黄土高原中部浅层地下水化学特征及影响因素

刘鑫, 向伟, 马小军, 范艳丽, 司炳成

中国环境科学 ›› 2021, Vol. 41 ›› Issue (11) : 5201-5209.

PDF(5657 KB)
PDF(5657 KB)
中国环境科学 ›› 2021, Vol. 41 ›› Issue (11) : 5201-5209.
水污染与控制

黄土高原中部浅层地下水化学特征及影响因素

  • 刘鑫1,2, 向伟3, 马小军1, 范艳丽1, 司炳成1,4
作者信息 +

Hydrochemical characteristics and controlling factors of shallow groundwater in the Chinese Loess Plateau

  • LIU Xin1,2, XIANG Wei3, MA Xiao-jun1, FAN Yan-li1, SI Bing-cheng1,4
Author information +
文章历史 +

摘要

通过采集黄土高原中部沿黄流域57个浅层地下水水样,采用定性(Gibbs模型、Na端元和离子相关关系)和定量(正向演替模型)分析方法探究了该地区地下水水化学特征、沿程变化规律和控制因素.结果表明,黄土高原中部沿黄流域浅层地下水均呈弱碱性;优势阴阳离子分别为HCO3-和Na+;水化学类型以HCO3-Ca-Mg为主,占40%.研究区地下水主要离子自北向南变化趋势有所差异,其中Cl-浓度保持动态稳定,SO42-、HCO3-、Mg2+和Na+浓度沿程增加,而NO3-、Ca2+和K+浓度沿程降低,矿产资源开发是研究区地下水SO42-重要来源,而强烈的阳离子交替吸附作用是引起Na+富集的重要因素.研究区地下水溶质来源主要受岩石风化作用控制,以硅酸盐岩石风化为主;大气输入、人类活动和岩石风化对地下水溶质的相对贡献分别为5%±3%、6%±13%和89%±13%.此外,下垫面因素改变、人类活动以及气候变化通过改变地下水补给与排泄等过程直接或间接的影响了地下水水量和水质.本研究结果将为黄河流域和其他类似地区当前和未来的地下水质量管理项目提供参考.

Abstract

The 57 shallow groundwater samples along the Yellow River in the middle of Chinese Loess Plateau were collected, and the qualitative (Gibbs, Na-normalized molar ratios and ions correlation methods) and quantitative methods (forward derivation modeling) were used to explore the hydrochemical characteristics, the variation rules along the channels, and the controlling factors. The results showed that the shallow groundwater samples were weakly alkaline; the dominant anion and cation was HCO3- and Na+, respectively; the major groundwater type was HCO3-Ca-Mg (accounted for 40%). There was a difference of variation trend of major ions of shallow groundwater from north to south in the research areas. The Cl- level kept dynamic stability along the way, SO42-, HCO3-, Mg2+, and Na+ increased, while NO3-, Ca2+, and K+ decreased. Mineral exploitation was an important source of SO42-, while the Na+ enrichment was caused by strong cation exchange. Moreover, the source of groundwater solutes was mainly controlled by rock weathering, primarily silicate weathering. The relative contribution of groundwater solutes by atmospheric input, human activity, and rock weathering was 5% ±3%, 6% ±13%, and 89% ±13%, respectively. Furthermore, the change of underlying surface conditions, human activities, and climate change directly or indirectly affected the groundwater quantity and quality by changing the processes of groundwater recharge and discharge. Our findings will inform current and future groundwater quality management programs for the Yellow River catchment and other similar area.

关键词

地下水 / 黄河流域 / 黄土高原 / 控制因素 / 水文地球化学

Key words

Chinese Loess Plateau / controlling factors / groundwater / hydrogeochemistry / Yellow River

引用本文

导出引用
刘鑫, 向伟, 马小军, 范艳丽, 司炳成. 黄土高原中部浅层地下水化学特征及影响因素[J]. 中国环境科学. 2021, 41(11): 5201-5209
LIU Xin, XIANG Wei, MA Xiao-jun, FAN Yan-li, SI Bing-cheng. Hydrochemical characteristics and controlling factors of shallow groundwater in the Chinese Loess Plateau[J]. China Environmental Science. 2021, 41(11): 5201-5209
中图分类号: X523   

