Zhao Lijun, Yin Wenke, Yang Bin, Hu Xin, Liu Chuandong, Li Zihuan, Gong Lian, Li Qiang, Li Bin, Li Shang
Intelligent Manufacturing Engineering College of Chongqing Wenli University, Chongqing, China.
School of Mechanical Engineering, Jiamusi University, Jiamus, China.
PLoS One. 2025 Mar 14;20(3):e0313285. doi: 10.1371/journal.pone.0313285. eCollection 2025.
In response to issues such as high miss-seeding rates and uneven seed grain distribution during the operation of the pendulum-lever camshaft hole seeders under the compound planting mode of corn and soybeans in hilly mountainous areas, a method for optimizing the hole seeders by adjusting movable pendulum-lever angle and the number of cam roller groups is proposed. By analyzing the motion process and mechanism of hole formation of the hole-forming device, it was possible to elucidate the influence of the movable pendulum-lever angle and cam roller group number on the improvement of seeding quality. Based on the DEM-MBD coupled simulation, single-factor simulation experiments were conducted using the hole seeders shaft speed, movable pendulum- lever angle, and cam roller group number as test factors, with the seed grain qualification rate, reseeding rate, and miss-seeding rate as test indicators. A three-factor, three-level orthogonal rotation combination simulation experiment was designed to derive a mathematical model of the relationship between test factors and indicators. Data analysis was performed using Design-Expert 13 soft-ware to optimize the regression model for multiple objectives and obtain the optimal parameter combination. The simulation test results indicate that when the hole seeder shaft speeds were 47.43 r/min and 48.09 r/min, the movable pendulum- lever angles were 100.23° and 101.70°, and the number of rollers in the cam group were 2.81 and 2.95,the qualified rates of corn and soybean seeding were 95.19% and 96.07%. The reseeding rates were 3.58% and 2.35%, while the missed seeding rates were 1.23% and 1.58%. The field test results indicate that under the optimal parameter combination, the relative errors of the qualification rate, the reseeding rate, and the missed seeding rate between the simulation tests and the field tests were 0.4% and 0.13%, 1.17% and 0.36%, and 1.57% and 0.23%. This serves to validate the accuracy of the coupled simulation model, and the research findings can provide theoretical support and a point of reference for the design and performance optimization of pendulum- lever cam-type hole seeders in hilly and mountainous areas.
针对丘陵山区玉米大豆复合种植模式下摆杆式凸轮轴孔播种机作业时漏播率高、种子分布不均等问题,提出一种通过调整摆杆活动角度和凸轮滚子组数对孔播机进行优化的方法。通过分析成孔装置的成孔运动过程及机理,阐明了摆杆活动角度和凸轮滚子组数对播种质量提升的影响。基于离散单元法(DEM)-多体动力学(MBD)耦合仿真,以播种机轴转速、摆杆活动角度和凸轮滚子组数为试验因素,种子合格率、重播率和漏播率为试验指标进行单因素仿真试验。设计了三因素三水平正交旋转组合仿真试验,得出试验因素与指标间关系的数学模型。使用Design-Expert 13软件进行数据分析,对多目标回归模型进行优化,获得最优参数组合。仿真试验结果表明,当孔播机轴转速分别为47.43 r/min和48.09 r/min、摆杆活动角度分别为100.23°和101.70°、凸轮组滚子数分别为2.81和2.95时,玉米和大豆播种合格率分别为95.19%和96.07%,重播率分别为3.58%和2.35%,漏播率分别为1.23%和1.58%。田间试验结果表明,在最优参数组合下,仿真试验与田间试验的合格率、重播率和漏播率相对误差分别为0.4%和0.13%、1.17%和0.36%、1.57%和0.23%。这验证了耦合仿真模型的准确性,研究结果可为丘陵山区摆杆式凸轮型孔播机的设计及性能优化提供理论支持和参考依据。