Optimisation design and experimental analysis of rotary blade reinforcing ribs using DEM-FEM techniques

IF 4.4 1区 农林科学 Q1 AGRICULTURAL ENGINEERING Biosystems Engineering Pub Date : 2024-11-28 DOI:10.1016/j.biosystemseng.2024.11.015
Xiaochuan Zhao , Janguo Zhao , Jiale Zhao , Zhikai Ma , Jianchang Li , Binhao Dai , Meilin An , Jiaping Wang , Jianjun Hao
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Abstract

This study addresses the prevalent issue of rotary blade fractures in tillage operations by designing a new type of reinforcing rib that mitigates neck force and alleviates stress concentration. Initially, utilising traditional design concepts, the side-plate reinforcing rib was segmented into units and analysed using ANSYS to develop an initial model. Evaluation indices such as specific strength structural efficiency and specific stiffness structural efficiency were employed to perform orthogonal optimisation of the rib dimensions, achieving optimal measurements of 72.9 mm in length, 15.7 mm in width, and 3.5 mm in thickness. These dimensions enhance the specific strength structural efficiency by 14.14% and the specific stiffness structural efficiency by 0.95% compared to the initial model. Further, the rib's mathematical model was refined and generalised by a curve-fitting method across different rotary blade models (IT series), followed by topological optimisation to fine-tune morphological features. This optimisation reduced the model's mass by 9.78% and improved efficiency metrics by 2.6% (strength) and 0.5% (stiffness). Comparative experiments using DEM-FEM coupled analysis were conducted on three optimised models to assess the redesigned blade's performance. The experiments evaluated key performance metrics such as neck force, maximum stress, fatigue life, and ultimate fracture stress. The results indicate that after two rounds of optimisation, the blade's neck force was reduced by 16.85%, the maximum stress decreased by 15.22%, the fatigue life increased by 76.03%, and the ultimate fracture stress improved by 20.16%. These changes align with the optimisation objectives. Subsequent control and calibration tests produced a load-strain curve that validated the simulation data with a marginal error range of 3%–10%, validating the simulation's accuracy. This research provides a robust theoretical framework for optimising the reinforcing rib and fracture resistance of rotary blades.
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利用 DEM-FEM 技术对旋转叶片加强筋进行优化设计和实验分析
本研究通过设计一种新型加强筋来减轻颈部受力并缓解应力集中,从而解决耕作作业中普遍存在的旋耕刀断裂问题。首先,利用传统的设计理念,将侧板加强筋划分为若干单元,并使用 ANSYS 进行分析,以建立初始模型。采用比强度结构效率和比刚度结构效率等评估指标对加强筋尺寸进行正交优化,实现了长度为 72.9 毫米、宽度为 15.7 毫米、厚度为 3.5 毫米的最佳测量值。与初始模型相比,这些尺寸使比强度结构效率提高了 14.14%,比刚度结构效率提高了 0.95%。此外,还采用曲线拟合方法对不同旋转叶片模型(IT 系列)的肋条数学模型进行了改进和概括,然后进行拓扑优化以微调形态特征。优化后的模型质量减轻了 9.78%,效率指标提高了 2.6%(强度)和 0.5%(刚度)。使用 DEM-FEM 耦合分析对三个优化模型进行了对比实验,以评估重新设计的叶片性能。实验评估了关键性能指标,如颈力、最大应力、疲劳寿命和极限断裂应力。结果表明,经过两轮优化后,叶片的颈部力降低了 16.85%,最大应力降低了 15.22%,疲劳寿命提高了 76.03%,极限断裂应力提高了 20.16%。这些变化符合优化目标。随后的控制和校准测试得出的载荷-应变曲线验证了模拟数据,边际误差范围为 3%-10%,验证了模拟的准确性。这项研究为优化回转叶片的加强筋和抗断裂性能提供了一个强大的理论框架。
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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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