参考文献

[1] Li Z, Coles A E, Xiao J. Groundwater and streamflow sources in China's Loess Plateau on catchment scale[J]. Catena, 2019,181:104075.https://doi.org/10.1016/j.catena.2019.
[2] Gleeson T, Befus K M, Jasechko S, et al. The global volume and distribution of modern groundwater[J]. Nature Geoscience, 2016, 11(7):542.
[3] Liu X, Zhou Z Q, Ding Y B. Vegetation coverage change and erosion types impacts on the water chemistry in western China[J]. Science of the Total Environment, 2021,772:145543.https://doi.org/10.1016/j.scitotenv.2021.
[4] Liu Y, Song H, An Z, et al. Recent anthropogenic curtailing of Yellow River runoff and sediment load is unprecedented over the past 500y[J]. Proceedings of the National Academy of Sciences, 2020,117(31):201922349.https://doi.org/10.1073/pnas.1922349117.
[5] Xiao J, Zhang F, Jin Z D. Spatial characteristics and controlling factors of chemical weathering of loess in the dry season in the middle Loess Plateau, China[J]. Hydrological Processes, 2016,30(25):4855-4869.
[6] Li Z, Xiao J, Jaivime E, et al. Spatiotemporal variations in the hydrochemical characteristics and controlling factors of streamflow and groundwater in the Wei River of China[J]. Environmental Pollution, 2019,254:113006. https://doi.org/10.1016/j.envpol.2019.
[7] 李笑,于奭,李亮,等.石期河流域地下水化学特征及物质来源分析[J]. 环境科学, 2020,41(9):145-153.Li X, Yu S, Li L, et al. Chemical characteristics of groundwater and material sources analysis in Shiqi River basin[J]. Environmental Science, 2020,41(9):145-153.
[8] 张雅,苏春利,马燕华,等.水化学和环境同位素对济南东源饮用水源地地下水演化过程的指示[J]. 环境科学, 2019,40(6):2667-2674.Zhang Y, Su C L, Ma Y H, et al. Indicators of groundwater evolution processes based on hydrochemistry and environmental isotopes:a case study of the Dongyuan drinking water source area in Ji'nan city[J]. Environmental Science, 2019,40(6):2667-2674.
[9] 刘鑫,向伟,司炳成.汾河流域浅层地下水水化学和氢氧稳定同位素特征及其指示意义[J]. 环境科学, 2021,42(4):1739-1749.Liu X, Xiang W, Si B C. Hydrochemical and isotope characteristics in the shallow groundwater of the Fenhe River basin and indicative siginificance[J]. Environmental Science, 2021,42(4):1739-1749.
[10] 张涛,何锦,李敬杰,等.蛤蟆通河流域地下水化学特征及控制因素[J]. 环境科学, 2018,39(11):143-152.Zhang T, He J, Li J J, et al. Major ionic features and possible controls in the groundwater in the Hamatong River basin[J]. Environmental Science, 2018,39(11):143-152.
[11] 王利书,唐泽军.石羊河流域地下水循环的同位素和地球化学演化特征[J]. 环境科学学报, 2013,33(6):1748-1755.Wang L S, Tang Z J. Isotopes and geochemical evolution characteritics of groundwater circulation in the Shiyang River basin[J]. Acta Science Circumstaniate, 2013,33(6):1748-1755.
[12] Wu Q F, Si B C, He H L, et al. Determining regional-scale groundwater recharge with GRACE and GLDAS[J]. Remote Sensing, 2019,11(2):154.https://doi.org/10.3390/rs11020154.
[13] Ning T, Zhi L, Liu W. Separating the impacts of climate change and land surface alteration on runoff reduction in the Jing River catchment of China[J]. Catena, 2016,147:80-86.
[14] Liang W, Bai D, Wang F Y, et al. Quantifying the impacts of climate change and ecological restoration on streamflow changes based on a Budyko hydrological model in China's Loess Plateau[J]. Water Resources Research, 2015,51(8):6500-6519.
