Adaptive optics for airborne platforms - Part 2: controller design

被引:2
|
作者
Oppenheimer, MW
Pachter, M
机构
[1] USAF, Inst Technol, Dept Elect & Comp Engn, Wright Patterson AFB, OH 45433 USA
[2] Veridian Engn, Dayton, OH USA
来源
OPTICS AND LASER TECHNOLOGY | 2002年 / 34卷 / 02期
关键词
adaptive optics; atmospheric compensation; Strehl ratio;
D O I
10.1016/S0030-3992(01)00105-0
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In an airborne platform adaptive optics application, the inbound (beacon) and outbound (high-energy laser) wavefronts propagate through different regions of the atmosphere at different time instants, that is, spatial and temporal anisoplanatism cannot be neglected. Measurements in an airborne platform system are from the inbound (beacon) wavefront and therefore, the outbound, high-energy laser's wavefront phase distortion Zernike expansion coefficients must be estimated. Once the said estimates are available, these values are used by a linear quadratic regulator to drive the actuators of the deformable mirror. The controller, which consists of a Kalman filter estimator in tandem with the regulator, provides commands to the piezoelectric actuators of the deformable mirror. Thus, the estimated conjugate phase is applied to the mirror and, hence, to the outbound high-energy laser wavefront, such that at the aim point on the target, the high-energy laser wavefront distortion is minimized. In other words, the high-energy laser is correctly pointed to the aim point and the Strehl ratio is maximized. In this way, the correct deformation is applied to the deformable mirror and the benefits of adaptive optics are realized in an airborne platform application. In Part 2 of this paper, the design of the controller, that is, a Kalman filter and regulator, is addressed. The theoretical derivations are validated in extensive simulation experiments. Published by Elsevier Science Ltd.
引用
收藏
页码:159 / 176
页数:18
相关论文
共 50 条
  • [21] Performance assessment of MEMS adaptive optics in tactical airborne systems
    Tyson, RK
    ADAPTIVE OPTICS SYSTEMS AND TECHNOLOGY, 1999, 3762 : 91 - 100
  • [22] PARALLEL PLATFORM CONTROLLER BASED ON ADAPTIVE DIFFERENCE ALGORITHM - PART 2
    Wang, Ruiyang
    Gu, Qiuxiang
    Lu, Siyu
    Tian, Jiawei
    Yin, Zhengtong
    Li, Xiaolu
    Chen, Xiaobing
    Yin, Lirong
    Zheng, Wenfeng
    REVUE ROUMAINE DES SCIENCES TECHNIQUES-SERIE ELECTROTECHNIQUE ET ENERGETIQUE, 2024, 69 (03): : 339 - 344
  • [23] Adaptive controller design with practicability
    Bao, Y.L.
    Advances in Modelling & Simulation, 1992, 28 (04): : 1 - 11
  • [24] Automated Design Assessment as a Strategic Part of Design Platforms
    Johansson, Joel
    Elgh, Fredrik
    TRANSDISCIPLINARY ENGINEERING: A PARADIGM SHIFT, 2017, 5 : 441 - 448
  • [25] ERIS adaptive optics system design
    Marchetti, Enrico
    Le Louarn, Miska
    Soenke, Christian
    Fedrigo, Enrico
    Madec, Pierre-Yves
    Hubin, Norbert
    ADAPTIVE OPTICS SYSTEMS III, 2012, 8447
  • [26] Design considerations for CELT adaptive optics
    Dekany, R
    Nelson, JE
    Bauman, B
    OPTICAL DESIGN, MATERIALS, FABRICATION, AND MAINTENANCE, 2000, 4003 : 212 - 225
  • [27] Design of the adaptive optics systems for GMT
    Lloyd-Hart, Michael
    Angel, Roger
    Milton, N. Mark
    Rademacher, Matt
    Codona, Johanan
    ADVANCES IN ADAPTIVE OPTICS II, PRS 1-3, 2006, 6272 : U133 - U144
  • [28] Performance study of Kalman filter controller for multiconjugate adaptive optics
    Piatrou, Piotr
    Roggemann, Michael C.
    APPLIED OPTICS, 2007, 46 (09) : 1446 - 1455
  • [30] Theory and operation of a robust controller for a compact adaptive optics system
    Frazier, BW
    Tyson, RK
    Smith, M
    Roche, J
    OPTICAL ENGINEERING, 2004, 43 (12) : 2912 - 2920