克里雅河尾闾绿洲浅层地下水位埋深变化特征研究
收稿日期: 2019-07-09
修回日期: 2020-07-04
网络出版日期: 2021-03-09
基金资助
国家自然科学基金新疆联合基金项目(U1178303);国家自然科学基金新疆联合基金项目(U1503381);新疆维吾尔自治区天山雪松计划(2017XS21)
Variations in groundwater table depth at Daliyaboyi Oasis, Keriya River, China
Received date: 2019-07-09
Revised date: 2020-07-04
Online published: 2021-03-09
地下水位埋深的动态变化极大程度上控制着荒漠植被。达理雅博依位于克里雅河尾闾,是塔克拉玛干沙漠腹地现存面积最大的一处由荒漠河岸林构成的天然绿洲,在这里对地下水位埋深动态变化的监测有助于研究其对地表植被的影响,从而进一步揭示天然绿洲形成与维系的机理。由于复杂的地理环境和闭塞的交通,尚未有学者在该绿洲获得连续的地下水位埋深监测数据。于2012年10月在尾闾绿洲腹地设立了观测井,获取了2012—2018年间地下水位埋深数据,从地下水位埋深的日极值分布特征、日极差分布特征、年内和年际波动特征4个方面分析了该井近6 a来水位埋深的动态变化过程,并结合胡杨的生长习性探讨了尾闾绿洲地下水位埋深变化对生态系统的可能影响。对该绿洲地下水位埋深数据观测结果的初步分析表明:(1) 测井每日水位埋深最小值多出现在16:00、20:00与04:00;每日水位埋深最大值多出现在16:00,分布于4—10月,尤以9月为多。(2) 地下水位埋深日极差波动范围为0~0.5 m。大于0.1 m的日极差主要分布于7—8月,并以2017年最为显著。(3) 地下水位埋深基本在1.0~3.0 m波动,月峰值主要出现在2—3月与8—9月。(4) 地下水位埋深多年平均值为2.0 m,水位埋深总体呈缓慢上升,约0.08 m·a-1。(5) 各年水位埋深在1.0~2.0 m的总天数呈增加趋势,利于胡杨种子萌发与植株扎根;在2.0~4.0 m的总天数呈减少趋势,青壮胡杨生长可能受限。
唐敏,张峰,师庆东 . 克里雅河尾闾绿洲浅层地下水位埋深变化特征研究[J]. 干旱区地理, 2021 , 44(1) : 80 -88 . DOI: 10.12118/j.issn.1000–6060.2021.01.09
Dynamic changes in groundwater table depth largely control desert vegetation, which affects and restricts oasis ecosystems in arid regions. Daliyaboyi, located in the lower reaches of the Keriya River and comprising desert riparian forest, is the largest natural oasis in the Taklimakan Desert, Xinjiang, China. Monitoring variations in groundwater table depth and studying its influence on surface vegetation further the understanding of the formation and maintenance of a pristine oasis. No researcher has previously obtained continuous groundwater monitoring data in the oasis because of the complex geographical environment and restricted travel conditions. In October 2012, our laboratory set up a monitoring well in the hinterland of the Daliyaboyi Oasis and obtained data for groundwater table depth from 2012 to 2018. This study analyzes the dynamic changes in water level from four aspects: daily extreme value distribution, diurnal range distribution, and annual and interannual fluctuations of groundwater table depth. Combined with observed growth habits of Populus euphratica, the possible influence of groundwater table depth changes on the oasis ecosystem was discussed. The preliminary analysis conclusions are as follows: (1) Daily minimum groundwater table depths occurred at 16:00, 20:00, or 04:00. Maximum depths mainly appeared at 16:00, from April to October, particularly in September. (2) Daily variations ranged from 0 to 0.5 m, and the level was deeper than 0.1 m from July to August, particularly during this two month period in 2017. (3) Groundwater table depth in each year varied from 1.0 to 3.0 m, and crests were mainly observed from February to March and August to September. (4) The average groundwater table depth for many years was 2.0 m, which showed a slowly increasing trend of approximately 0.08 m·a -1. Additionally, the total number of days with groundwater table depth in the range of 1.0-2.0 m during each year is increasing, which is suitable for the growth of Populus euphratica seedling (the dominative species of riparian vegetation in Daliyaboyi Oasis). The total number of days with depths of 2.0-4.0 m, which might restrict the growth of mature Populus euphratica, is decreasing.
