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Design and test of double-roller clamping type cotton topping device
Transactions of the Chinese Society of Agricultural Engineering 2025, 41(11): 41-51
Published: 15 June 2025
Abstract PDF (6.8 MB) Collect
Downloads:5

Topping has been one of the most important operations in cotton production. However, the existing topping machinery cannot fully meet the large-scale production in recent years, due to the low precision, high over-topping rate, and high labor intensity. Particularly, there is the serious pollution of the chemical topping agent to the environment. This study aims to design a new type of cotton topping device with double-roller clamping. Four components also consisted of the topping actuator, profiling motion mechanism, light curtain detection module, and control system. The high efficiency and precision of the cotton topping were then realized after mechanization and intelligence. The overall structure of the device and the parameters of the key components were also determined, according to the cotton fields and plants. The light curtain was combined to detect the cotton plants. The programmable logic controller (PLC) was also used to construct the accurate identification and automatic control system for the topping operation. Furthermore, the topping actuator was adopted as a double-roller clamping structure in the process of equipment design. The clamping and cutting of the cotton plant top were realized to adjust the opening and closing angle, as well as the rotational speed of the clamp. The light curtain module was used to detect the position of the cotton plant top in real time. The data was then transmitted to the control system of the topping actuator, in order to realize the precise control of the imitation height during topping. The control system took the PLC as the core. The sensors and actuators were combined to realize the automatic management in the whole process of topping operation. A series of experiments were carried out with the cotton plant tops during topping, including the cotton plant top identification, calibration compensation, and the performance of the topping actuator. The detection accuracy of the top position was significantly improved to calibrate and compensate for the light curtain module. The test results show that the average absolute value of the detected deviation was significantly reduced from 6.905 cm to 1.571 cm after calibration and compensation. It infers that the light curtain shared high accuracy and reliability in the identification of the cotton plant top. The topping performance test of the topping actuator demonstrated that there were great influences on the rotational speed of the clamping mechanism, the opening and closing angle of the gripper, and the nature of the material. A field test was conducted to further optimize the performance of the device. A single- and multi-factor optimization was carried out, taking the material nature, the rotational speed of the clamping mechanism, and the opening and closing angle of the gripper as the test factors, and the topping rate and over-topping rate as the evaluation indexes. An optimal combination of parameters was finally identified to determine the significance of the influence of each factor on the cotton topping performance. The average cotton topping and over-topping rates were 80.22% and 25.78%, respectively, when the machine was operated at the forward speed of 0.4 m/s, the rotational speed of the clamping mechanism of 60 r/min, and the opening and closing angle of the gripper of 85°. The better performance was achieved in the topping machinery. The cotton topping device with the double-roller clamping also improved the topping accuracy for a less over-topping rate.

Open Access Issue
Design and test of chemical pesticide recovery system for self-propelled sprayer
Journal of Intelligent Agricultural Mechanization 2020, 1(2): 34-43
Published: 15 November 2020
Abstract PDF (4.7 MB) Collect
Downloads:17

To solve the problems of waste of chemical pesticide and low utilization rate in the plant protection process of Xinjiang vineyards, a chemical pesticide recovery system was designed which was matched with a self-propelled sprayer.The main structures of the recovery system design included lifting platform, telescopic device, chemical pesticide collecting device and a pipeline system. The sprayer was fabricated and test in field condition to evaluate its performance. The density analysis of the grape canopy was carried out, and combined with the experiment to obtain the effect of the combination of the spray distance and the droplets settling net test factor on the recovery of the chemical pesticide solution under different canopy densities. It was concluded that reducing spray distance and installing droplets settling net with an aperture of 75 μm in the chemical pesticide collection device had positive effects of increasing the recovery rate of chemical pesticide. In the field experiment, the recovery rate of chemical pesticide and droplets deposition rate were taken as test indexes, and spray pressure and fan speed were taken as test factors. Test results showed that increasing spray pressure and reducing fan speed can increase the recovery rate of chemical pesticide within the range of rated spray pressure and fan speed. And increasing spray pressure and fan speed can improve the deposition effect of droplets deposition. When the working parameters are spray pressure 1 MPa and fan speed 1600 r/min, chemical pesticide deposition requirements can be met and the recovery rate of chemical pesticide is high.

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