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Aspects of moat formation in tropical cyclone eyewall replacement cycles.

机译:热带气旋眼墙更换周期中护城河形成的各个方面。

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摘要

In order to increase our fundamental understanding of rapid intensity change in tropical cyclones (TCs), the evolving kinematic and thermodynamic conditions in TC eyewall replacement cycles and attendant moats are examined in this study. With the assistance of theory, observations, and cloud-resolving numerical simulations, the response of convection to typical environments outside of intense TC cores is addressed. In our analysis of the environmentally-dependent behaviors of deep, convective clouds, we consider new hypotheses and insights in rainband dynamics and concentric eyewall formation.;Re-visiting basic stirring criteria for two-dimensional flows, we derive simple rules-of-thumb for the existence of deep, moist convection in environments of intense horizontal strain. These results are compared with numerical integrations of vorticity in a nondivergent barotropic model. The kinematic and thermodynamic environments during eyewall replacement cycles are documented through observational case studies incorporating dense arrays of dropsondes and aircraft data. Moat observations are compared with idealized balanced vortex theory to increase our understanding of moat dynamics. In addition, idealized cloud-resolving, numerical simulations are carried out to address how horizontal strain, vertical shear and the thermodynamic basic state influence individual deep, convective clouds in TC-like environments.;We find that regions of intense horizontal strain are quite common outside of intense TC eyewalls. Observations show this region is also marginally unstable at low-levels and that, as a moat forms in concentric eyewall formation, the region outside of an inner eyewall acquires eye-like thermodynamics. Consistent with observations, idealized solutions to an axisymmetric, balanced-vortex model show that subsidence rapidly increases in the moat region as a secondary eyewall forms. In the midst of marginal convective instability, our idealized cloud simulations suggest a practical threshold for adverse filamentation of convective clouds. However, convection exhibits increasing resiliency to adverse strain under increasingly favorable thermodynamic conditions. Also, rich dynamics, which are most likely at work in concentric eyewall and moat formation and in rainbands, are revealed in our systematic exploration of convective behaviors across a wide spectrum of horizontal and vertical shears.
机译:为了加深我们对热带气旋(TC)强度快速变化的基本了解,本研究对TC眼壁更换周期和伴随的护城河中不断变化的运动学和热力学条件进行了研究。借助理论,观测和云解析数值模拟,可以解决对流对强TC核心以外典型环境的响应。在对深层对流云的与环境有关的行为进行分析时,我们考虑了雨带动力学和同心眼壁形成方面的新假设和新见识;重新考察二维流的基本搅拌准则,我们得出了简单的经验法则在强烈的水平应变环境中存在深而湿的对流。将这些结果与非散度正压模型中涡度的数值积分进行了比较。通过结合密集的探空仪和飞机数据的观察性案例研究,记录了眼墙更换周期中的运动和热力学环境。将护城河观测结果与理想化的平衡涡理论进行比较,以增加我们对护城河动力学的了解。此外,进行了理想的云解析,数值模拟,以解决类似TC的环境中水平应变,垂直剪切和热力学基本状态如何影响单个深对流云的问题;我们发现水平应变强烈的区域非常普遍。在强烈的TC眼墙之外。观察表明,该区域在低水平时也略微不稳定,并且,当同心眼壁形成一条沟at时,内眼壁外部的区域将获得类似于眼睛的热力学。与观察结果一致,轴对称平衡涡模型的理想解表明,随着次级眼壁的形成,护城河区域的沉降迅速增加。在边缘对流不稳定性中,我们理想化的云模拟为对流云不利的丝状化提出了一个实用的阈值。然而,在日益有利的热力学条件下,对流展现出对不利应变的增加的弹性。此外,我们对大范围的水平和垂直剪切的对流行为的系统研究揭示了丰富的动力学,最有可能在同心眼墙和护城河形成以及在雨带中起作用。

著录项

  • 作者单位

    Colorado State University.;

  • 授予单位 Colorado State University.;
  • 学科 Atmospheric Sciences.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:16

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