Arid Zone Research ›› 2023, Vol. 40 ›› Issue (11): 1744-1753.doi: 10.13866/j.azr.2023.11.04
• Land and Water Resources • Previous Articles Next Articles
ZHONG Xiaofei1,2(),ZHANG Mingjun1,2(),ZHANG Yu1,2,WANG Jiaxin3,LIU Zechen1,2,GU Lailei1,2
Received:
2023-05-07
Revised:
2023-08-05
Online:
2023-11-15
Published:
2023-12-01
ZHONG Xiaofei, ZHANG Mingjun, ZHANG Yu, WANG Jiaxin, LIU Zechen, GU Lailei. Soil water infiltration process in north and south mountains of Lanzhou City based on stable isotope[J].Arid Zone Research, 2023, 40(11): 1744-1753.
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[1] |
García-Tejero I F, Durán-Zuazo V H. Plant water use efficiency for a sustainable agricultural development[J]. Agronomy, 2022, 12(8): 1806.
doi: 10.3390/agronomy12081806 |
[2] |
Yao Y, Liu Y, Zhou S, et al. Soil moisture determines the recovery time of ecosystems from drought[J]. Global Change Biology, 2023, 29(13): 3562-3574.
doi: 10.1111/gcb.16620 pmid: 36708329 |
[3] | 雷志栋, 胡和平, 杨诗秀. 土壤水研究进展与评述[J]. 水科学进展, 1999, 10(3): 311-318. |
[Lei Zhidong, Hu Heping, Yang Shixiu. Progress and review of soil water research[J]. Advances in Water Science, 1999, 10(3): 311-318.] | |
[4] |
Beven K, Germann P. Macropores and water flow in soils[J]. Water Resources Research, 1982, 18(5): 1311-1325.
doi: 10.1029/WR018i005p01311 |
[5] | McCallum J L, Dogramaci S, Bai A, et al. Assessing temporal changes in groundwater recharge using spatial variations in groundwater ages[J]. Water Resources Research, 2020, 56(8): e2020WR027240. |
[6] | Ehleringer J R, Dawson T E. Water uptake by plants: Perspectives from stable isotope composition[J]. Plant, Cell & Environment, 1992, 15(9): 1073-1082. |
[7] |
Gazis C, Feng X. A stable isotope study of soil water: Evidence for mixing and preferential flow paths[J]. Geoderma, 2004, 119(1-2): 97-111.
doi: 10.1016/S0016-7061(03)00243-X |
[8] |
Sprenger M, Herbstritt B, Weiler M. Established methods and new opportunities for pore water stable isotope analysis[J]. Hydrological Processes, 2015, 29(25): 5174-5192.
doi: 10.1002/hyp.v29.25 |
[9] | 徐英德, 汪景宽, 高晓丹, 等. 氢氧稳定同位素技术在土壤水研究上的应用进展[J]. 水土保持学报, 2018, 32(3): 1-9, 15. |
[Xu Yingde, Wang Jingkuan, Gao Xiaodan, et al. Advances in application of hydrogen and oxygen stable isotope techniques in soil water research[J]. Journal of Soil and Water Conservation, 2018, 32(3): 1-9, 15.] | |
[10] |
Mathieu R, Bariac T. An isotopic study (2H and 18O) of water movements in clayey soils under a semiarid climate[J]. Water Resources Research, 1996, 32(4): 779-789.
doi: 10.1029/96WR00074 |
[11] |
程立平, 刘文兆. 黄土塬区几种典型土地利用类型的土壤水稳定同位素特征[J]. 应用生态学报, 2012, 23(3): 651-658.
pmid: 22720607 |
[Cheng Liping, Liu Wenzhao. Soil water stable isotope characteristics of several typical land use types in the Loess Plateau[J]. Chinese Journal of Applied Ecology, 2012, 23 (3): 651-658.]
