Optimized Design of Fixture Mechanism for Cotton Bundle Fiber

IF 2.2 3区 工程技术 Q2 ENGINEERING, MECHANICAL Actuators Pub Date : 2023-11-23 DOI:10.3390/act12120435
Daiyu Jiang, Huting Wang, Ruoyu Zhang, Rong Hu, Hong Liu
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Abstract

The linkage mechanism of a cotton bundle fiber strength tester will have an unstable clamping force when clamping fiber bundle samples with uneven thickness, resulting in slippage or damage to the fibers increasing the pectin residue, leading to inaccurate test results and increased maintenance costs. To address this problem, according to the structural principle of the connecting rod-clamping mechanism, through the geometric relationship between the connecting rods to establish a parametric model of the mechanism and the use of the principle of virtual work on the mechanism to solve the force, the proposed new Dynamic Alternative Static Approximate Analysis Method (DASAAM) was based on Adams 2020. The Isight integrated Adams automatic optimization design framework was built. The variance of the change curve of the end force of the mechanism when clamping samples of different thicknesses was used as the evaluation function and the assembly conditions were used as the constraints. The dimensional parameters and angles of the mechanism were optimized using the multi-island genetic algorithm. The simulation results showed that when the thickness of the clamped sample varied in the range of 0–4 mm, the clamping force of the mechanism varied in the range of 8920–8630 N. Finally, the variance of the clamping force measured by the clamping force measurement component was 0.0367. The above results show that the DASAAM provided a new method for solving the static problem of mechanism morphological and position change, and the optimized linkage mechanism had better clamping force stability, which made the strength detection of cotton fiber more accurate, thus improving the quality of textile products.
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棉束纤维夹具机构的优化设计
棉束纤维强度测试仪的连杆机构在夹持粗细不均的纤维束样品时,会出现夹持力不稳定的情况,导致纤维打滑或损伤增加果胶残留,导致测试结果不准确,增加维护成本。针对这一问题,根据连杆夹持机构的结构原理,通过连杆之间的几何关系建立机构参数模型,并利用虚功原理对机构进行受力求解,提出了基于 Adams 2020 的新型动态替代静态近似分析方法(DASAAM)。建立了 Isight 集成亚当斯自动优化设计框架。以夹持不同厚度样品时机构端面力变化曲线的方差作为评价函数,以装配条件作为约束条件。采用多岛遗传算法对机构的尺寸参数和角度进行了优化。仿真结果表明,当夹紧样品的厚度在 0-4 mm 范围内变化时,机构的夹紧力在 8920-8630 N 范围内变化,最后,夹紧力测量组件测得的夹紧力方差为 0.0367。以上结果表明,DASAAM 为解决机构形态和位置变化的静态问题提供了一种新方法,优化后的连杆机构具有更好的夹持力稳定性,使棉纤维的强度检测更加准确,从而提高了纺织产品质量。
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来源期刊
Actuators
Actuators Mathematics-Control and Optimization
CiteScore
3.90
自引率
15.40%
发文量
315
审稿时长
11 weeks
期刊介绍: Actuators (ISSN 2076-0825; CODEN: ACTUC3) is an international open access journal on the science and technology of actuators and control systems published quarterly online by MDPI.
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