Title :
Distributed Real-Time Networked Control Architecture for Suppressing Wind Load Deformation of Fourier Telescope
Author :
Zhiyuan Cheng ; Caiwen Ma
Author_Institution :
Xi´an Inst. of Opt. & Precision Mech., Xi´an, China
Abstract :
To advance optical profile accuracy of high-resolution imaging Fourier telescope and improve the real-time of profile error suppressing, the paper proposed a novel real-time networked control scheme integrated EtherCAT(Ethernet for control Automation Technology) field bus with PC-based control model. Based on the high speed transmission principle of EtherCAT field bus it improves the real-time of surface error suppressing induced by wind load and meets the requirements of high resolution imaging, Then it makes good use of powerful clustering control, the open architecture of PC controller to solve cluster control problem of mass distributed drivers in large telescope. The results show that EtherCAT networked control solution has advantages of highest real-time, flexible network control structure, powerful clustering control ability. It can meet the real-time requirement of profile error suppressing caused by wind load in Large Fourier telescope.
Keywords :
astronomical telescopes; deformation; distributed control; field buses; local area networks; mechanical variables control; networked control systems; EtherCAT field bus; Ethernet for control automation technology; PC-based control model; clustering control; distributed realtime networked control architecture; high resolution imaging requirements; high-resolution imaging Fourier telescope; optical profile accuracy; profile error suppression; wind load deformation suppression; Computer architecture; Image segmentation; Mirrors; Optical imaging; Real-time systems; Telescopes; EtherCAT; Fourier telescope; PC control; distributed networked control;
Conference_Titel :
Intelligent Human-Machine Systems and Cybernetics (IHMSC), 2014 Sixth International Conference on
Conference_Location :
Hangzhou
Print_ISBN :
978-1-4799-4956-4
DOI :
10.1109/IHMSC.2014.189