[15] 张东海,任志远,刘焱序,等.基于人居自然适宜性的黄土高原地区人口空间分布格局分析[J]. 经济地理, 2012,32(11):13-19.Zhang D H, Ren Z Y, Liu Y X, et al. The spatial distribution pattern analysis of population in Loess Plateau region based on nature suistability for human settlement[J]. Economic Geography, 2012, 32(11):13-19.
[16] Ning T, Li Z, Liu W. Vegetation dynamics and climate seasonality jointly control the interannual catchment water balance in the Loess Plateau under the Budyko framework[J]. Hydrology & Earth System Sciences, 2017,21(3):1-25.
[17] Wu H, Wu J, Li J, et al. Spatial variations of hydrochemistry and stable isotopes in mountainous river water from the Central Asian headwaters of the Tajikistan Pamirs[J]. Catena, 2020,193:104639. https://doi.org/10.1016/j.catena.2020.
[18] 左禹政,安艳玲,吴起鑫,等.贵州省都柳江流域水化学特征研究[J]. 中国环境科学, 2017,37(7):2684-2690.Zuo Y Z, An Y L, Wu Q X, et al. Study on the hydrochemical characteristics of Duliu River basin in Guizhou province[J]. China Environmental Science, 2017,37(7):2684-2690.
[19] 刘江涛,蔡五田,曹月婷,等.沁河冲洪积扇地下水水化学特征及成因分析[J]. 环境科学, 2018,39(12):5428-5439.Liu J T, Cai W T, Cao Y E, et al. Hydrochemical characteritics of groundwater and the origin in alluvialproluvial fan of Qinhe River[J]. Environmental Science, 2018,39(12):5428-5439.
[20] Charfi S, Zouari K, Feki S, et al. Study of variation in groundwater quality in a coastal aquifer in north-eastern Tunisia using multivariate factor analysis[J]. Quaternary International, 2013,302:199-209.
[21] Feth J H, Gibbs R J. Mechanisms controlling world water chemistry:evaporation-crystallization process[J]. Science, 1970,170(3962):1088-1090.
[22] Fabiana C, Laura Z, Claudia P, et al. Vegetation, pH and Water Content as Main Factors for Shaping Fungal Richness, Community Composition and Functional Guilds Distribution in Soils of Western Greenland[J]. Frontiers in Microbiology, 2019,10:2348.
[23] Williams M R, Thomas R F, John M M. Solute dynamics in soil water and groundwater in a central Amazon catchment undergoing deforestation[J]. Biogeochemistry, 1997,38(3):303-335.
[24] Fan B L, Zhao Z Q, Tao F X, et al. Characteristics of carbonate, evaporite and silicate weathering in Huanghe River basin:A comparison among the upstream, midstream and downstream[J]. Journal of Asian Earth Sciences, 2014,96(15):17-26.
[25] Huang T M, Ma B Q. The origin of major Ions of groundwater in a loess aquifer[J]. Water, 2019,11(12):2464.
[26] 唐金平,张强,胡漾,等.巴中北部岩溶山区地下水化学特征及演化分析[J]. 环境科学, 2019,40(10):4543-4552.Tang J P, Zhang Q, Hu Y, et al. Hydrochemical characteristics of Karst groundwater in the mountains of northern Bazhong city, China[J]. Environmental Science, 2019,40(10):4543-4552.
[27] Zhou M, Li X P, Zhang M, et al. Water quality in worldwide coal mining city:A scenario in water chemistry and health risks exploration[J]. Journal of Geochemical Exploration, 2020,213:106513.
[28] 刘鑫,向伟,司炳成.渭河和泾河流域浅层地下水水化学特征和控制因素[J]. 环境科学, 2021,42(6):2817-2825.Liu X, Xiang W, Si B C. Hydrochemistry and its controlling factors and water quality assessment of shallow groundwater in the Wei and Jing River catchments[J]. Environmental Science, 2021,42(6):2817-2825.
[29] Avery A A, Hervé S. Molecular mechanisms and regulation of K+ transport in higher plants[J]. Annual Review of Plant Biology, 2003,54(1):575-603.
[30] Li Z J, Yang Q C, Yang Y S, et al. Isotopic and geochemical interpretation of groundwater under the influences of anthropogenic activities[J]. Journal of Hydrology, 2019,576:685-697.
