植被覆盖时空变化及其对气候变化与人类活动的双重响应[J].自然资源学报,2018,33(3):425-438.[Deng Chenhui,Bai Hongying,Gao Shan,et al.Spatial-temporal variation of the vegetation coverage in Qinling Mountains and its dual response to climate change and human activities [J]. Journal of Natural Resources,2018,33(3):425-438.] |
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