Key words: Tarim Basin; Taklimakan Desert; Daliyaboyi; pristine oasis; groundwater; dynamic changes
[1] | Scanlon B R, Keese K E, Flint A L, et al. Global synjournal of groundwater recharge in semiarid and arid regions[J]. Hydrological Processes, 2010,20(15):3335-3370. |
[2] | Lite S J, Stromberg J C. Surface water and ground-water thresholds for maintaining Populus-Salix forests, San Pedro River, Arizona[J]. Biological Conservation, 2005,125(2):153-167. |
[3] | Zhang L, Dawes W R, Slavich P G, et al. Growth and ground water uptake responses of Lucerne to changes in groundwater levels and salinity: Lysimeter, isotope and modelling studies[J]. Agricultural Water Management, 1999,39(2-3):265-282. |
[4] | Cooper D J, Sanderson J S, Stannard D I, et al. Effects of long-term water table drawdown on evapotranspiration and vegetation in an arid region phreatophyte community[J]. Journal of Hydrology, 2006,325(1):21-34. |
[5] | Smith S D, Wellington A B, Nachlinger J L, et al. Functional responses of riparian vegetation to streamflow diversion in the eastern Sierra Nevada[J]. Ecological Applications, 1991,1(1):89-97. |
[6] | Fan J, Zeng C, Song H F, et al. Responses of root growth of Alhagi sparsifolia Shap (Fabaceae) to different simulated groundwater depths in the southern fringe of the Taklimakan Desert, China[J]. Journal of Arid Land, 2013,5(2):220-232. |
[7] | 赵俊红, 周华荣, 卢雅焱, 等. 2000—2015年塔里木胡杨林国家级自然保护区NPP时空动态特征及其影响因素[J]. 干旱区地理, 2020,43(1):190-200. |
[7] | [ Zhao Junhong, Zhou Huarong, Lu Yayan, et al. Temporal-spatial characteristics and influencing factors of the vegetation net primary production in the National Nature Reserve of Populus euphratica in Tarim from 2000 to 2015[J]. Arid Land Geography, 2020,43(1):190-200. ] |
[8] | Thevs N, Zerbe S, Schnittler M, et al. Structure, reproduction and flood-induced dynamics of riparian Tugai forests at the Tarim River in Xinjiang, NW China[J]. Forestry, 2008,81(1):45-57. |
[9] | Thomas F M. Influence of groundwater depth on species composition and community structure in the transition zone of Cele oasis[J]. Journal of Arid Land, 2010,2(4):235-242. |
[10] | 王雅梅, 张青青, 李骊, 等. 新疆克里雅河下游植被与地下水埋深关系初探[J]. 干旱区研究, 2020,37(3):562-569. |
[10] | [ Wang Yamei, Zhang Qingqing, Li Li, et al. Preliminary study on the relationship between vegetation and groundwater depth in the lower reaches of the Keriya River[J]. Arid Zone Research, 2020,37(3):562-569. ] |
[11] | 陈亚宁, 李卫红, 徐海量, 等. 塔里木河下游地下水位对植被的影响[J]. 地理学报, 2003,58(4):542-549. |
[11] | [ Chen Yanning, Li Weihong, Xu Hailiang, et al. The influence of groundwater on vegetation in the lower reaches of Tarim River, China[J]. Acta Geographica Sinica, 2003,58(4):542-549. ] |
[12] | Orellana F, Verma P, Loheide S P, et al. Monitoring and modeling water-vegetation interactions in groundwater-dependent ecosystems[J]. Reviews of Geophysics, 2012,50(3):1-24. |
[13] | 张经天, 席海洋. 荒漠河岸林地下水位时空动态及其对地表径流的响应[J]. 干旱区地理, 2020,43(2):388-397. |
[13] | [ Zhang Jintian, Xi Haiyang. Spatiotemporal dynamics of groundwater levels in a desert riparian forest and its response to surface runoff[J]. Arid Land Geography, 2020,43(2):388-397. ] |
