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Characterization of underwater optical turbulence on the example of the Rayleigh-Benard water tank

机译:瑞利百峰水箱展示水下光湍流的特征

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For many years sound has been used as a primary method for underwater communication. However, data transmission rate of acoustic systems is low because typical frequencies associated with underwater acoustics are between tens of hertz and hundreds of kilohertz. A higher bandwidth can be achieved with visible light to transfer data underwater. The first challenge for underwater laser communication is scattering and absorption. In addition, there are disturbances caused by spatial and temporal changes in the water refraction index due to temperature and/or salinity variations. Optical turbulence, which includes the two effects, is the main theme of this paper. We will discuss the joint IOSB-NRL experiment whose goal was to test techniques for characterization of underwater optical turbulence and in particular we will focus on differential motion measurement from an LED array.
机译:多年来,声音被用作水下通信的主要方法。然而,声学系统的数据传输速率很低,因为与水下声学相关的典型频率是几十赫兹和数百千赫兹之间。可以通过可见光来实现更高的带宽来在水下传输数据。水下激光通信的第一个挑战是散射和吸收。此外,由于温度和/或盐度变化,存在水折射率的空间和时间变化引起的扰动。光湍流包括两种效果,是本文的主题。我们将讨论联合IOSB-NRL实验,其目标是测试用于测试水下光学湍流的特征的技术,特别是我们将专注于从LED阵列的差动运动测量。

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