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The Inversion of Vertical Current Shear from X-Band Observations of the Wavefield.

机译:从波场的X波段观测值反演垂直电流剪切。

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摘要

Ocean surface waves propagate according to a dispersion relationship, which defines the relationship between a wave's wavenumber and its frequency. In the presence of underlying currents, waves are accelerated or decelerated, and this dispersion relationship is augmented by an additional Doppler shift. Furthermore, if the underlying currents are not depth-uniform, the Doppler shift-wavenumber relationship is non-linear. This dissertation focuses on the development of an inversion method to estimate current-depth profiles from a collection of wavelength-dependent Doppler shift measurements. This process leverages Gaussian quadrature along with multiple least squares techniques to supply constraints to the otherwise inherently noisy inversion.;To measure Doppler shifts to be used as inputs into the inversion process, this work takes advantage of the sensitivity of marine X-band backscatter to space-time wavefield properties. Sequential images of backscatter are collected and, using a Fast Fourier Transform, are transformed into wavenumber-frequency space for current extraction.;X-Band backscatter (along with supporting wind and current measurements) was collected during two unique field campaigns. The first took place in June, 2013 as a part of the Riverine and Estuarine Transport Experiment 2 (RIVET2) field campaign in the Mouth of the Columbia River (MCR), Oregon. The second data set was collected from R/P FLIP in the Southern California bight in November 2013 as a part of the SoCal2013 experiment. From the strong, polarized currents in the MCR to the weaker, wind- and tide-driven currents of the deeper water off of California, the contrast between the data sets from the perspective of wave-current interaction is significant.;The results of the new inversion method from both data sets are compared to those measured by ADCPs. The depth- and time-dependence of the comparisons show that inverted currents successfully capture important geophysical phenomena such as depth-dependent tidal intrusions in the MCR and wind-driven current shear in deeper water. In deep water, the inversion is shown to provide reliable current estimates to a depth of , where is the minimum measured wavenumber. Furthermore, the inversion is shown to supply valuable current information within the upper 2 m of the surface, filling a historical gap in current measurement capability.
机译:海洋表面波根据色散关系传播,色散关系定义了波的波数与其频率之间的关系。在存在潜在电流的情况下,波会加速或减速,并且这种色散关系会通过额外的多普勒频移而增强。此外,如果基础电流不是深度均匀的,则多普勒频移-波数关系是非线性的。本文着重研究一种反演方法的发展,该反演方法可从一系列依赖于波长的多普勒频移测量值中估计电流深度剖面。该过程利用高斯正交以及多种最小二乘技术为原本固有的噪声反演提供约束。为了测量多普勒频移以用作反演过程的输入,这项工作利用了海洋X波段反向散射对时空波场特性。收集反向散射的顺序图像,并使用快速傅立叶变换将其转换为波数-频率空间以进行电流提取。在两次独特的野战中收集了X波段反向散射(以及辅助的风和电流测量)。第一次活动于2013年6月在俄勒冈州哥伦比亚河河口(MCR)进行的河与河口运输实验2(RIVET2)野外活动中进行。作为SoCal2013实验的一部分,第二个数据集是在2013年11月从南加利福尼亚湾的R / P FLIP收集的。从MCR中的强极化电流到加利福尼亚州以外较深水域的较弱,风和潮汐驱动的电流,从波流相互作用的角度看,数据集之间的对比非常重要。将两个数据集的新反演方法与ADCP测得的结果进行比较。比较的深度和时间依赖性表明,倒流成功地捕获了重要的地球物理现象,例如MCR中与深度有关的潮汐入侵和深水中的风流剪切。在深水中,反演显示出可提供可靠的电流估计值到,即最小测得的波数。此外,反演显示出在表面的上2 m内提供有价值的电流信息,填补了电流测量能力的历史空白。

著录项

  • 作者

    Campana, Jeffrey Daniel.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Ocean engineering.;Physical oceanography.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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