基于减层去除的块状残余应力估算的序中加工变形预测方法

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2024-01-03 DOI:10.3390/jmmp8010009
M. Aurrekoetxea, Luis Norberto López de Lacalle, O. Zelaieta, I. Llanos
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引用次数: 0

摘要

为航空航天市场制造整体结构部件往往会产生加工变形,这给工业带来了高昂的成本以及材料和能源浪费。尽管已开发出变形计算和避免工具,但由于难以准确、经济地测量加工坯料的残余应力,这一问题仍未得到解决。在过去的几年中,机上去层方法已经显示出其在工业应用方面的潜力,为从测量残余应力的坯料中获得最终部件提供了可能性。然而,这种测量方法需要较长的实施时间,无法作为制造链的一部分在加工过程中使用。从这个意义上说,本文的目的是提供一种基于体残余应力估算和混合建模的加工变形预测方法。批量残余应力估算是通过减少层去除测量来进行的。考虑到整体残余应力数据和加工引起的残余应力数据,以及几何和材料数据,可以进行实际零件变形计算。为此,我们采用了一种基于分析表述和有限元建模相结合的混合模型,使我们能够进行快速而精确的计算。通过本文介绍的开发成果,可以简单快速地预测加工变形并计算其不确定性范围。通过与实验结果的对比,我们评估了这些开发成果的准确性和实用性,结果表明,与实验结果相比,所提出的解决方案能够提供误差低于 10%的变形预测。
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In-Process Machining Distortion Prediction Method Based on Bulk Residual Stresses Estimation from Reduced Layer Removal
Manufacturing structural monolithic components for the aerospace market often involves machining distortion, which entails high costs and material and energy waste in industry. Despite the development of distortion calculation and avoidance tools, this issue remains unsolved due to the difficulties in accurately and economically measuring the residual stresses of the machining blanks. In the last years, the on-machine layer removal method has shown its potential for industrial implementation, offering the possibility to obtain final components from blanks with measured residual stresses. However, this measuring method requires too long an implementation time to be used in-process as part of the manufacturing chains. In this sense, the objective of this paper is to provide a machining distortion prediction method based on bulk residual stress estimation and hybrid modelling. The bulk residual stresses estimation is performed using reduced layer removal measurements. Considering bulk residual stress data and machining-induced residual stress data, as well as geometry and material data, real-part distortion calculations can be performed. For this, a hybrid model based on the combination of an analytical formulation and finite element modelling is employed, which enables us to perform fast and accurate calculations. With the developments here presented, the machining distortion can be predicted, and its uncertainty range can be calculated, in a simple and fast way. The accuracy and practicality of these developments are evaluated by comparison with the experimental results, showing the capability of the proposed solution in providing distortion predictions with errors lower than 10% in comparison with the experimental results.
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
期刊最新文献
Assessing the Feasibility of Fabricating Thermoplastic Laminates from Unidirectional Tapes in Open Mold Environments Vickers Hardness Mechanical Models and Thermoplastic Polymer Injection-Molded Products’ Static Friction Coefficients Phase Composition, Microstructure and Mechanical Properties of Zr57Cu15Ni10Nb5 Alloy Obtained by Selective Laser Melting In-Process Machining Distortion Prediction Method Based on Bulk Residual Stresses Estimation from Reduced Layer Removal A Combined Microscopy Study of the Microstructural Evolution of Ferritic Stainless Steel upon Deep Drawing: The Role of Alloy Composition
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