黄土塬区土地利用变化对地表蒸散的影响
作者:
基金项目:

国家自然科学基金项目(41601222,41630860,41877017)资助


Effects of Land Use Change on Evapotranspiration in the Loess Tableland
Author:
Fund Project:

National Natural Science Foundation of China (Nos. 41601222,41630860,41877017)

  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [37]
  • |
  • 相似文献 [20]
  • | | |
  • 文章评论
    摘要:

    明确黄土高原地表蒸散对土地利用变化的响应,有助于评估退耕还林/还草工程对区域气候的影响。为此,在陕西长武黄土塬区5个地点分别采集农地和20龄苹果园10 m深土壤剖面样品,测定土壤水分和氯离子含量,结合当地22龄苹果园4~18 m土壤水分历史数据,基于空间换时间的方法定量评估农地转化为苹果园后对地表蒸散的影响。结果表明:(1)由农地转化的20龄苹果园4~10 m土壤水分明显减小,仅为农地的71%;(2)农地对地下水的平均潜在补给量和地表蒸散量分别为57 mm·a–1和527 mm·a–1,分别占年均降水量的10%和90%;(3)农地转化为苹果园后地表蒸散量增加,22龄苹果园平均蒸散量为625 mm·a–1,相比农地增加量为98 mm·a–1,其中4~10 m和4~18 m深层土壤水分别贡献了24 mm·a–1和41 mm·a–1,约占总蒸散量的4%和7%。本文首次定量评估了黄土高原地区农地转化为苹果园对地表蒸散的影响以及深层土壤水对深根系苹果树蒸散的贡献,为评价该区域土地利用变化对蒸散以及气候的影响提供科学依据。

    Abstract:

    【Objective】 Studying the response of evapotranspiration to land use change in Chinese Loess Plateau (CLP) is of great significance to clarify the effects of the Grain for Green Project on regional climate. Many studies have focused on the temporal trend or spatial distribution of reference evapotranspiration based on meteorological or satellite data at the watershed or regional scales. However, these studies cannot reflect the actual situation of the impact of land use change on surface evapotranspiration. Thus, the quantitative evaluation of actual evapotranspiration at the stand scale is lacking. Therefore, the objective of this study is to evaluate the effects of conversion from cultivated farmland into apple orchard on the actual evapotranspiration. 【Method】 A paired experimental study was conducted at the Changwu Tableland, south of the CLP. Both the cultivated farmlands and 20-year-old apple orchards were sampled with a soil auger (0.06 m in diameter) at 0.2 m intervals at each of the five selected sites, with a total of 10 deep soil cores (10 m). The volumetric soil water content was calculated by mass water content and soil bulk density, and the chloride concentrations of soil water were measured by extraction method. Since the local apple orchards were all converted from cultivated farmlands and the soil texture is uniform, the space-for-time method was applied. As precipitation is the only source of water for local crops, the chlorine mass balance method can be used to estimate groundwater recharge. Therefore, the surface evapotranspiration can be estimated by combining soil water mass balance with chloride mass balance. 【Result】 The results show that the averaged soil water content of 4~10 m soil layer in 20-year-old apple orchard was 0.20 m3 m–3. This was significantly lower than that in farmland (0.28 m3·m–3) and implies that soil water content were obviously affected by deep root after cultivated farmland converted into apple orchard 20 years ago. The long-term averaged groundwater recharge rate was 57±13.5 mm·a–1 in cultivated farmlands, which resulted in the actual evapotranspiration of 527±13.5 mm·a–1 and accounting for 90%±2.3% of the annual precipitation. After cultivated farmland converted into 20-year-old apple orchard, the actual evapotranspiration significantly increased, with an average of 625 mm·a–1, accounting for 107% of the annual precipitation. Compared to cultivated farmlands, the actual evapotranspiration, in total, increased 1960 mm in 20-year-old apple orchard from 20 years ago, with an annual average of 98 mm. Within the 20-year-old apple orchards, soil water in 4~10 m, and 10~18 m soil layers contribute 24 mm·a–1(4%), and 41 mm·a–1(3%) to the annual evapotranspiration, respectively. 【Conclusion】 The small contributions of 4~10 m and 10~18 m soil layers indicated that the deep soil water (below 4 m) has an important role in evapotranspiration of the deep rooted apple tree. However, the main water sources for evapotranspiration still depend on the shallow soil water (0~4 m) that is easily recharged by the latest precipitation. This is the first study that quantitatively evaluated the impacts of cultivated farmland being converted into apple orchard on the evapotranspiration and the contribution of deep soil water to evapotranspiration. This study provides a scientific basis for evaluating the effects of land use change on the regional evapotranspiration and climate on the CLP and other regions with a significant land use/cover change.

