甘蔗切碎收割机收割甘蔗时的甘蔗切碎和损伤机理研究

IF 4.4 1区 农林科学 Q1 AGRICULTURAL ENGINEERING Biosystems Engineering Pub Date : 2024-05-07 DOI:10.1016/j.biosystemseng.2024.04.019
Baocheng Zhou , Shaochun Ma , Wenzhi Li , Cong Peng , Weiqing Li
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引用次数: 0

摘要

甘蔗机械化收割可以大大降低收割成本,提高效率。然而,目前存在着切碎性能差和甘蔗汁损失严重的问题。本研究旨在通过运动学、动力学分析和有限元模拟,研究甘蔗的切碎和损伤机理,提高切碎系统的性能。首先,通过建立切碎机的运动学和动力学模型,研究了影响切碎性能和造成甘蔗损伤的因素。总结了甘蔗损伤和甘蔗碎片的类型。然后,建立了切碎系统的有限元模型。使用 Fortran 开发了甘蔗的各向异性非线性材料模型。采用显式动态分析方法分析了甘蔗切碎的瞬态过程,揭示了甘蔗的切碎和损伤机理。结果表明,刀片厚度和斜角越小,切碎时间越短,切碎表面越光滑。切碎机上下刀片的轴向切碎深度不等,是造成甘蔗损伤的主要原因。输送辊与切碎辊的转速比和刀片厚度影响切碎表面的阶梯度。最后,根据理论和仿真分析结果对切碎系统进行了改进。实验结果表明,当进料速度为 1、2 和 3 kg s-1 时,损坏率分别降低了 6.8%、12.2% 和 12.6%,损耗率分别降低了 8.1%、13.9% 和 21.8%。研究结果为甘蔗收割机切碎系统的设计和优化提供了参考。
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Study on sugarcane chopping and damage mechanism during harvesting of sugarcane chopper harvester

Mechanised harvesting of sugarcane can significantly reduce harvesting costs and improve efficiency. However, there are currently issues with poor chopping performance and significant losses of sugarcane juice. This study aimed to investigate the chopping and damage mechanisms of sugarcane and improve the performance of the chopping system through kinematic and dynamic analysis and finite element simulation. Firstly, the factors affecting the chopping performance and causing sugarcane damage were studied by establishing the kinematics and dynamics models of the chopper. The types of sugarcane damage and sugarcane fragments were summarised. Then, a finite element model of the chopping system was built. An anisotropic and nonlinear material model for sugarcane was developed using Fortran. The transient process of chopping was analyzed by the explicit dynamic analysis method, and the chopping and damage mechanism of sugarcane was revealed. The results indicated that a smaller thickness and bevel angle of blade led to a shorter chopping time and a smoother chopping surface. The upper and lower blades of the chopper had unequal axial chopping depths, which was the primary cause of sugarcane damage. The rotational speed ratio of conveying roller to chopping roller and the blade thickness affected step degree of chopping surface. Finally, the chopping system was improved according to the theoretical and simulation analysis results. Experimental results showed that the damage rate decreased by 6.8%, 12.2%, and 12.6% respectively, and the loss rate decreased by 8.1%, 13.9%, and 21.8%, respectively, when the feed rate was 1, 2, and 3 kg s−1. The study results provide a reference for the design and optimization of sugarcane harvester’s chopping system.

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来源期刊
Biosystems Engineering
Biosystems Engineering 农林科学-农业工程
CiteScore
10.60
自引率
7.80%
发文量
239
审稿时长
53 days
期刊介绍: Biosystems Engineering publishes research in engineering and the physical sciences that represent advances in understanding or modelling of the performance of biological systems for sustainable developments in land use and the environment, agriculture and amenity, bioproduction processes and the food chain. The subject matter of the journal reflects the wide range and interdisciplinary nature of research in engineering for biological systems.
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