Physical simulation of trajectory tracking for tracking performance evaluation of photoelectric turntable

Guang Wang , Yun-guo Gao , Shao-jun Zhang

Optoelectronics Letters ›› 2020, Vol. 16 ›› Issue (4) : 272 -278.

PDF
Optoelectronics Letters ›› 2020, Vol. 16 ›› Issue (4) : 272 -278. DOI: 10.1007/s11801-020-9163-5
Article

Physical simulation of trajectory tracking for tracking performance evaluation of photoelectric turntable

Author information +
History +
PDF

Abstract

Focus on the tracking target for detection indoor, the angle peak characteristics are analyzed based on uniform circular motion and the void-zone is proposed. The sine angular trajectory is used to transform the actual target into the infield, which improves the value adaptability of the peak angular acceleration to velocity and accommodates the mobility condition of photoelectric turntable. Fight trajectory is generated by a tri-axial optical target and the tracking experiment is carried out by theodolite to realize the physical simulation of trajectory, which provides powerful conditions for evaluating the tracking performance of photoelectric turntable under the mobility index.

Cite this article

Download citation ▾
Guang Wang, Yun-guo Gao, Shao-jun Zhang. Physical simulation of trajectory tracking for tracking performance evaluation of photoelectric turntable. Optoelectronics Letters, 2020, 16(4): 272-278 DOI:10.1007/s11801-020-9163-5

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Miao Li and Huibin GAO, Research on Computer Control Strategy for Optical Electric Tracking System, International Conference on Mechatronics and Automation, 1670 (2011).

[2]

Gabriel Dadalto Mendes Martins, Isutomu de Lima Naruto, Patrícia Danner and Victor Baptista Frencl, A Trajectory Simulator Using Frenet-Serret Formulas Applied to Punctual Objects, 13th IEEE International Conference on Industry Applications, 750 (2018).

[3]

ZhuY, ChenX, LiC. International Journal of Aerospace Engineering, 2016, 2016: 3406256

[4]

KaiC, FengW, Qian-chengZ, Yun-fengY, JieY. Journal of Chinese Inertial Technology, 2014, 22: 486(in Chinese)

[5]

ChangX, YangT, YanJ, WangM. Design and Integration of Hardware-in-the-Loop Simulation System for Certain Missile, ICSC, Part II, Communications in Computer and Information Science, 2012, 327: 229

[6]

Stephen Steffes, Malak Samaan, Michael Coradt and Stephan Theil, Reconfigurable Hardware-in-the-loop Test Bench for the SHEFEX2 Hybrid Navigation System Experiment, AIAA Modeling and Simulation Technologies Conference, 6331 (2011).

[7]

LI Guang-xin, MAO Yu-liang and SONG Chun-lei, Design and Simulation of Trajectory Generator, 4th International Conference on Intelligent Human-Machine Systems and Cybernetics, 201 (2012).

[8]

CuiS, LiY, YuG, WangJ, LuM. The Research and Implementation of the Method of the Photoelectric Theodolite Simulation, International Conference on Advanced Computer Theory and Engineering, 2010, V6: 382

[9]

Wang TingTing, Bai Bing, Yuan Yi Fang and Zhu Yong Wei, Research on UAV Simulation Training System Based on Visual Simulation, International Conference on Mechatronics and Automation, 1972 (2018).

[10]

Kai Song, Hong Xu, Yan Ding and Hao Li, A Target Tracking Realization Method of UAV Simulation Training System, International Conference on Control, Automation, Robotics & Vision, 1 (2016).

[11]

YingyingG, XianghengS, GengxianH. Opto-Electronic Engineering, 2011, 38: 19(in Chinese)

[12]

Yong-qing Yang, Peng Liu, Wen-ji Shen and Jun-feng Han, Simulation Design of Space Target Tracking System Based on Radial Motion Principle, 4th Seminar on Novel Optoelectronic Detection Technology and Application, 1 (2018).

[13]

Shao-junZ, Yun-guoG, Xiang-yaoX. Optoelectronics Letters, 2018, 14: 0461

[14]

Mariano Lizarraga, Renwick Curry and Gabriel Hugh Elkaim, Flight Test Results for an Improved Line of Sight Guidance Law for UAVs, American Control Conference, 818 (2013).

[15]

Abhishek Manjunath, Parwinder Mehrok, Rajnikant Sharma and Ashwini Ratnoo, Application of Virtual Target based Guidance Laws to Path Following of a Quadrotor UAV, International Conference on Unmanned Aircraft Systems, 252 (2016).

[16]

VasilijevicA, JambrosicK, VukicZ. Applied Acoustics, 2018, 129: 72

[17]

ChenQ, WangX, YangJ, WangZ. Aerospace Science and Technology, 2019, 87: 448

[18]

Mustafa Ekinci and Özgür Selimoǧlu, Development of a 0.5m Clear Aperture Cassegrain Type Collimator Telescope, Advances in Optical and Mechanical Technologies for Telescopes and Instrumentation II, 991253 (2016).

[19]

JuqingY, DayongW, WeihuZ. Optik, 2017, 131: 994

[20]

NingZ, Xiang-hengS, LiangY, Ming-mingX. Optics and Precision Engineering, 2010, 18: 1286(in Chinese)

[21]

LiM, GaoH. Advanced Materials Research, 2012, 472: 1383

[22]

GolnabiH. Robotics and Computer Integrated Manufacturing, 2002, 18: 187

AI Summary AI Mindmap
PDF

163

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/