    参考文献
    [1] Good S P,Noone D,Bowen G. Hydrologic connectivity constrains partitioning of global terrestrial water fluxes[J]. Science,2015,349(6244):175—177.
    [2] Song X M,Zhang J Y,Zhan C S,et al. Review for impacts of climate change and human activities on water cycle[J]. Journal of Hydraulic Engineering,2013,44(7):779—790.[宋晓猛,张建云,占车生,等. 气候变化和人类活动对水文循环影响研究进展[J]. 水利学报,2013,44(7):779—790.]
    [3] Liu M L,Tian H Q,Chen G S,et al. Effects of land-use and land-cover change on evapotranspiration and water yield in China during 1900-2000[J]. Journal of the American Water Resources Association,2008,44(5):1193—1207.
    [4] Zhang D J,Zhang X X,Wu P F. Relationship between ET and LUCC in a typical watershed of Loess Plateau over the past 20 years[J]. Arid Land Geography,2011,34(3):400—408.[张殿君,张学霞,武鹏飞. 黄土高原典型流域土地利用变化对蒸散发影响研究[J]. 干旱区地理,2011,34(3):400—408.]
    [5] Gou J J,Wang F,Jin K,et al. Cooling effect induced by vegetation restoration on the Loess Plateau[J]. Acta Ecologica Sinica,2018,38(11):3970—3978.[苟娇娇,王飞,金凯,等. 黄土高原植被恢复引发区域气温下降[J]. 生态学报,2018,38(11):3970—3978.]
    [6] Xue Y Y,Liang H B,Zhang Y,et al. Spatial and temporal variations of land surface temperature of the Loess Plateau[J]. Earth and Environment,2017,45(5):500—507.[薛亚永,梁海斌,张园,等. 黄土高原地表温度变化的时空格局[J]. 地球与环境,2017,45(5):500—507.]
    [7] Li J J,Peng S Z,Li Z. Detecting and attributing vegetation changes on China's Loess Plateau[J]. Agricultural and Forest Meteorology,2017,247:260—270.
    [8] Shao M A,Jia X X,Wang Y Q,et al. A review of studies on dried soil layers in the Loess Plateau[J]. Advances in Earth Science,2016,31(1):14—22.[邵明安,贾小旭,王云强,等. 黄土高原土壤干层研究进展与展望[J]. 地球科学进展,2016,31(1):14—22.]
    [9] Fu B J,Liu Y,Lü Y,et al. Assessing the soil erosion control service of ecosystems change in the Loess Plateau of China[J]. Ecological Complexity,2011,8(4):284—293.
    [10] 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.
    [11] Gates J B,Scanlon B R,Mu X M,et al. Impacts of soil conservation on groundwater recharge in the semi-arid Loess Plateau,China[J]. Hydrogeology Journal,2011,19(4):865—875.
    [12] Huang T M,Pang Z H. Estimating groundwater recharge following land-use change using chloride mass balance of soil profiles:A case study at Guyuan and Xifeng in the Loess Plateau of China[J]. Hydrogeology Journal,2011,19(1):177—186.
    [13] Huang Y N,Chang Q R,Li Z. Land use change impacts on the amount and quality of recharge water in the loess tablelands of China[J]. Science of the Total Environment,2018,628/629:443—452.
    [14] Zhang B,Zhang T F. Responses of reference crop evapotranspiration in Loess Plateau of Northwest China to climate change in 1961-2010 and estimation of future trend[J]. Chinese Journal of Ecology,2013,32(3):733—740.[张勃,张调风. 1961—2010年黄土高原地区参考作物蒸散量对气候变化的响应及未来趋势预估[J]. 生态学杂志,2013,32(3):733—740.]
