Characterization of microseism noise sources in Indian Ocean due to ocean atmospheric dynamics

Gyanasmita Pradhan, Ramakrushna Reddy, Paresh Nath Singha Roy
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Abstract

Microseism noise, which occurs in the period range of 2–20 s, is the most energetic band in the earth's background spectra. In the present study, we examined the amplitude spectra and directional characteristics of microseism in the Indian Ocean. We use the data from ten openly accessible land stations located all around the Indian Ocean. The probability power spectral density was used to characterize the microseism. To characterize the microseism, we employ the frequency dependent polarization approach, which is governed by the Eigen value decomposition of the 3 × 3 spectral covariance matrix. The spatial and temporal variation of microseism was investigated in order to better understand its distribution in the Indian Ocean region, which is regarded as a global source of microseism. For some stations, we observe the splitting of double frequency microseism into short period (2–5 s) and long period (6–10 s) microseism. The polarization analysis reveals the dominant sources of the microseism are located in the Southern Ocean. We also correlated the spatio-temporal variation of significant wave heights (swh) with the power spectral densities at each station. We observe a remarkable correlation between power spectral density with the significant wave height (swh) in both spatially and temporally in secondary microseism band. We also characterize the dominant surface wave types in the microseism band. In long period band Rayleigh waves are dominant and Love waves are prominent in the short period band.

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基于海洋大气动力学的印度洋微震噪声源特征
微地震噪声发生在2–20 s的周期范围内,是地球背景光谱中能量最大的波段。在本研究中,我们研究了印度洋微震的振幅谱和方向特征。我们使用了位于印度洋周围的十个可公开访问的陆地站的数据。利用概率功率谱密度来表征微地震。为了表征微地震,我们采用了频率相关极化方法,该方法由3×3频谱协方差矩阵的特征值分解控制。研究了微地震的时空变化,以更好地了解其在印度洋地区的分布,印度洋地区被视为全球微地震的来源。对于一些台站,我们观察到双频微震分为短周期(2-5 s)和长周期(6-10 s)微震。极化分析表明,微震的主要震源位于南大洋。我们还将有效波高(swh)的时空变化与每个站点的功率谱密度相关联。我们观察到,在次级微震带中,功率谱密度和有效波高(swh)在空间和时间上都存在显著的相关性。我们还描述了微震带中的主要表面波类型。长周期波段以瑞利波为主,短周期波段以洛夫波为主。
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