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Cirrus and Water Vapor Transport in the Tropical Tropopause Layer.

机译:热带对流层中的卷云和水汽输送。

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摘要

Simulations of tropical-tropopause-layer (TTL) cirrus under the influence of a large-scale equatorial Kelvin wave have been performed in two dimensions. These simulations show that, even under the influence of the large-scale wave, radiatively induced dynamics in TTL cirrus plays an important role in the transport of water vapor in the vertical direction.;In a typical TTL cirrus, the heating that results from absorption of radiation by ice crystals induces a mesoscale circulation. Advection of ice and water vapor by the radiatively induced circulation leads to the persistence of the cloud and upward advection of the cloudy air. Upward advection of the cloudy air is equivalent to upward transport of water vapor when the air above the cloud is drier than the cloudy air, and downward transport otherwise.;In TTL cirrus, microphysical processes also contribute to transport of water vapor in the vertical direction. Ice nucleation and growth, followed by sedimentation and sublimation, always lead to downward transport of water vapor. The magnitude of the downward transport by microphysical processes increases with the relative humidity of the air surrounding the cloud. Moisture in the surrounding environment is important because there is continuous interactions between the cloudy and environmental air throughout the cloud boundary.;In our simulations, when the air surrounding the cloud is subsaturated, hence drier than the cloudy air, the magnitude of the downward transport due to microphysical processes is smaller than that of the upward transport due to the radiatively induced advection of water vapor. The net result is upward transport of water vapor, and equivalently hydration of the lower stratosphere. On the other hand, when the surrounding air is supersaturated, hence moister than the cloudy air, microphysical and radiatively induced dynamical processes work in concert to induce downward transport of water vapor, that is dehydration of the lower stratosphere.;TTL cirrus processes also depend sensitively on the deposition coefficient of water vapor on ice crystals. The deposition coefficient determines the depositional growth rate of ice crystals, hence microphysical and radiative properties of the cloud. In our simulations, larger values of the deposition coefficient correspond to less ice crystals nucleated during homogeneous freezing, larger ice crystal sizes, faster ice sedimentation, smaller radiative heating rate and weaker dynamics.;These results indicate that detailed observations of the relative humidity in the vicinity of TTL cirrus and accurate laboratory measurements of the deposition coefficient are necessary to quantify the impact of TTL cirrus in the dehydration of the stratosphere.;This research highlights the complex role of microphysical, radiative and dynamical processes in the transport of water vapor within TTL cirrus. It shows that under certain realistic conditions, TTL cirrus may lead to upward transport of water vapor, which results in moistening of the lower stratosphere. Thus it is not accurate to always associate TTL cirrus with stratospheric dehydration.
机译:在二维大范围赤道开尔文波影响下对热带对流层顶(TTL)卷云进行了模拟。这些模拟表明,即使在大波浪的影响下,TTL卷云中的辐射诱导动力学在垂直方向上的水蒸气传输中也起着重要作用。在典型的TTL卷云中,吸收产生的热量冰晶体的辐射引起中尺度循环。辐射诱发的循环对冰和水蒸气的平流会导致云的持久性和多云空气的向上对流。当云层上方的空气比多云空气更干燥时,多云空气的向上对流等效于水蒸气的向上传输,否则等于向下传输。在TTL卷云中,微物理过程也有助于垂直方向上的水蒸气传输。冰的成核和生长,然后是沉降和升华,总是导致水蒸气的向下传输。通过微物理过程向下传输的幅度随云周围空气的相对湿度而增加。周围环境中的水分很重要,因为整个云边界中的多云空气和环境空气之间存在连续的相互作用。;在我们的模拟中,当云周围的空气低于饱和时,因此比多云空气更干燥,向下传输的强度由于微观物理过程的影响,由于辐射诱发的水蒸气平流作用,其比向上传输的过程要小。最终结果是水蒸气向上传输,并且平流层下部水化程度相当。另一方面,当周围的空气过饱和,因此比多云的空气潮湿时,微物理和辐射诱导的动力学过程协同作用,以诱导水蒸气向下传输,即低空平流层的脱水。TTL卷云过程还取决于对水蒸气在冰晶上的沉积系数敏感。沉积系数决定了冰晶的沉积生长速率,因此决定了云的微物理和辐射特性。在我们的模拟中,较大的沉积系数值表示在均匀冷冻过程中成核的冰晶较少,较大的冰晶尺寸,更快的冰沉降,较小的辐射加热速率和较弱的动力学;这些结果表明,对大气中相对湿度的详细观察为了量化TTL卷云在平流层脱水中的影响,有必要在TTL卷云附近进行精确的实验室测量,以测定TTL卷云的影响。卷云。它表明,在某些实际条件下,TTL卷云可能导致水蒸气向上传输,从而导致低平流层变湿。因此,始终将TTL卷云与平流层脱水联系在一起是不准确的。

著录项

  • 作者

    Dinh, Tra Phuong.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Atmospheric Sciences.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 95 p.
  • 总页数 95
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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