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Modeling and statistical control of a gimbaled laser target system.

机译:万向节激光目标系统的建模和统计控制。

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摘要

The space-based solar power system is an alternative to the ground-based solar power system because of its round-the-clock availability. For the space-based solar power transmission, the accurate pointing of a laser from space to ground poses a challenging control task. A gimbaled laser target system, which is used for pointing laser to a target, is a test bench for such a transmission system. The objective of this research is to determine the optimal controller for the gimbaled laser target system in terms of pointing error and error variation. In order to achieve the objective, we modeled the gimbaled laser target system, simulated the model with the controllers, and tested them on the test bench.;In this thesis, we developed a mathematical model of a two-axis gimbaled laser target system. The model consists of a pitch-yaw gimbal for the dynamic laser motion, brushless dc motors for actuating the gimbal, and an image-based position sensor. We used a Proportional-Integral-Derivative (PID) controller as the basis for the performance comparison since it is the most commonly used control method in the industry. Then we compared the PID controller with two statistical control methods Linear Quadratic Gaussian (LQG), and Minimal Cost Variance (MCV) optimal controllers.;We evaluated the pointing performance of the controllers by measuring the mean and the standard deviation of the pointing error. The simulation results indicated that the statistical controllers perform better than the PID controller under Gaussian disturbances. Between the statistical controllers, the LQG method had the smaller pointing error, while the MCV method had the smaller standard deviation of the pointing error. We then implemented the PID, LQG, and MCV controllers in an off-the-shelf dSPACE digital signal processing controller board, and tested the controllers on the test bench in a real time environment. The experimental results showed that the LQG method decreased the mean pointing error by 46.28% compared to the PID method. The LQG method reduced the standard deviation of pointing error by 47.85% compared to the PID method. The MCV method reduced the standard deviation of the pointing error by 53.09% compared to the LQG method.;Both the simulation and experimental results showed that the MCV controller improved the pointing error variation performance over the LQG controller significantly, while slightly degrading the pointing error performance of the gimbaled laser target system. Experimental results indicate that the statistical controllers will provide a design parameter either to improve the mean pointing error or the standard deviation of the pointing error for the gimbaled laser target system. Subsequently, we believe that the statistical controllers will improve the space-based solar power transmission efficiency.
机译:天基太阳能系统是全天候可用的,因此可以替代地基太阳能系统。对于基于空间的太阳能传输,将激光从空间精确指向地面是一项艰巨的控制任务。用于将激光指向目标的万向节激光目标系统是这种传输系统的测试台。这项研究的目的是根据指向误差和误差变化确定万向节激光目标系统的最佳控制器。为了达到这个目的,我们对万向节激光目标系统进行了建模,并用控制器对模型进行了仿真,并在测试台上进行了测试。本文建立了两轴万向节激光目标系统的数学模型。该模型包括用于动态激光运动的俯仰偏航万向节,用于致动万向节的无刷直流电动机以及基于图像的位置传感器。我们使用比例积分微分(PID)控制器作为性能比较的基础,因为它是业内最常用的控制方法。然后将PID控制器与两种统计控制方法线性二次高斯(LQG)和最小成本方差(MCV)最优控制器进行比较。;我们通过测量指针误差的平均值和标准偏差来评估控制器的指针性能。仿真结果表明,在高斯扰动下,统计控制器的性能优于PID控制器。在统计控制器之间,LQG方法具有较小的指向误差,而MCV方法具有较小的指向误差标准偏差。然后,我们在现成的dSPACE数字信号处理控制器板上实现了PID,LQG和MCV控制器,并在实时环境中在测试台上测试了这些控制器。实验结果表明,与PID方法相比,LQG方法使平均指向误差降低了46.28%。与PID方法相比,LQG方法将指向误差的标准偏差降低了47.85%。与LQG方法相比,MCV方法将指向误差的标准偏差降低了53.09%.;仿真和实验结果均表明,MCV控制器比LQG控制器显着提高了指向误差的变化性能,同时略微降低了指向误差云台激光目标系统的性能。实验结果表明,统计控制器将提供设计参数,以改善万向节激光目标系统的平均指向误差或指向误差的标准偏差。随后,我们相信统计控制器将提高基于空间的太阳能传输效率。

著录项

  • 作者

    Saleheen, Firdous.;

  • 作者单位

    Temple University.;

  • 授予单位 Temple University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.S.E.E.
  • 年度 2014
  • 页码 203 p.
  • 总页数 203
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:54:02

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