所有新聞
Logo

通知中心

沒有訊息!

通知中心

沒有訊息!

分類

    • •所有 “科技” 子分類
    • •小工具
    • •人工智慧
    • •汽車
    • •太空
    • •互聯網
    • •新能源
    • •所有 “科學” 子分類
    • •醫學與生物學
    • •歷史與考古學
    • •天文學與天體物理學
    • •物理與化學
    • •太陽
    • •量子物理學
    • •遺傳學
    • •所有 “行星” 子分類
    • •海洋
    • •動物
    • •植物
    • •發現
    • •不尋常現象
    • •天氣與生態
    • •南極洲
    • •所有 “社會” 子分類
    • •記錄
    • •藝術
    • •音樂
    • •八卦
    • •時尚
    • •建築學
    • •電影
    • •披露
    • •食物
    • •所有 “金錢” 子分類
    • •拍賣
    • •稅收
    • •公司
    • •股市
    • •銀行和貨幣
    • •加密貨幣
    • •娛樂圈
    • •所有 “世界事件” 子分類
    • •國際組織
    • •摘要
    • •突發新聞
    • •即將舉行的全球事件
    • •峰會會議
    • •特朗普 美國
    • •所有 “人類” 子分類
    • •喵
    • •意識
    • •青年
    • •心理學
    • •教育
    • •旅行
    • •設計
    • •語言

關注我們

  • •科技
  • •科學
  • •行星
  • •社會
  • •金錢
  • •世界事件
  • •人類

分享

  • •醫學與生物學
  • •歷史與考古學
  • •天文學與天體物理學
  • •物理與化學
  • •太陽
  • •量子物理學
  • •遺傳學
  • 關於我們
  • 使用條款
  • 隱私政策
  • 首頁
  • 科學
  • 物理與化學

New Insights into Aerosol Impact on Climate from China Study

09:26, 27 十二月

编辑者: Vera Mo

A recent investigation into the role of light-absorbing aerosols has unveiled their significant influence on wintertime haze formation, shedding light on their complex interactions with atmospheric processes. Conducted by a team led by Prof. Li Guohui from the Institute of Earth Environment at the Chinese Academy of Sciences, the study emphasizes the dual mechanisms through which aerosols regulate the Earth's heat balance.

Published in the Proceedings of the National Academy of Sciences, the research utilized an advanced radiative transfer model that integrates a multi-component aerosol distribution with regional atmospheric chemical transport, alongside observational data. This comprehensive approach allowed the researchers to quantitatively assess how light-absorbing aerosols interact with radiation and photolysis, particularly during winter months.

Prof. Li noted, "The findings indicate that previous studies may have overestimated the positive role of aerosol light absorption in haze formation." This revelation suggests that while aerosols contribute to local pollution, their effects can vary significantly on a larger scale.

The study found that light-absorbing aerosols create a 'warm bubble' effect at the top of the atmospheric boundary layer, leading to uneven heating rates. This phenomenon enhances the upward movement of air in polluted regions while promoting downward air movement in cleaner areas, ultimately resulting in lower PM2.5 concentrations.

Moreover, the presence of these aerosols appears to reduce atmospheric oxidation, which in turn suppresses the generation of secondary aerosols. These insights are pivotal for refining climate models and developing effective strategies aimed at reducing aerosol emissions and improving air quality.

This research, backed by collaborations with prominent institutions including Stanford University and the California Institute of Technology, provides essential data for understanding the intricate role of aerosols in the climate system and their potential applications in environmental policy.

閱讀更多有關此主題的新聞:

22 一月

New Insights into Mars' Dichotomy Reveal Planet's Inner Secrets

20 一月

New Insights into Hidden Black Holes: Potential Impacts on Galaxy Formation

17 一月

New Insights into Aurora Phenomena from Canadian Researchers

发现错误或不准确的地方吗?

我们会尽快处理您的评论。