Process-adapted temperature application within a two-stage rivet forming process for high nitrogen steel

Author:

Kuball C-M1ORCID,Uhe B2,Meschut G2,Merklein M1

Affiliation:

1. Friedrich-Alexander-Universität Erlangen-Nürnberg, Institute of Manufacturing Technology (LFT), Erlangen, Germany

2. Paderborn University, Laboratory for Material and Joining Technology (LWF), Paderborn, Germany

Abstract

Mechanical joining technologies like self-piercing riveting are gaining importance with regard to environmental protection, as they enable multi-material design and lightweight construction. A new approach is the use of high nitrogen steel as rivet material, which allows to omit the usually necessary heat treatment and coating and thus leads to a shortening of the process chain. Due to the high strain hardening, however, high tool loads must be expected. Thus, appropriate forming strategies are needed. Within this contribution, the influence of applying different temperatures for each forming stage in a two-stage rivet forming process using the high nitrogen steel 1.3815 is investigated. The findings provide a basic understanding of the influence of the temperature management when forming high nitrogen steel. For this purpose, the rivets are not formed at the same temperature in each stage, but an elevated temperature is applied selectively. Different process routes are investigated. First, cups are manufactured in stage 1 at room temperature, followed by stage 2 at 200°C. Second, cups are formed in stage 1 at 200°C and used for stage 2 at room temperature. By comparing the findings with results when applying the same temperature in both stages, it is shown that the temperature during the first forming operation has an effect on the forming behaviour during the second forming stage. The required forming forces and the resulting rivet hardness can be influenced by process-adapted temperature application. Furthermore, the causes for the temperature impact on the residual cup thickness in stage 1 are evaluated by a cause and effect analysis, which provides a deeper process understanding. The thermal expansion of the tool and the billet as well as the improved forming behaviour at 200°C are identified as the main influencing causes on the achieved residual cup thickness.

Funder

Deutsche Forschungsgemeinschaft

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Increased Sustainability in Fastener Production with the Example of Self-Piercing Rivets;Journal of Manufacturing and Materials Processing;2023-10-31

2. A review on mechanical and metallurgical joining by plastic deformation;Discover Mechanical Engineering;2023-04-27

3. Study on the forming process and shear mechanical behavior of CFRP/Al self-piercing riveting employed 3D modeling;Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications;2023-02-09

4. Mechanical joining of high-strength multi-material systems − trends and innovations;Mechanics & Industry;2023

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