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Comparison of wind stress algorithms, datasets and oceanic power input

机译:风应力算法,数据集和海洋力输入的比较

摘要

If the ocean is in a statistically steady state, energy balance is a strong constraint, suggesting that the energy input into the world ocean is dissipated simultaneously at the same rate. Energy conservation is one of the most important principles in the natural world. However, the study of energy balance in the oceanic circulation has long been overlooked. Mink and Winch (1998) proposed that energy is needed to maintain the meridional overturning circulation and they also concluded that the wind energy input into the world ocean constitute the most important part. Since then, many estimates on the wind energy input have been given with a focus on different time and spatial scales. It is well known that it is the air-sea momentum flux (wind stress) that actually drives the ocean circulation, especially the upper layer circulation. Due to the difficulties of directly measuring the wind stress, different algorithms were proposed to relate the wind stress with the wind velocity and other related atmospheric and oceanic variables. Different algorithms in fact produce quite different wind stresses, which may leads to spurious estimates in the wind energy input into the world ocean. The thesis is organized as follows. In chapter 1, we try to understand the difference of four bulk algorithms, and conclude that different bulk algorithms may yield the wind energy input differences of 20%. Comparison of 4 different wind stress dataset were presented in Chapter 2. However, we do not determine which product is the best. In Chapter 3, a simple numerical experiment was executed and some preliminary estimate on the effects of introducing the wind stress dependence on the oceanic surface velocity were given. The ECCO data computation, however, does not produce the results as expected and some explanations are given.
机译:如果海洋处于统计稳定状态,则能量平衡是一个强大的约束条件,这表明输入世界海洋的能量以相同的速率同时耗散。节约能源是自然界最重要的原则之一。然而,长期以来人们一直忽视海洋循环中能量平衡的研究。 Mink和Winch(1998)提出维持经向翻转循环需要能量,他们还得出结论,输入世界海洋的风能是最重要的部分。从那时起,许多关于风能输入的估计都集中在不同的时间和空间尺度上。众所周知,真正推动海洋环流,特别是上层环流的是海气动量通量(风应力)。由于直接测量风应力的困难,提出了将风应力与风速以及其他相关的大气和海洋变量相关联的不同算法。实际上,不同的算法会产生完全不同的风应力,这可能导致对输入到世界海洋的风能的虚假估计。论文组织如下。在第一章中,我们试图了解四种体积算法的区别,并得出结论,不同的体积算法可能产生20%的风能输入差异。第2章介绍了4种不同的风应力数据集的比较。但是,我们不确定哪种产品是最好的。在第三章中,进行了一个简单的数值实验,并对引入风应力对海洋表面速度的影响进行了初步估算。但是,ECCO数据计算无法产生预期的结果,并给出了一些解释。

著录项

  • 作者

    Yuan Shaoyu;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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