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Light field and water clarity simulation of natural environments in laboratory conditions

机译:实验室条件中自然环境的光场和水清晰度模拟

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摘要

Simulation of natural oceanic conditions in a laboratory setting is a challenging task, especially when that environment can be miles away. We present an attempt to replicate the solar radiation expected at different latitudes with varying water clarity conditions up to 30 m in depth using a 2.5 m deep engineering tank at the University of New Hampshire. The goals of the study were: 1) to configure an underwater light source that produced an irradiance spectrum similar to natural daylight with the sun at zenith and at 60° under clear atmospheric conditions, and 2) to monitor water clarity as a function of depth. Irradiance was measured using a spectra-radiometer with a cosine receiver to analyze the output spectrum of submersed lamps as a function of distance. In addition, an underwater reflection method was developed to measure the diffuse attenuation coefficient in real time. Two water clarity types were characterized, clear waters representing deep, open-ocean conditions, and murky waters representing littoral environments. Results showed good correlation between the irradiance measured at 400 nm to 600 nm and the natural daylight spectrum at 3 m from the light source. This can be considered the water surface conditions reference. Using these methodologies in a controlled laboratory setting, we are able to replicate illumination and water conditions to study the physical, chemical and biological processes on natural and man-made objects and/or systems in simulated, varied geographic locations and environments.
机译:在实验室环境中的天然海洋状况模拟是一个具有挑战性的任务,特别是当环境可以远远时。我们试图在不同的水清晰度条件下尝试在不同的纬度下预期的太阳辐射,在新罕布什尔大学的2.5米深的工程箱中,在深入的水分清晰度条件下可达30米。该研究的目标是:1)配置水下光源,产生类似于天然日光的辐照谱,在Zenith,在透明的大气条件下在60°处,2)以监测水清晰度作为深度的函数。使用具有余弦接收器的光谱辐射计测量辐照度,以分析潜水灯的输出光谱作为距离的函数。另外,开发了一种水下反射方法以实时测量漫反射系数。表征了两种水清晰度,透明水域代表深度,开放的海洋状况,以及代表沿海环境的丘斯基水域。结果显示在400nm至600nm处测量的辐照度与3μm的自然日光光谱之间的良好相关性。这可以考虑水面条件参考。在受控实验室设定中使用这些方法,我们能够复制照明和水条件,以研究天然和人造物体和/或模拟地理位置和环境中的人造物体和/或系统的物理,化学和生物过程。

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