[14] | 黄金廷, 崔旭东, 王冬, 等. 格尔木河流域地下水生态功能及经济损益阈值解析[J]. 干旱区地理, 2019,42(2):263-270. |
[14] | [ Huang Jinting, Cui Xudong, Wang Dong, et al. Groundwater ecological function and economic profit and loss threshold in Golmud River Catchment[J]. Arid Land Geography, 2019,42(2):263-270. ] |
[15] | 崔培毅. 塔里木河流域森林资源及其保护[C]//塔里木河中下游实地踏勘报告. 北京: 中国统计出版社, 2000: 276-300. |
[15] | [ Cui Peiyi. Forest resources and their protection in Tarim River Basin//Field Survey Report of Middle and Lower Tarim River Beijing: China Statistics Press, 2000: 276-300. ] |
[16] | Fan Y, Li H, Miguez M G. Global patterns of groundwater table depth[J]. Science, 2013,339(6122):940-943. |
[17] | 周兴佳, 李保生, 朱峰, 等. 南疆克里雅河绿洲发育和演化过程研究[J]. 云南地理环境研究, 1996,8(2):44-57. |
[17] | [ Zhou Xingjia, Li Baosheng, Zhu Feng, et al. The research on the development and evolution of the oasis of Keria River in the Tarim Basin of Xinjiang[J]. Yunnan Geographic Environment Research, 1996,8(2):44-57. ] |
[18] | 田裕钊. 克里雅河下游三角洲的吐加依: 标志生态退化的一种自然综合体[J]. 中国沙漠, 1988,8(2):14-28. |
[18] | [ Tian Yuzhao. Tugayi in the delta the lower reaches of the Kerya River: A natural complex reflecting ecological degradation[J]. Journal of Desert Research, 1988,8(2):14-28. ] |
[19] | 朱震达, 陆锦华, 江伟铮. 塔克拉玛干沙漠克里雅河下游地区风沙地貌的形成发育与环境变化趋势的初步研究[J]. 中国沙漠, 1988,8(2):4-13. |
[19] | [ Zhu Zhenda, Lu Jinhua, Jiang Weizhen. Study on formation and development of aeolian landform and trend of environmental change at lower reach of the Keriya River, Taklimakan Desert[J]. Journal of Desert Research, 1988,8(2):4-13. ] |
[20] | 杨小平. 绿洲演化与自然和人为因素的关系初探: 以克里雅河下游地区为例[J]. 地学前缘, 2001,8(1):83-89. |
[20] | [ Yang Xiaoping. The relationship between oases evolution and natural as well as human factors: Evidences from the lower reaches of the Keriya River, southern Xinjiang, China[J]. Earth Science Frontiers, 2001,8(1):83-89. ] |
[21] | 胡文康, 张立运. 克里雅河下游荒漠河岸植被的历史、现状和前景[J]. 干旱区地理, 1990,13(1):46-51. |
[21] | [ Hu Wenkang, Zhang Liyun. History present condition and prospects of desert vegetation in the lower reaches of Keliya River[J]. Arid Land Geography, 1990,13(1):46-51. ] |
[22] | 焦克勤, 姚檀栋, 李世杰. 西昆仑山32 ka来的冰川与环境演变[J]. 冰川冻土, 2000,22(3):250-256. |
[22] | [ Jiao Keqin, Yao Tandong, Li Shijie. Evolution of glaciers and environment in the west Kunlun Mountains during the past 32 ka[J]. Journal of Glaciology and Geocryology, 2000,22(3):250-256. ] |
[23] | 许君利, 刘时银, 张世强, 等. 塔里木盆地南缘喀拉米兰河克里雅河流内流区近30a来的冰川变化研究[J]. 冰川冻土, 2006,28(3):312-318. |
[23] | [ Xu Junli, Liu Shiyin, Zhang Shiqiang, et al. Glaciers fluctuations in the Karamilan Keriya River watershed in the past 30 years[J]. Journal of Glaciology and Geocryology, 2006,28(3):312-318. ] |
[24] | 凌裕泉. 塔克拉玛干沙漠的气候特征及其变化趋势[J]. 中国沙漠, 1990,10(2):12-22. |
[24] | [ Ling Yuquan. The climatic characteristics and its changing tendency in the Taklimakan Desert[J]. Journal of Desert Research, 1990,10(2):12-22. ] |
[25] | 黄晶晶, 张峰, 师庆东, 等. 2015—2016年塔克拉玛干沙漠腹地天然绿洲气温及相对湿度变化特征[J]. 新疆大学学报(自然科学版), 2019,36(3):267-275. |
[25] | [ Huang Jingjing, Zhang Feng, Shi Qingdong, et al. Variation characteristics for temperature and relative humidity of the natural oasis in the hinterland of the Taklamakan Desert for 2015—2016[J]. Journal of Xinjiang University (Natural Science Edition), 2019,36(3):267-275. ] |
