Simulation Analysis and Parameter Optimization of Residual Film Pickup Process Based on Finite Element Method

Xuejun Zhang, Lei Guo, Jinshan Yan, Zenglu Shi, Mengchen Kang, Jieting Yao
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Abstract

The extended duration of mulching in Xinjiang cotton fields leads to a significant decline in the tensile strength of plastic film. When recycling is in operation, the soil and the spring teeth of the machinery used can easily cause secondary damage and fracture the residual film. Establishing appropriate working parameters for recycling is essential to enhance the overall quality of collection efforts. By analyzing the motion process of a chain-tooth residual film pickup device, we identified key working parameters that significantly impact the efficiency of recycling. Employing the finite element method (FEM) and a coupled algorithm incorporating smooth particle hydrodynamics (SPH), we developed a coupled finite element model representing the interaction among spring teeth, soil, and residual film. Through simulation and analysis of the process of inserting the spring teeth into the soil to collect film, we derived the governing rules for residual film stress and deformation changes. Utilizing forward speed, rotational angular velocity, and angle of entry into the soil of the spring teeth as test factors and selecting the residual film stress and the residual film deformation as test indices, we conducted a multi-factor simulation test. We established a mathematical model correlating test factors with test indices, and the influence of each factor on the test index was analyzed. Subsequently, we optimized the working parameters of the spring teeth. The results indicated that the optimal working parameters are forward speed of 1111.11 mm/s, rotational angular velocity of 25 rad/s, and angle of entry into the soil of 30°. At these values, the average peak stress of residual film was 4.51 MPa and the height of residual film pickup was 84.48 mm. To validate the optimized the spring teeth impact on performance, field experiments were conducted with recovery rate and winding rate as test indices. The results demonstrated a 92.1% recovery rate and a 1.1% winding rate under the optimal combination of working parameters. The finite element model presented in this paper serves as a reference for designing and analyzing key components of residual film recycling machines.
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基于有限元法的残膜拾取工艺仿真分析与参数优化
新疆棉田地膜覆盖时间过长,导致塑料薄膜的抗拉强度明显下降。回收作业时,土壤和使用机械的弹簧齿很容易造成二次损伤,使残膜断裂。要提高回收工作的整体质量,就必须为回收工作制定适当的工作参数。通过分析链齿式残膜拾取装置的运动过程,我们确定了对回收效率有重大影响的关键工作参数。我们采用有限元法(FEM)和包含平滑粒子流体力学(SPH)的耦合算法,建立了一个表示弹簧齿、土壤和残膜之间相互作用的耦合有限元模型。通过模拟和分析弹簧齿插入土壤收集残膜的过程,我们得出了残膜应力和变形变化的支配规则。利用弹簧齿的前进速度、旋转角速度和入土角度作为试验因素,选择残膜应力和残膜变形作为试验指标,进行了多因素模拟试验。我们建立了试验因素与试验指标的相关数学模型,并分析了各因素对试验指标的影响。随后,我们对弹簧齿的工作参数进行了优化。结果表明,最佳工作参数为前进速度 1111.11 mm/s、旋转角速度 25 rad/s、入土角 30°。在这些值下,残膜的平均峰值应力为 4.51 兆帕,残膜拾取高度为 84.48 毫米。为了验证弹簧齿的优化对性能的影响,以恢复率和卷绕率为测试指标进行了实地实验。结果表明,在最佳工作参数组合下,回收率为 92.1%,卷绕率为 1.1%。本文提出的有限元模型可作为设计和分析残膜回收机关键部件的参考。
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