Material flow interaction in multi-pin extrusion: a study on pin height variability and process predictability

Elbel L, Römisch D, Merklein M (2026)


Publication Type: Journal article

Publication year: 2026

Journal

Book Volume: 14

Article Number: 100422

DOI: 10.1016/j.jajp.2026.100422

Abstract

The increasing demand for lightweight multi-material structures, particularly in automotive and aerospace applications, requires robust and efficient joining technologies. Mechanical joining methods based on locally formed pin structures offer a promising solution, as they enable the joining of dissimilar materials such as steel and aluminium as well as steel with fibre reinforced plastics without auxiliary elements. As single-pin connections have already been well researched, the focus has now shifted to applying this principle to multi-pin connections that are more relevant to practical applications. However, the forming behaviour of such systems remains insufficiently characterised. In this work the formation of multi-pin structures by forward extrusion and their implications for subsequent joining applications is being investigated. It is shown that multi-pin forming cannot be interpreted as a simple superposition of single-pin processes. Instead, the results reveal that local pin geometry is governed by interaction effects between neighbouring pins, even under constant process conditions. These interactions arise from competition for the locally available material, leading to systematic variations in pin height depending on pin spacing and arrangement. A distance-based interaction model is proposed, allowing the prediction of local pin height variations for configurations dominated by pin-to-pin interaction effects. The findings further demonstrate that, in addition to the local pin height, the homogeneity of the pin height distribution should be considered an important parameter, as it is expected to influence the reliability and predictability of the resulting mechanical joint. The presented approach provides a foundation for the design and optimisation of multi-pin joining systems for lightweight applications.

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How to cite

APA:

Elbel, L., Römisch, D., & Merklein, M. (2026). Material flow interaction in multi-pin extrusion: a study on pin height variability and process predictability. Journal of Advanced Joining Processes, 14. https://doi.org/10.1016/j.jajp.2026.100422

MLA:

Elbel, Leonie, David Römisch, and Marion Merklein. "Material flow interaction in multi-pin extrusion: a study on pin height variability and process predictability." Journal of Advanced Joining Processes 14 (2026).

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