<tt id="6hsgl"><pre id="6hsgl"><pre id="6hsgl"></pre></pre></tt>
          <nav id="6hsgl"><th id="6hsgl"></th></nav>
          国产免费网站看v片元遮挡,一亚洲一区二区中文字幕,波多野结衣一区二区免费视频,天天色综网,久久综合给合久久狠狠狠,男人的天堂av一二三区,午夜福利看片在线观看,亚洲中文字幕在线无码一区二区
          Global EditionASIA 中文雙語Fran?ais
          China

          Study sheds light on water cycles on plateau

          China Daily | Updated: 2025-11-05 00:00
          Share
          Share - WeChat

          LANZHOU — Chinese scientists have recently filled a gap in terms of long-term observation and research of below-cloud evaporation in the hinterland of the Qinghai-Tibet Plateau in the west of the country, according to the Northwest Institute of Eco-environment and Resources of the Chinese Academy of Sciences.

          The study advances quantitative research on below-cloud evaporation in this critical region, deepening understanding of the response mechanism of the high-altitude hydrological cycle in the context of global warming, the NIEER said.

          Conducted by a joint study team featuring researchers from the NIEER and the Institute of Mountain Hazards and Environment of the CAS, the findings of this study have been published in the Journal of Hydrology.

          The Qinghai-Tibet Plateau, dubbed "Asia's water tower", is a very important water resource reservoir. The stable precipitation isotope on this plateau serves as a key indicator in analyzing regional and global water cycles and is also widely used in paleoclimate reconstruction and water cycle research, said He Xiaobo, associate researcher at the NIEER.

          The hinterland region of the Qinghai-Tibet Plateau, especially in the Tanggula Range area which is a climate transition zone, is the core location of "Asia's water tower". This region, notably, is experiencing significant warming and is becoming considerably wetter.

          He noted that there used to be a gap in quantitative research regarding below-cloud evaporation in the hinterland of the Qinghai-Tibet Plateau, especially in the Tanggula Mountains Range area of the climate transition zone. The harsh high-altitude environment there had long hampered the accumulation of long-term observation data, thus restricting understanding of the water cycle at such high altitudes.

          Based on continuous observational data spanning a period of 12 years, the study team simulated the below-cloud evaporation process. Researchers combined long-term observations of stable precipitation isotopes and meteorological data with the Stewart model to estimate sub-cloud evaporation and determine its influence on precipitation isotopes in the Tanggula Mountains Range.

          They quantified the degree of influence of below-cloud evaporation on stable precipitation isotopes and revealed the key driving factors and their mechanisms of action.

          The annual weighted mean of the remaining raindrop fraction was estimated at 88.1 percent, and a significant increasing trend was observed at the annual scale, indicating a progressive weakening of below-cloud evaporation intensity in this region, according to the study.

          Significant isotope modifications in precipitation were observed during the descent from the cloud base to the ground. This indicated that below-cloud evaporation contributed to a noticeable enrichment of heavy stable precipitation isotopes in the central region of the plateau.

          By clarifying the impact of below-cloud evaporation on the amount of precipitation, this study provides a critical scientific basis for paleoclimatic reconstruction and water resource management in the central Qinghai-Tibet Plateau, He noted.

          He disclosed that the study team will further expand its observation network, conduct studies across a longer timescale, and continuously reveal response mechanisms of the water cycle on the Qinghai-Tibet Plateau to changes in the global climate.

          Xinhua

          Today's Top News

          Editor's picks

          Most Viewed

          Top
          BACK TO THE TOP
          English
          Copyright 1994 - . All rights reserved. The content (including but not limited to text, photo, multimedia information, etc) published in this site belongs to China Daily Information Co (CDIC). Without written authorization from CDIC, such content shall not be republished or used in any form. Note: Browsers with 1024*768 or higher resolution are suggested for this site.
          License for publishing multimedia online 0108263

          Registration Number: 130349
          FOLLOW US
          主站蜘蛛池模板: 久久人人爽人人人人片av| 老司机导航亚洲精品导航| а天堂8中文最新版在线官网 | 无码人妻视频一区二区三区| 亚洲精品91中文字幕| 亚洲日本韩国欧美云霸高清| 国产亚洲精品成人av久| 中文字幕日韩国产精品| 九九热在线观看视频免费| 亚洲精品二区在线播放| 亚洲综合在线日韩av| 国内久久久久久久久久| √天堂资源在线中文8在线最新版| 国产女人18毛片水真多1| 亚洲岛国成人免费av| 少妇午夜啪爽嗷嗷叫视频| 国产亚洲一二三区精品| 人人爽人人模人人人爽人人爱| 国产内射XXXXX在线| 国产精品熟女一区二区三区 | 天天拍夜夜添久久精品大| 亚洲乱码精品中文字幕| 国产精品99久久99久久久不卡| 亚洲特黄色片一区二区三区| 亚洲成av人片不卡无码手机版| 久热久热免费在线观视频| 免费人成视频在线观看网站| 五月天中文字幕mv在线| 青青青爽在线视频观看| 人人玩人人添人人澡超碰| 少妇人妻呻呤| 欧美激情一区二区三区高清视频| 天天爽夜夜爱| 熟女一区二区中文字幕| 日韩不卡无码精品一区高清视频| 久久国产色av免费看| 人妻少妇久久精品一区二区| 国产不卡一区二区三区视频| 久久精品国产亚洲精品2020| 亚洲爆乳大丰满无码专区| 在线视频 亚洲精品|