Uncertainties on the mechanical behaviour of bronze sheets: influence on the failure in bending

IF 2.6 3区 材料科学 Q2 ENGINEERING, MANUFACTURING
Ghinwa Ouaidat, Amine Lagroum, Ahmed Kacem, Sandrine Thuillier
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Abstract

Copper alloys are extensively used in the manufacture of electrical and electronic components, which strength depends on the material mechanical properties, which in turn depend on the metallurgical state. Even though the mechanical properties remain within the specifications, the subsequent formability limits may depend strongly on the material batch. Considering the forming stage to manufacture plug-in type connectors made of CuSn6P thin sheets, a crack may appear in the components, in the bent area subject to high strains, when changing the material batch. The aim of this study is to take account of these variations of the mechanical behavior through a probabilistic approach, to predict the formability limit. The mechanical properties of the materials from the two batches were characterized in tension, to highlight the differences. The initial yield stress and the tensile strength are higher for one material, while the maximum equivalent plastic strain at rupture, determined through a hybrid experimental-numerical approach, is lower. And a significant difference in the transverse anisotropy coefficient is evidenced. A 3D parametric finite element model of the forming stage is developed to investigate the role of some mechanical properties and process parameters on the formability limit in bending. The range of the parameter values comes from the experimental data. Their influence is evaluated through a design of experiments, with the aim of highlighting the influence of the variations of the mechanical properties and process parameters on the fracture criterion, using a probabilistic approach with Gauss’s law.

Abstract Image

Abstract Image

青铜板机械性能的不确定性:对弯曲失效的影响
铜合金被广泛用于制造电气和电子元件,其强度取决于材料的机械性能,而机械性能又取决于冶金状态。即使机械性能保持在规定范围内,随后的可成形性限制可能在很大程度上取决于材料批次。考虑到在制造由 CuSn6P 薄板制成的插入式连接器的成型阶段,当更换材料批次时,组件中承受高应变的弯曲区域可能会出现裂纹。本研究的目的是通过概率方法考虑机械行为的这些变化,预测成型性极限。对两批材料的机械性能进行了拉伸表征,以突出差异。其中一种材料的初始屈服应力和拉伸强度较高,而通过实验-数值混合方法确定的断裂时最大等效塑性应变较低。横向各向异性系数也存在明显差异。建立了成型阶段的三维参数有限元模型,以研究一些机械性能和工艺参数对弯曲成型性极限的影响。参数值的范围来自实验数据。通过实验设计对它们的影响进行评估,目的是利用高斯定律的概率方法,突出机械性能和工艺参数的变化对断裂标准的影响。
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来源期刊
International Journal of Material Forming
International Journal of Material Forming ENGINEERING, MANUFACTURING-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.10
自引率
4.20%
发文量
76
审稿时长
>12 weeks
期刊介绍: The Journal publishes and disseminates original research in the field of material forming. The research should constitute major achievements in the understanding, modeling or simulation of material forming processes. In this respect ‘forming’ implies a deliberate deformation of material. The journal establishes a platform of communication between engineers and scientists, covering all forming processes, including sheet forming, bulk forming, powder forming, forming in near-melt conditions (injection moulding, thixoforming, film blowing etc.), micro-forming, hydro-forming, thermo-forming, incremental forming etc. Other manufacturing technologies like machining and cutting can be included if the focus of the work is on plastic deformations. All materials (metals, ceramics, polymers, composites, glass, wood, fibre reinforced materials, materials in food processing, biomaterials, nano-materials, shape memory alloys etc.) and approaches (micro-macro modelling, thermo-mechanical modelling, numerical simulation including new and advanced numerical strategies, experimental analysis, inverse analysis, model identification, optimization, design and control of forming tools and machines, wear and friction, mechanical behavior and formability of materials etc.) are concerned.
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