pmid: 22720607 |
|
[12] |
McDonnell J J. The two water worlds hypothesis: Ecohydrological separation of water between streams and trees[J]. Wiley Interdisciplinary Reviews: Water, 2014, 1(4): 323-329.
doi: 10.1002/wat2.2014.1.issue-4 |
[13] |
Letz O, Siebner H, Avrahamov N, et al. The impact of geomorphology on groundwater recharge in a semi-arid mountainous area[J]. Journal of Hydrology, 2021, 603: 127029.
doi: 10.1016/j.jhydrol.2021.127029 |
[14] |
Pu H, Song W, Wu J. Using soil water stable isotopes to investigate soil water movement in a water conservation Forest in Hani Terrace[J]. Water, 2020, 12(12): 3520.
doi: 10.3390/w12123520 |
[15] |
Du K, Zhang B, Li L. Soil water dynamics under different land uses in loess hilly region in China by stable isotopic tracing[J]. Water, 2021, 13(2): 242.
doi: 10.3390/w13020242 |
[16] |
郑双科, 司炳成, 张志强, 等. 黄土塬区苹果园降雨入渗机制[J]. 应用生态学报, 2017, 28(9): 2870-2878.
doi: 10.13287/j.1001-9332.201709.031 |
[Zheng Shuangke, Si Bingcheng, Zhang Zhiqiang, et al. Rainfall infiltration mechanism of apple orchard in loess tableland[J]. Chinese Journal of Applied Ecology, 2017, 28(9): 2870-2878.]
doi: 10.13287/j.1001-9332.201709.031 |
|
[17] |
Xiang W, Si B C, Biswas A, et al. Quantifying dual recharge mechanisms in deep unsaturated zone of Chinese Loess Plateau using stable isotopes[J]. Geoderma, 2019, 337: 773-781.
doi: 10.1016/j.geoderma.2018.10.006 |
[18] |
Dong J, Zhang Z, Liu B, et al. Spatiotemporal variations and driving factors of habitat quality in the loess hilly area of the Yellow River Basin: A case study of Lanzhou City, China[J]. Journal of Arid Land, 2022, 14(6): 637-652.
doi: 10.1007/s40333-022-0097-6 |
[19] | 向定龙. 1949年以来兰州南北两山绿化问题研究[D]. 兰州: 西北民族大学, 2021. |
[Xiang Dinglong. Research on the Greening of the North and South Mountains in Lanzhou Since 1949[D]. Lanzhou: Northwest University for Nationalities, 2021.] | |
[20] |
刘小娥, 苏世平, 李毅. 兰州市南北两山典型灌丛土壤理化性质[J]. 草业学报, 2021, 30(6): 28-39.
doi: 10.11686/cyxb2020349 |
[Liu Xiao’e, Su Shiping, Li Yi. Physicochemical properties of typical shrub soil in north and south mountains of Lanzhou[J]. Acta Prataculturae Sinica, 2021, 30(6): 28-39.]
