Parameters at different cutting angles.
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To improve the reliability and cost-efficiency of the grafting mechanism, this study proposes a novel butterfly-shaped polyethylene (PE) grafting clip and integrated cutting-type clip-feeding mechanism. The proposed system replaces traditional steel coil clips and vibration screen feeders with a lightweight, low-damage, and low-cost design capable of continuous clip feeding. The mechanical behavior of the PE clip material was characterized through tensile testing and modeled using the Johnson-Cook constitutive equation. A finite element model of the cutting process was established in Abaqus to investigate the effects of cutting force, speed, and angle on blade stress and clip deformation. Using the Box-Behnken response surface methodology, the cutting parameters were optimized to minimize stress concentration and material distortion. Simulation results showed that optimal performance was achieved at a cutting force of 110 N, a speed of 25.618 cm/s, and a cutting angle of 32.414°, yielding a maximum blade stress of 1.31 MPa and clip strain of 5.304%. Validation tests demonstrated that a 30°cutting angle produced the highest cutting quality, consistent with simulation predictions. Comparative performance evaluations with a commercial vibrating screen clip feeder confirmed the superiority of the proposed system in terms of reliability, energy efficiency, operational noise, and cost. The developed mechanism offers a compact and practical solution for automated grafting, particularly suitable for small and medium-sized seedling nurseries seeking affordable mechanization technologies.
为提升嫁接机构的可靠性与成本效益,本研究提出一种新型蝴蝶形聚乙烯(PE)嫁接夹及集成式剪切型送夹机构。该系统采用轻量化、低损伤、低成本的设计方案,替代传统钢卷夹与振动筛式送料器,可实现连续送夹作业。研究通过拉伸试验对PE夹料的力学性能进行表征,并采用约翰逊-库克(Johnson-Cook)本构方程建立材料模型。在Abaqus中搭建剪切过程的有限元模型,探究剪切力、剪切速度及剪切角度对刀片应力与夹料变形的影响规律。基于Box-Behnken响应面法对剪切参数进行优化,以实现应力集中与材料畸变的最小化。仿真结果显示,当剪切力为110 N、剪切速度为25.618 cm/s、剪切角度为32.414°时,系统性能达到最优,此时刀片最大应力为1.31 MPa,夹料应变为5.304%。验证试验表明,采用30°剪切角度时可获得最高剪切质量,与仿真预测结果一致。与商用振动筛式夹料送料器的对比性能评估证实,本研究提出的系统在可靠性、能效、作业噪声及成本方面均具备显著优势。所开发的机构为自动化嫁接作业提供了一种紧凑实用的解决方案,尤其适配寻求经济型机械化技术的中小型苗圃。



