A turbulence data reduction scheme for autonomous and expendable profiling floats

IF 4.1 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Ocean Science Pub Date : 2023-02-28 DOI:10.5194/os-19-193-2023
K. Hughes, J. Moum, D. Rudnick
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引用次数: 2

Abstract

Abstract. Autonomous and expendable profiling-float arrays such as those deployed in the Argo Program require the transmission of reliable data from remote sites. However, existing satellite data transfer rates preclude complete transmission of rapidly sampled turbulence measurements. It is therefore necessary to reduce turbulence data on board. Here we propose a scheme for onboard data reduction and test it with existing turbulence data obtained with a modified SOLO-II profiling float. First, voltage spectra are derived from shear probe and fast-thermistor signals. Then, we focus on a fixed-frequency band that we know to be unaffected by vibrations and that approximately corresponds to a wavenumber band of 5–25 cpm. Over the fixed-frequency band, we make simple power law fits that – after calibration and correction in post-processing – yield values for the turbulent kinetic energy dissipation rate ϵ and thermal-variance dissipation rate χ. With roughly 1 m vertical segments, this scheme reduces the necessary data transfer volume 300-fold to approximately 2.5 kB for every 100 m of a profile (when profiling at 0.2 m s−1). As a test, we apply our scheme to a dataset comprising 650 profiles and compare its output to that from our standard turbulence-processing algorithm. For ϵ, values from the two approaches agree within a factor of 2 87 % of the time; for χ, they agree 78 % of the time. These levels of agreement are greater than or comparable to that between the ϵ and χ values derived from two shear probes and two fast thermistors, respectively, on the same profiler.
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自主和消耗性剖面浮子的湍流数据减少方案
摘要Argo项目中部署的自主和消耗性分析浮子阵列需要从远程站点传输可靠数据。然而,现有的卫星数据传输速率阻碍了快速采样湍流测量的完整传输。因此,有必要减少机上的湍流数据。在这里,我们提出了一种机载数据缩减方案,并使用改进的SOLO-II型剖面浮子获得的现有湍流数据进行测试。首先,从剪切探头和快速热敏电阻信号中得到电压谱。然后,我们专注于一个固定的频带,我们知道它不受振动的影响,大约对应于5-25 cpm的波数频带。在固定频带上,我们做了简单的幂律拟合-经过后处理的校准和校正-湍流动能耗散率ε和热方差耗散率χ的屈服值。对于大约1米的垂直段,该方案将所需的数据传输量减少了300倍,每100米剖面(当剖面速度为0.2米s - 1时)减少到约2.5 kB。作为测试,我们将我们的方案应用于包含650个剖面的数据集,并将其输出与我们的标准湍流处理算法的输出进行比较。对于柱,两种方法的值在287%的时间内一致;对于χ,他们有78%的时间是一致的。这些一致性水平大于或可与同一剖面仪上分别由两个剪切探头和两个快速热敏电阻得出的ε和χ值之间的一致性。
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来源期刊
Ocean Science
Ocean Science 地学-海洋学
CiteScore
5.90
自引率
6.20%
发文量
78
审稿时长
6-12 weeks
期刊介绍: Ocean Science (OS) is a not-for-profit international open-access scientific journal dedicated to the publication and discussion of research articles, short communications, and review papers on all aspects of ocean science: experimental, theoretical, and laboratory. The primary objective is to publish a very high-quality scientific journal with free Internet-based access for researchers and other interested people throughout the world. Electronic submission of articles is used to keep publication costs to a minimum. The costs will be covered by a moderate per-page charge paid by the authors. The peer-review process also makes use of the Internet. It includes an 8-week online discussion period with the original submitted manuscript and all comments. If accepted, the final revised paper will be published online. Ocean Science covers the following fields: ocean physics (i.e. ocean structure, circulation, tides, and internal waves); ocean chemistry; biological oceanography; air–sea interactions; ocean models – physical, chemical, biological, and biochemical; coastal and shelf edge processes; paleooceanography.
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