Experimental Investigation of Strain Rate Influence on Anisotropy of Uniaxial Tensile Mechanical Properties of CuFe2P Alloy Sheet

Author:

Bubalo Ante1,Tonković Zdenko2,Krstulović-Opara Lovre3ORCID,Cvitanić Vedrana3

Affiliation:

1. Yazaki Europe Limited, Slavonska 26/6, HR-10000 Zagreb, Croatia

2. Faculty of Mechanical Engineering and Naval Architecture, University of Zagreb, Ivana Lučića 5, HR-10000 Zagreb, Croatia

3. Faculty of Electrical Engineering, Mechanical Engineering and Naval Architecture, University of Split, R. Boškovića 32, HR-21000 Split, Croatia

Abstract

Wire crimping, a process commonly used in the automotive industry, is a solderless method for establishing electrical and mechanical connections between wire strands and terminals. The complexity of predicting the final shape of a crimped terminal and the imperative to minimize production costs indicate the use of advanced numerical methods. Such an approach requires a reliable phenomenological elasto-plastic constitutive model in which material behavior during the forming process is described. Copper alloy sheets, known for their ductility and strength, are commonly selected as terminal materials. Generally, sheet metals exhibit significant anisotropy in mechanical properties, and this phenomenon has not been sufficiently investigated experimentally for copper alloy sheets. Furthermore, the wire crimping process is conducted at higher velocities; therefore, the influence of the strain rate on the terminal material behavior has to be known. In this paper, the influence of the strain rate on the anisotropic elasto-plastic behavior of the copper alloy sheet CuFe2P is experimentally investigated. Tensile tests with strain rates of 0.0002 s−1, 0.2 s−1, 1 s−1, and 5.65 s−1 were conducted on sheet specimens with orientations of 0°, 45°, and 90° to the rolling direction. The influence of the strain rate on the orientation dependences of the stress–strain curve, elastic modulus, tensile strength, elongation, and Lankford coefficient was determined. Furthermore, the breaking angle at fracture and the inelastic heat fraction were determined for each considered specimen orientation. The considered experimental data were obtained by capturing the loading process using infrared thermography and digital image correlation techniques.

Funder

Yazaki Europe LTD

Publisher

MDPI AG

Reference38 articles.

1. Bubalo, A., Tonković, Z., and Zorica, D. (2022, January 28–30). Development of quick and reliable method for electric terminal crimp design. Proceedings of the 10th International Congress of Croatian Society of Mechanics, Pula, Croatia.

2. Experimental and Numerical Analysis of Electrical Contact Crimping to Predict Mechanical Strength;Mocellin;Procedia Eng.,2014

3. Bruhin, L. (2010). Method for Determining the Quality of a Crimped Connection between a Conductor and a Contact. (EP2173015B1).

4. Bubalo, A., Tonković, Z., and Zorica, D. (October, January 29). Numerical and Experimental Investigations of Wire Crimping Process. Proceedings of the 8th International Congress of Croatian Society of Mechanics, Opatija, Croatia.

5. A novel crimping technique approach for high power white good plugs;Bostan;Turk. J. Electr. Eng. Comput. Sci.,2022

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