doi: 10.11686/cyxb2020349 |
|
[21] | 苏世平, 刘小娥, 李毅. 兰州市南北两山不同灌丛土壤渗透特性[J]. 水土保持研究, 2022, 29(5): 149-154, 163. |
[Su Shiping, Liu Xiaoe, Li Yi. Soil infiltration characteristics of different shrubs in the north and south mountains of Lanzhou[J]. Research of Soil and Water Conservation, 2022, 29(5): 149-154, 163.] | |
[22] | 党瑜. 试论兰州市地理环境与城址的历史变迁[J]. 中国历史地理论丛, 2000, 16(2): 143-154. |
[Dang Yu. Discussion on the historical changes of geographical environment and city site in Lanzhou[J]. Journal of Chinese Historical Geography, 2000, 16(2): 143-154.] | |
[23] | 李吉均, 方小敏, 马海洲, 等. 晚新生代黄河上游地貌演化与青藏高原隆起[J]. 中国科学: 地球科学, 1996, 1(4): 316-322. |
[Li Jijun, Fang Xiaomin, Ma Haizhou, et al. Late Cenozoic geomorphic evolution of the upper reaches of the Yellow River and the uplift of the Qinghai-Tibet Plateau[J]. Scientia Sinica(Terrae), 1996, 1(4): 316-322.] | |
[24] | 肖洪浪, 段争虎, 宋耀选, 等. 黄土高原西部兰州市郊植被的水环境响应[J]. 中国沙漠, 2006, 25(4): 517-521. |
[Xiao Honglang, Duan Zhenghu, Song Yaoxuan, et al. Water environment response of vegetation in the suburbs of Lanzhou, western Loess Plateau[J]. Journal of Desert Research, 2006, 25(4): 517-521.] | |
[25] | 王友生, 高伟东, 王多尧. 兰州市1957—2011年气候变化特征及规律分析[J]. 人民黄河, 2015, 37(10): 18-20. |
[Wang Yousheng, Gao Weidong, Wang Duoyao. Climate change characteristics and regularity analysis of Lanzhou City from 1957 to 2011[J]. Yellow River, 2015, 37(10): 18-20.] | |
[26] | 钟芳, 赵瑾, 孙荣高, 等. 兰州南北两山五类乔灌木林草地土壤养分与土壤微生物空间分布研究[J]. 草业学报, 2010, 19(3): 94-101. |
[Zhong Fang, Zhao Jin, Sun Ronggao, et al. Study on the spatial distribution of soil nutrients and soil microorganisms in five types of arbor-shrub forests in north and south mountains of Lanzhou[J]. Acta Prataculturae Sinica, 2010, 19(3): 94-101.] | |
[27] |
车存伟, 张明军, 王圣杰, 等. 基于氢氧稳定同位素的兰州市南北两山土壤蒸发时空变化及影响因素研究[J]. 地理研究, 2020, 39(11): 2537-2551.
doi: 10.11821/dlyj020190745 |
[Che Cunwei, Zhang Mingjun, Wang Shengjie, et al. Study on spatial and temporal changes and influencing factors of soil evaporation in the north and south mountains of Lanzhou City based on hydrogen and oxygen stable isotopes[J]. Geographical Research, 2020, 39(11): 2537-2551.]
doi: 10.11821/dlyj020190745 |
|
[28] | Landwehr J M, Coplen T B. Line-conditioned excess: A new method for characterizing stable hydrogen and oxygen isotope ratios in hydrologic systems[C]// International Conference on Isotopes in Environmental Studies, IAEA Vienna, 2006, 132-135. |
[29] |
Sprenger M, Tetzlaff D, Soulsby C. Soil water stable isotopes reveal evaporation dynamics at the soil-plant-atmosphere interface of the critical zone[J]. Hydrology and Earth System Sciences, 2017, 21(7): 3839-3858.
doi: 10.5194/hess-21-3839-2017 |
[30] |
Liu H, Tang J, Chen L, et al. Threshold recognition for shallow groundwater recharge by precipitation using dual isotopes in a small subtropical hilly catchment[J]. Catena, 2022, 213: 106186.
doi: 10.1016/j.catena.2022.106186 |
[31] | 向伟. 基于稳定同位素的黄土高原区域尺度土壤蒸发和地下水补给研究[D]. 杨凌: 西北农林科技大学, 2021. |
[Xiang Wei. Study on Regional Scale Soil Evaporation and Groundwater Recharge in the Loess Plateau based on Stable Isotope[D]. Yangling: Northwest University of Agriculture and Forestry, 2021.] | |
[32] |
Zimmermann U, Münnich K O, Roether W, et al. Tracers determine movement of soil moisture and evapotranspiration[J]. Science, 1966, 152(3720): 346-347.
pmid: 17775158 |
[33] |
Beven K, Germann P. Macropores and water flow in soils revisited[J]. Water Resources Research, 2013, 49(6): 3071-3092.
