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Simulation, Modeling, and Design of Underwater Optical Communication Systems.

机译:水下光通信系统的仿真,建模和设计。

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摘要

Underwater free-space optical communications has the potential to provide high speed, low latency communications for undersea vehicles and sensors. This thesis describes the design and validation of a Monte Carlo numerical simulation tool for underwater optical communications systems. The simulation tool can also be used more generally for other systems that require calculations of the underwater light-field. The program, named Photonator, was validated experimentally in a laboratory tank where the absorption and scattering was controlled by the addition of Maalox to vary the water conditions from open ocean to turbid harbor water. These results were also compared with custom blue/green light emitting diode and laser transmitters and receivers that allowed the wavelength and field-of-view (FOV) to be controlled.;An emphasis was placed on understanding the requirements of point-to-point underwater communication links. Results are presented for on and off-axis received power for a series of receiver apertures and fields-of-view. Also presented are the scattering histograms at the receiver and the temporal bandwidth of each communication link. A two-term exponential power loss model is developed and compared with the simulated outputs to agreement within 30% over twelve orders of magnitude power loss. This type of power loss model is useful in constructing link budgets which are more accurate than the usual Beer's law assumption in water environments where scattering is appreciable.;Several results are presented that are of interest to the underwater optical systems designer: 1. The simulations and experiments show that the power gain from FOV and aperture changes of an optical system are independent in highly turbid waters. 2. A power-law relationship between FOV and received power is shown for turbid water environments for fields-of-view up to 45 degrees. 3. A systematic series of simulations show how the scattering orders at the receiver evolve as water quality is varied which provides a physical underpinning to understanding temporal dispersion of underwater pulses. 4. A systematic series of simulations shows how the temporal bandwidth of underwater optical communication systems varies strongly with the receiver field of view, but weakly with aperture size.
机译:水下自由空间光通信有潜力为海底车辆和传感器提供高速,低延迟的通信。本文介绍了一种用于水下光通信系统的蒙特卡洛数值模拟工具的设计和验证。该仿真工具还可以更广泛地用于需要计算水下光场的其他系统。该程序名为Photonator,已在实验室水箱中进行了实验验证,该实验室的水箱通过添加Maalox来控制吸收和散射,以改变海洋条件,从开阔的海洋到浑浊的港口水。还将这些结果与定制的蓝/绿发光二极管以及允许控制波长和视场(FOV)的激光发射器和接收器进行了比较。重点放在理解点对点的要求上水下通讯链接。给出了一系列接收器光圈和视场的轴上和轴外接收功率的结果。还介绍了接收器处的散射直方图和每个通信链路的时间带宽。建立了一个两阶段的指数功率损耗模型,并将其与模拟输出进行比较,以在十二个数量级的功率损耗中将误差控制在30%以内。这种类型的功率损耗模型可用于构建链路预算,该链路预算在散射明显的水环境中比通常的比尔定律假设更为准确。;提出了一些水下光学系统设计人员感兴趣的结果:1.仿真实验表明,在高度浑浊的水中,FOV的功率增益和光学系统的孔径变化是独立的。 2.显示了在浑浊的水环境中,视场达45度时FOV与接收功率之间的幂律关系。 3.系统的一系列模拟表明,随着水质的变化,接收器处的散射阶数如何演变,这为理解水下脉冲的时间色散提供了物理基础。 4.系统的一系列模拟显示了水下光通信系统的时间带宽如何随接收器的视场而强烈变化,而随孔径的变化而微弱变化。

著录项

  • 作者

    Cox, William Charles, Jr.;

  • 作者单位

    North Carolina State University.;

  • 授予单位 North Carolina State University.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.;Engineering Marine and Ocean.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 278 p.
  • 总页数 278
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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