Design and test of header parameter keys electric control adjusting device for rice and wheat combined harvester

被引:0
|
作者
Chen J. [1 ]
Wang S. [1 ]
Lian Y. [1 ]
机构
[1] Mechanical Engineering, Jiangsu University, Zhenjiang
关键词
Agricultural machinery; Design; Experiments; Keys electric control adjusting; Reel;
D O I
10.11975/j.issn.1002-6819.2018.16.003
中图分类号
学科分类号
摘要
The degree of automation of domestic combine harvester is low, and the operation is complex, it is difficult for workers to understand the actual adjustment of working parts. Crop height, crop length, height of the ground and the lack of consistency in course of project led to the continuous adjustment of harvester's joystick. The traditional operation method, in which experiences are excessively relied on, cannot meet the requirements of automatic operation of domestic-made combine harvester. The current operation method is an obstacle to the development of the automatic control of the combine harvester. In this paper, a device of adjusting combine harvester header parameters was designed. The header parameters include height of header, height of reel, position of reel and speed of reel. The control function of header parameters adjusting device is to adjust height of header, height of reel, position and speed of reel. The header parameter adjusting device was composed of sensor modules, PLC control units, display modules, key module, header drive parts module and so on. The sensor modules were used to detect the parameter of header which include height of header, height of reel, position of reel, speed of reel and forward speed. Sensor modules detect the signal inputed into PLC control unit. PLC control unit is the core component of the adjusting device. PLC performs data operation and processing. Using touch display screen as human-computer interaction tools, which communicates with PLC. The display interface includes parameters displaying and setting, and displayed parameters include header parameter, operating speed, crop height and so on. The key module adopts self-reset and self-locking switch to realize manual and automatic function signal input. At the same time, PLC receives the key information and make judgments, and then sends the control signal to drive header hydraulic system to carry out the movement of the mechanism. Header drive parts modules include lectromagnetic directional valve and proportional solenoid valve, which adopts the hydraulic control principle. High reel speed has a large impact on crop yield and increase grain losses. It is difficult to push crops to header and proceed to the next step of threshing, clearing and collection at low reel speed, and it is difficult to match the change of operation speed with the reel speed. In this paper, an automatic control method of reel speed was presented. By analyzing the working process of reel, a mathematical model of reel speed was established, and fuzzy PID algorithm is used to realize the automatic control of reel speed. The header parameter adjusting device was installed on the test prototype, and the regulatory tests, data records and data analysis were carried out. The test results showed that header height, reel height, reel position and reel speed could be electrically controlled by the header parameter adjusting device. Relative adjustment errors of header height, reel height, reel position and reel speed were 7.4%, 3.4%, 2.0% and 7.8% respectively. The operation speed of maximum relative error was 3.4%. The response time is less than 0.8 s, and the adjustment time is less than 1.7 s. The system was proved to meet the design requirements of header parameter controller of combine harvester. The research results can be applied in intelligent operation of combine harvester. © 2018, Editorial Department of the Transactions of the Chinese Society of Agricultural Engineering. All right reserved.
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页码:19 / 26
页数:7
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共 29 条
  • [1] Liang Z., Li Y., Ma P., Et al., Structure optimization and experiment on cleaning system in longitudinal-axial combine harvester, Agricultural Mechanization Research, 40, 5, pp. 170-174, (2018)
  • [2] Wu G., Yang D., Gao L., Et al., Large feed self-running wheel type grain combine harvester design, Agricultural Machinery, 7, pp. 87-89, (2015)
  • [3] Chen Q., Han Z., Cui J., Et al., Development status and trend current situation of self-propelled combine harvester, Journal of Agricultural Science and Technology, 17, 1, pp. 109-114, (2015)
  • [4] Wu H., Fang X., Yang B., Development trends and progress of agricultural machinery technology at home and abroad, Agricultural Engineering, 3, 6, pp. 20-23, (2013)
  • [5] Chen J., Cai Y., Chen X., Design of multi-key embedded control system of combine harvester based on FSM, Electronic Science and Technology, 30, 1, (2017)
  • [6] Liang X., Study on automatic monitoring system for combine harvester, (2013)
  • [7] Bottinger S., Intelligent combine harvester improve performance and efficiency, Agricultural Equipment & Vehicle Engineering, 51, 6, pp. 15-16, (2013)
  • [8] Li Y., Liang Z., Zhao Z., Et al., Real-time monitoring system of grain loss in combine harvester, Transactions of the Chinese Society for Agricultural Machinery, pp. 99-102, (2011)
  • [9] Wang J., Xiong Y., Xu Z., Et al., Improved design and test of key components for longitudianl axial flow combine harvester, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 33, 10, pp. 25-31, (2017)
  • [10] Lei X., Hou S., Qin X., Et al., Electro-hydraulic proportional valve-controlled hydraulic motor system of fuzzy PID constant speed control, Fluid Power Transmission and Control, 1, (2016)