[31] Chen Y, Zhu S, Xiao S. Discussion on controlling factors of hydrogeochemistry and hydraulic connections of groundwater in different mining districts[J]. Natural Hazards, 2019,99:689-704.
[32] 何姜毅,张东,赵志琦.黄河流域河水水化学组成的时间和空间变化特征[J]. 生态学杂志, 2017,36(5):1390-1401.He J Y, Zhang D, Zhao Z Q. Spatial and temporal variation in hydrochemical composition of river water in Yellow River basin, China[J]. Chinese Journal of Ecology, 2017,36(5):1390-1401.
[33] Chen J S, Wang F Y, Xia X H, et al. Major element chemistry of the Changjiang (Yangtze River)[J]. Chemical Geology, 2002,187(3):231-255.
[34] Xiao J, Jin Z D, Wang J, et al. Hydrochemical characteristics, controlling factors and solute sources of groundwater within the Tarim River Basin in the extreme arid region, NW Tibetan Plateau[J]. Quaternary International, 2015,380-381(4):237-246.
[35] Zhang S R, Lu X X, Higgitt D L, et al. Water chemistry of the Zhujiang (Pearl River):Natural processes and anthropogenic influences[J]. Journal of Geophysical Research Atmospheres, 2006, 112(F1):F01011.
[36] Zhang L, Song X F, Xia J, et al. Major element chemistry of the Huai River basin, China[J]. Applied Geochemistry, 2011,26(3):293-300.
[37] 李洲,李晨曦,华琨,等.黄土区洛川塬地下水化学特征及影响因素分析[J]. 环境科学, 2019,40(8):3559-3567.Li Z, Li C X, Hua K, et al.Groundwater chemistry characteristics and the analysis of the influence factors in the Luochuan Loess Tablelands[J]. Environmental Science, 2019,40(8):3559-3567.
[38] 陆彦玮.黄土高原包气带典型水文特征与潜在地下水补给的时空演变研究[D]. 杨凌:西北农林科技大学, 2020.Lu Y W. Study on typical hydrological characteritics of the vadose zone and spatiotemporal evolution of potential groundwater recharge in the Chinese Loess Plateau[D]. Yangling:Northwest A & F University, 2020.
[39] Zhu Y J, Jia X X, Shao M A. Loess thickness variations across the Loess Plateau of China[J]. Surveys in Geophysics An International Review Journal of Geophysics & Planetary Sciences, 2018,39:715-727.
[40] Chen J S, Wang F Y, Meybeck M, et al. Spatial and temporal analysis of water chemistry records (1958-2000) in the Huanghe (Yellow River) basin[J]. Global Biogeochemical Cycles, 2005,19(3).https://doi.org/10.1029/2004GB002325,2005.
[41] 陈飞,徐翔宇,羊艳,等.中国地下水资源演变趋势及影响因素分析[J]. 水科学进展, 2020,31(6):3-11.Chen F, Xu X Y, Yang Y, et al. Investigation on the evolution trends and influencing factors of groundwater resources in China[J]. Advances in Water Science, 2020,31(6):3-11.
[42] Scanlon B R, Reedy R C, Stonestrom D A, et al. Impact of land use and land cover change on groundwater recharge and quality in the southwestern US[J]. Global Change Biology, 2010,11(10):1577-1593.
[43] Huang G X, Liu C Y, Sun J C. A regional scale investigation on factors controlling the groundwater chemistry of various aquifers in a rapidly urbanized area:A case study of the Pearl River Delta[J]. Science of the Total Environment, 2018,625:510-518.
[44] Huntington J L, Niswonger R G. Role of surface-water and groundwater interactions on projected summertime streamflow in snow dominated regions:An integrated modeling approach[J]. Water Resources Research, 2012,48(11):11524.https://doi.org/10.1029/2012WR012319.

基金

国家自然科学基金项目(41877017,41630860);西北农林科技大学基本科研业务费(2452017317)

PDF(5657 KB)

Accesses

Citation

Detail

段落导航
相关文章

/