[26] | 倪频融. 达里雅博依绿洲的历史、现状及其演变前景[J]. 干旱区研究, 1993,10(4):12-18. |
[26] | [ Ni Pinrong. History, present situation and evolution prospect of DaliyaBeyi Oasis[J]. Arid Zone Research, 1993,10(4):12-18. ] |
[27] | 储国强, 刘嘉麒, 孙青, 等. 新疆克里雅河洪泛事件与树轮记录的初步研究[J]. 第四纪研究, 2002,22(3):252-257. |
[27] | [ Chu Guoqiang, Liu Jiaqi, Sun Qing, et al. Preliminary research on the flood events based on the studies of tree ring width (Populus euphratica) in the Keriya River[J]. Quaternary Sciences, 2002,22(3):252-257. ] |
[28] | Ci L J. The impact of global change on desertification in China[J]. Journal of Natural Resources, 1994,9(4):289-303. |
[29] | Lei Y, Li X, Ling H. Model for calculating suitable scales of oases in a continental river basin located in an extremely arid region, China[J]. Environmental Earth Sciences, 2015,73(2):571-580. |
[30] | 任国玉, 郭军, 徐铭志, 等. 近50年中国地面气候变化基本特征[J]. 气象学报, 2005,63(6):942-956. |
[30] | [ Ren Guoyu, Guo Jun, Xu Mingzhi, et al. Climate changes of China’s mainland over the past half century[J]. Acta Meteorological Sinica, 2005,63(6):942-956. ] |
[31] | 毛建刚, 陈志强, 吴文玲, 等. 于田县昆仑灌区水资源利用分析[J]. 干旱区资源与环境, 2004,18(9):41-43. |
[31] | [ Mao Jiangang, Chen Zhiqiang, Wu Wenling, et al. Analysis on water resources utilization in Kunlun irrigation area in Yutian Country[J]. Journal of Arid Land Resources and Environment, 2004,18(9):41-43. ] |
[32] | 陈荷生. 水在克里雅河流域生态地理环境中的作用[J]. 中国沙漠, 1988,8(2):1-56. |
[32] | [ Chen Hesheng. Effect of water in eco-geographic environment of the Keriya River Valley[J]. Journal of Desert Research, 1988,8(2):1-56. ] |
[33] | 胡江玲, 孙浩捷. 新疆于田绿洲农业资源潜力分析及持续发展对策研究[J]. 干旱区资源与环境, 2007,21(4):136-141. |
[33] | [ Hu Jiangling, Sun Haojie. Study on production potential and sustainable development of agricultural resources in Yutian Oasis[J]. Journal of Arid Land Resources and Environment, 2007,21(4):136-141. ] |
[34] | 张昊, 李俊清, 李景文, 等. 额济纳绿洲胡杨种群繁殖物候节律特征的研究[J]. 内蒙古农业大学学报(自然科学版), 2007,28(2):60-66. |
[34] | [ Zhang Hao, Li Junqing, Li Jingwen, et al. The reproductive phonological rhythm characteristics of Populus euphratica Oliv population in the Ejina Oasis of Inner Momgolia[J]. Journal of Inner Monolia Agricultural University, 2007,28(2):60-66. ] |
[35] | 买尔燕古丽·阿不都热合曼, 艾里西尔·库尔班, 阿迪力·阿不来提, 等. 塔里木河下游胡杨物候特征观测[J]. 干旱区研究, 2008,25(4):525-530. |
[35] | [ Maryamgul Abdurahman, Alishir Kurban, Adil Abla, et al. Study on phonological characters of Populus euphratica Oliv in the lower reaches of the Tarim River[J]. Arid Zone Research, 2008,25(4):525-530. ] |
[36] | 樊自立, 马英杰, 张宏, 等. 塔里木河流域生态地下水位及其合理深度确定[J]. 干旱区地理, 2004,27(1):8-13. |
[36] | [ Fan Zili, Ma Yingjie, Zhang Hong, et al. Research of eco-water table and rational depth of groundwater of Tarim River drainage basin[J]. Arid Land Geography, 2004,27(1):8-13. ] |
[37] | 朱京琳. 胡杨与密叶杨播种育苗初步研究[J]. 新疆农业科学, 1963,3:116-117. |
[37] | [ Zhu Jinglin. Preliminary study on seeding and seedling of Populus euphratica and Populus talassica[J]. Xinjiang Agricultural Sciences, 1963,3:116-117. ] |
/
〈 |
|
〉 |