干旱区研究 ›› 2021, Vol. 38 ›› Issue (5): 1263-1273.doi: 10.13866/j.azr.2021.05.08
收稿日期:
2020-07-06
修回日期:
2021-05-08
出版日期:
2021-09-15
发布日期:
2021-09-24
通讯作者:
杨余辉
作者简介:
曾康康(1989-),男,硕士研究生,主要从事干旱区水资源研究. E-mail: 基金资助:
ZENG Kangkang1(),YANG Yuhui1(),HU Yicheng2,FENG Xiancheng1
Received:
2020-07-06
Revised:
2021-05-08
Online:
2021-09-15
Published:
2021-09-24
Contact:
Yuhui YANG
摘要:
利用喀什河流域山区2017-07—2018-06大气降水同位素数据,以及流域山区温度、降水气象资料,分析了降水中δ18O、δD和氘盈余(d-excess)变化特征,讨论了δ18O与气温、降水量的关系,通过利用HYSPLI模型追踪分析流域山区大气降水的水汽来源。结果表明:(1) 流域内降水中δ18O季节变化明显,夏季δ18O同位素富集,冬季δ18O同位素贫化。(2) 不同降水类型中δ18O、δD的关系差异明显,夏季δD蒸发分馏大于δ18O、降雨大气降水线斜率及截距较小;冬季δD蒸发分馏明显减弱,降雪大气降水线斜率及截距较大。(3) 流域内大气降水同位素存在明显的温度效应,但是降水量效应不显著。(4) 流域内大气降水水汽主要来源于大西洋,受水汽远距离输送,途中加入较多二次蒸发水汽的影响,氘盈余值(d-excess)整体上偏大,但是2月氘盈余偏低,与受北极气团源地温度低、空气湿度大、水汽输送路径短影响有关。(5) 该流域夏季降水主要来源于西风环流和局地再循环水汽,冬季则受西风环流和北极气团共同影响,大西洋水汽形成的降水占研究区总降水量的68.6%,局地再循环水汽占17.1%,北冰洋水汽形成的降水占研究区总降水量的14.3%。
曾康康,杨余辉,胡义成,冯先成. 喀什河流域降水同位素特征及水汽来源分析[J]. 干旱区研究, 2021, 38(5): 1263-1273.
ZENG Kangkang,YANG Yuhui,HU Yicheng,FENG Xiancheng. Isotopic characteristics and water vapor sources of precipitation in the Kashi River Basin[J]. Arid Zone Research, 2021, 38(5): 1263-1273.
表1
研究区氢氧同位素、氘盈余、气温与降水月平均值"
日期/年-月 | 平均值 | ||||
---|---|---|---|---|---|
δO/‰ | δ18O/‰ | 氘盈余/‰ | 气温/℃ | 降水量/mm | |
2017-07 | -7.22 | -3.09 | 17.5 | 20.9 | 30.0 |
2017-08 | -9.66 | -3.49 | 18.26 | 17.5 | 37.4 |
2017-09 | -96.43 | -14.12 | 16.53 | 11.6 | 12.1 |
2017-10 | -81.61 | -12.62 | 19.35 | 4.46 | 17.3 |
2017-11 | -66.32 | -11.09 | 22.4 | 3.42 | 41.3 |
2017-12 | -147.56 | -20.76 | 18.52 | 2.18 | 19.7 |
2018-01 | -148.84 | -19.95 | 10.76 | -5.9 | 12.5 |
2018-02 | -172.83 | -21.90 | 2.37 | 0.37 | 11.3 |
2018-03 | -117.01 | -16.09 | 11.72 | 4.71 | 19.7 |
2018-04 | -55.88 | -8.63 | 13.16 | 7.42 | 13.6 |
2018-05 | -73.37 | -11.01 | 14.71 | 12.23 | 17.7 |
2018-06 | -16.18 | -3.77 | 13.98 | 18.04 | 25.1 |
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