    [15] Feng X M,Fu B J,Piao S L,et al. Revegetation in China's Loess Plateau is approaching sustainable water resource limits[J]. Nature Climate Change,2016,6(11):1019—1022.
    [16] Yang F L,Zhang Q,Wang W Y,et al. Evapotranspiration and factors influencing evapotranspiration in the spring wheat farmland of China's Loess Plateau[J]. Acta Ecologica Sinica,2014,34(9):2323—2328.[阳伏林,张强,王文玉,等. 黄土高原春小麦农田蒸散及其影响因素[J]. 生态学报,2014,34(9):2323—2328.]
    [17] Han X Y,Liu W Z,Cheng L P. Vertical distribution characteristics and temporal stability of soil water in deep profile on the Loess Tableland,Northwest China[J]. Chinese Journal of Applied Ecology,2017,28(2):430—438.[韩晓阳,刘文兆,程立平. 黄土塬区深剖面土壤水分垂直分布特征及其时间稳定性[J]. 应用生态学报,2017,28(2):430—438.]
    [18] Zhang S L,Yang D W,Yang Y T,et al. Excessive afforestation and soil drying on China's Loess Plateau[J]. Journal of Geophysical Research:Biogeosciences,2018,123(3):923—935.
    [19] Fan J,Wang Q J,Jones S B,et al. Soil water depletion and recharge under different land cover in China's Loess Plateau[J]. Ecohydrology,2016,9(3):396—406.
    [20] Zhang Z Q,Evaristo J,Li Z,et al. Tritium analysis shows apple trees may be transpiring water several decades old[J]. Hydrological Processes,2017,31(5):1196—1201.
    [21] Liu K Y,Si B C,Zhang Z Q. Responses of water uptake pattern of apple trees with different stand ages to precipitation on the Loess Plateau[J]. Journal of Soil and Water Conservation,2018,32(4):88—94,108.[刘柯渝,司炳成,张志强. 黄土高原不同林龄苹果树根系吸水策略对降水的响应[J]. 水土保持学报,2018,32(4):88—94,108.]
    [22] Zhao X N,Li N,Gao X D,et al. Characteristics of soil water utilization for different stand ages of jujube trees based on 18O tracking[J]. Transactions of the Chinese Society of Agricultural Engineering,2018,34(3):135—142.[赵西宁,李楠,高晓东,等. 基于18O示踪的不同树龄枣树土壤水分利用特征分析[J]. 农业工程学报,2018,34(3):135—142.]
    [23] Zhang Z Q,Li M,Si B C,et al. Deep rooted apple trees decrease groundwater recharge in the highland region of the Loess Plateau,China[J]. Science of the Total Environment,2018,622/623:584—593.
    [24] Wang R,Liu W Z,Zhao X P. Dynamic characteristics of groundwater level on Changwu tableland[J]. Agricultural Research in the Arid Areas,2010,28(3):48—52.[王锐,刘文兆,赵小鹏. 长武塬区地下水位动态特征分析[J]. 干旱地区农业研究,2010,28(3):48—52.]
    [25] Cheng L P,Liu W Z. Long term effects of farming system on soil water content and dry soil layer in deep loess profile of loess tableland in China[J]. Journal of Integrative Agriculture,2014,13(6):1382—1392.
    [26] Eriksson E,Khunakasem V. Chloride concentration in groundwater,recharge rate and rate of deposition of chloride in the Israel Coastal Plain[J]. Journal of Hydrology,1969,7(2):178—197.