doi: 10.1002/wrcr.20156 |
[34] |
Jasechko S, Taylor R G. Intensive rainfall recharges tropical groundwaters[J]. Environmental Research Letters, 2015, 10(12): 124015.
doi: 10.1088/1748-9326/10/12/124015 |
[35] |
Cuthbert M O, Taylor R G, Favreau G, et al. Observed controls on resilience of groundwater to climate variability in sub-Saharan Africa[J]. Nature, 2019, 572(7768): 230-234.
doi: 10.1038/s41586-019-1441-7 |
[36] |
Wang J, Zhang M, Argiriou A A, et al. Recharge and infiltration mechanisms of soil water in the floodplain revealed by water-stable isotopes in the Upper Yellow River[J]. Sustainability, 2021, 13(16): 9369.
doi: 10.3390/su13169369 |
[37] | Cohen I, Huang Y, Chen J, et al. Pearson correlation coefficient[J]. Noise Reduction in Speech Processing, 2009, 2: 1-4. doi.org/10.1007/978-3-642-00296-0_5. |
[38] |
Zhao Y, Dai J, Tang Y, et al. Illuminating isotopic offset between bulk soil water and xylem water under different soil water conditions[J]. Agricultural and Forest Meteorology, 2022, 325: 109150.
doi: 10.1016/j.agrformet.2022.109150 |
[39] | Wahid Z, Latiff A I, Ahmad K. Application of one-way ANOVA in completely randomized experiments[C]// Journal of Physics: Conference Series. IOP Publishing, 2017, 949(1): 012017. |
[40] |
Huang T, Pang Z, Liu J, et al. Groundwater recharge mechanism in an integrated tableland of the Loess Plateau, northern China: Insights from environmental tracers[J]. Hydrogeology Journal, 2017, 25(7): 2049-2065.
doi: 10.1007/s10040-017-1599-8 |
[41] |
Yang Y, Fu B. Soil water migration in the unsaturated zone of semiarid region in China from isotope evidence[J]. Hydrology and Earth System Sciences, 2017, 21(3): 1757-1767.
doi: 10.5194/hess-21-1757-2017 |
[42] |
Huang T, Ma B, Pang Z, et al. How does precipitation recharge groundwater in loess aquifers? Evidence from multiple environmental tracers[J]. Journal of Hydrology, 2020, 583: 124532.
doi: 10.1016/j.jhydrol.2019.124532 |
[43] |
Zhao Y, Wang L. Determination of groundwater recharge processes and evaluation of the ‘two water worlds’ hypothesis at a check dam on the Loess Plateau[J]. Journal of Hydrology, 2021, 595: 125989.
doi: 10.1016/j.jhydrol.2021.125989 |
[44] |
Li Z, Chen X, Liu W, et al. Determination of groundwater recharge mechanism in the deep loessial unsaturated zone by environmental tracers[J]. Science of the Total Environment, 2017, 586: 827-835.
doi: 10.1016/j.scitotenv.2017.02.061 |
[45] |
Marquart A, Eldridge D J, Geissler K, et al. Interconnected effects of shrubs, invertebrate-erived macropores and soil texture on water infiltration in a semi-arid savanna rangeland[J]. Land Degradation & Development, 2020, 31(16): 2307-2318.
doi: 10.1002/ldr.v31.16 |
[46] |
Zheng Y, Chen N, Yu K, et al. The effects of fine roots and arbuscular mycorrhizal fungi on soil macropores[J]. Soil and Tillage Research, 2023, 225: 105528.
doi: 10.1016/j.still.2022.105528 |
[47] | 高凤霞, 韩惠. 西部半干旱区兰州市南北两山森林生态效益评估[J]. 生态科学, 2021, 40(6): 106-115. |
[Gao Fengxia, Han Hui. Ecological benefit assessment of forests in the north and south mountains of Lanzhou City, semi-arid region of western China[J]. Ecological Science, 2021, 40(6): 106-115.] |
|