Modular design of small underwater robot control system

2021 ◽  
Author(s):  
Hao Wu ◽  
Dongsheng Zhang ◽  
Zhiguang Guan
2021 ◽  
pp. 1216-1223
Author(s):  
Zhang Dongsheng ◽  
Wu Hao ◽  
Guan zhiguang ◽  
Zhao lingyan

2010 ◽  
Vol 455 ◽  
pp. 47-51
Author(s):  
Xue Zhi Wu ◽  
Xiao Dong Zhang ◽  
C.Z. Wang

To solve the problems of the control system of the working assistant robot for elderly such as lower efficiency and weak complicity. A kind of open architecture, modularity, extensible embedded robot control system is developed. The main contents include: Studied on a rich hardware interface and drivers, function easy-to-modular extended robot development platform. The paper presented the platform features, design concepts and system solutions of the robot control system and gave details of building approaches of the platform. On this basis, the functional modules of the robot were designed and implemented with the modular design approach. Finally a specified working assistant robot was created by loading the completed modules into the control system platform and some experiments were carried out on the robot system. Experiments results show that the system platform can be a convenient and effective way to develop multi-functional working assistant robot for elderly.


2020 ◽  
Vol 15 (1) ◽  
pp. 39-47 ◽  
Author(s):  
Yoongeon Lee ◽  
◽  
Yeongjun Lee ◽  
Junbo Chae ◽  
Hyun-Taek Choi ◽  
...  

2009 ◽  
Vol 419-420 ◽  
pp. 581-584
Author(s):  
Xiao Dong Tan ◽  
Feng Tan ◽  
Kun Zhang ◽  
Bao Liang Li

A PROFI-BUS based industrial robot control system is introduced from the viewpoint of both software and hardware. It is discussed about how to use PC technology and field-bus technology to design an open robot control system. The system adopts a three- layer structure, which is mainly configured with universal control devices, to realize a modular and universal design. A high-speed field-bus is designed for connecting servo system and IPC, to ensure real-time capability; another low-speed Field-bus is used to connect IPC and PLC, HMI, teaching panel and other devices for data exchange, while reducing the occupancy of system resources. The software system adopts the modular design with Windows NT and RTX, which fully exploits the powerful functions of Window NT system and meets the requirements of real-time system. This open structure greatly enhances the system's flexibility and openness.


2012 ◽  
Vol 619 ◽  
pp. 384-387
Author(s):  
Hao Peng ◽  
Zhi Cheng Huang

Based on Fischertechnik combination model platform, A type of welding robot is designed and developed. Firstly analyzed the overall structure of the robot to determine the driver program and drive programs, and then assembled and establishment the robot structure in accordance with the modular design finally studied the robot control system. This paper focuses on the hardware design of the robot and control system. Practice has proved that the teaching robot we designed has good promotion and application prospects in the field of teaching.


2021 ◽  
Vol 13 (4) ◽  
pp. 168781402110027
Author(s):  
Jianqiang Wang ◽  
Yanmin Zhang ◽  
Xintong Liu

To realize efficient palletizing robot trajectory planning and ensure ultimate robot control system universality and extensibility, the B-spline trajectory planning algorithm is used to establish a palletizing robot control system and the system is tested and analyzed. Simultaneously, to improve trajectory planning speeds, R control trajectory planning is used. Through improved algorithm design, a trajectory interpolation algorithm is established. The robot control system is based on R-dominated multi-objective trajectory planning. System stack function testing and system accuracy testing are conducted in a production environment. During palletizing function testing, the system’s single-step code packet time is stable at approximately 5.8 s and the average evolutionary algebra for each layer ranges between 32.49 and 45.66, which can save trajectory planning time. During system accuracy testing, the palletizing robot system’s repeated positioning accuracy is tested. The repeated positioning accuracy error is currently 10−1 mm and is mainly caused by friction and the machining process. By studying the control system of a four-degrees-of-freedom (4-DOF) palletizing robot based on the trajectory planning algorithm, the design predictions and effects are realized, thus providing a reference for more efficient future palletizing robot design. Although the working process still has some shortcomings, the research has major practical significance.


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