    [27] Scanlon B R,Keese K E,Flint A L,et al. Global synthesis of groundwater recharge in semiarid and arid regions[J]. Hydrological Processes,2006,20(15):3335—3370.
    [28] Huang T M,Pang Z H,Liu J L,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.
    [29] Li H,Si B C,Li M. Rooting depth controls potential groundwater recharge on hillslopes[J]. Journal of Hydrology,2018,564:164—174.
    [30] Zhang L,Wang Y,Liu F L. Changes of tritium concentration in precipitation of China in two decades[J]. South-to-North Water Transfers and Water Science & Technology,2008,6(6):94—96.[张琳,王莹,刘福亮. 近二十年我国大气降水氚浓度及其变化[J]. 南水北调与水利科技,2008,6(6):94—96.]
    [31] Cheng L P,Liu W Z,Li Z. Soil water in deep layers under different land use patterns on the Loess Tableland[J]. Acta Ecologica Sinica,2014,34(8):1975—1983.[程立平,刘文兆,李志. 黄土塬区不同土地利用方式下深层土壤水分变化特征[J]. 生态学报,2014,34(8):1975—1983.]
    [32] Zhang J,Wang L,Han X,et al. Evapotranspiration of farmland on loess tableland and its major influencing factors[J]. Acta Pedologica Sinica,2016,53(6):1421—1432.[张静,王力,韩雪,等. 黄土塬区农田蒸散的变化特征及主控因素[J]. 土壤学报,2016,53(6):1421—1432.]
    [33] Zhang X M,Yu X X,Wu S H,et al. Calculation and analysis of quota of water requirement of main afforestation species in Loess Plateau[J]. Research of Soil and Water Conservation,2008,15(1):36—40.[张晓明,余新晓,武思宏,等. 黄土高原主要造林树种需水定额计算与分析[J]. 水土保持研究,2008,15(1):36—40.]
    [34] Zhao Q F,Guo W D,Ling X L,et al. Analysis of evapotranspiration and water budget for various land use in semi-arid areas of Tongyu,China[J]. Climatic and Environmental Research,2013,18(4):415—426.[赵钱飞,郭维栋,凌肖露,等. 半干旱区不同类型土地利用的蒸散量及水分收支差异分析——以通榆为例[J]. 气候与环境研究,2013,18(4):415—426.]
    [35] Wang S Y,Wang L,Han X,et al. Evapotranspiration characteristics of apple orchard at peak period of fruiting in loess tableland[J]. Scientia Silvae Sinicae,2016,52(1):128—135.[王石言,王力,韩雪,等. 黄土塬区盛果期苹果园的蒸散特征[J]. 林业科学,2016,52(1):128—135.]
    [36] Jian S Q,Zhao C Y,Fang S M,et al. Effects of different vegetation restoration on soil water storage and water balance in the Chinese Loess Plateau[J]. Agricultural and Forest Meteorology,2015,206:85—96.
    [37] Zhou S G,Shao Q Q,Cao W. Characteristics of land use and land cover change in the Loess Plateau over the past 20 years[J]. Journal of Geo-Information Science,2016,18(2):190—199.[周书贵,邵全琴,曹巍. 近20年黄土高原土地利用/覆被变化特征分析[J]. 地球信息科学学报,2016,18(2):190—199.]
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

陆蕴青,向伟,李敏,司炳成.黄土塬区土地利用变化对地表蒸散的影响[J].土壤学报,2023,60(1):89-98. DOI:10.11766/trxb202103150143 LU Yunqing, XIANG Wei, LI Min, SI Bingcheng. Effects of Land Use Change on Evapotranspiration in the Loess Tableland[J]. Acta Pedologica Sinica,2023,60(1):89-98.

复制
分享
文章指标
  • 点击次数:473
  • 下载次数: 1615
  • HTML阅读次数: 1170
  • 引用次数: 0
历史
  • 收稿日期:2021-03-15
  • 最后修改日期:2021-12-02
  • 录用日期:2022-03-07
  • 在线发布日期: 2022-03-07
文章二维码