Abstract

The Advanced Joining Processes (AJP) is an autonomous research unit at the Institute of Science and Innovation in Mechanical and Industrial Engineering (INEGI) that works closely with the Faculty of Mechanical Engineering of the University of Porto (FEUP). This unit is staffed by professors, post-doctoral researchers, PhD students, MSc students and research fellows. The AJP unit has four key competences, established to support all aspects related to the study of advanced joining processes: testing, simulation, production and machine design. The AJP unit has robust and fully independent competences in the manufacture of experimental specimens and components. The unit operates a fully equipped laboratory with all facilities necessary to manufacture specimens, moulds, test fixtures and testing equipment. The unit has extensive experience in testing complex specimens’ geometry under a wide range of conditions. Research is carried out to determine the performance of structural joints under quasi-static loads, high strain rates, fatigue and creep conditions, among many others. Complementarily, the unit also has a strong machine design capability, being experienced in the development and manufacture of custom designed testing equipment (such as creep testing machines, drop-weight testing machines, torsion testing machines, split Hopkinson pressure bars and devices for glass transition temperature measurement). These experimental capabilities are complemented with robust numerical simulation competencies, which allow to streamline the design process by creating powerful models that can accurately predict the mechanical behaviour of advanced structural joints. These capabilities enable the AJP unit to undertake new and challenging research projects, reacting quickly to current industrial demands and scientific trends, due to its autonomy. This work methodology allows the AJP unit to simultaneously operate in two main fronts. One is fundamental academic research, resulting in MSc and PhD thesis and scientific publication, and the other is comprised of knowledge-transfer activities with industrial partners, which generate funding that can be used to support additional fundamental research. By combining these two approaches, the AJP unit proves that sound technological based educational processes can be achieved while undertaking cutting edge research with practical and industrial value.

Highlights

  • In the late 19th century universities began to include significant scientific research in its activities, where it acted as a complement to its education activities

  • By mastering these fields it is possible to explore synergies that allow to develop novel equipment. This includes advanced testing machines to characterize adhesives and adhesive joints (such as torsion testing machines showed in Figure 3a (Dantas et al 2021), drop-weight testing machines showed in Figure 3b (Antunes et al 2019), creep testing machines showed in Figure 3c (Janeira et al 2020), Split Hopkinson pressure bars and devices for glass transition temperature measurement). The development of such equipment is always carried out in the context of student thesis and projects, which play a key role in integrally developing the components, always under the supervision of the Advanced Joining Processes (AJP) unit members

  • This allows the students to experience first-hand the processes and methods which must be mastered in the design of advanced testing machines, as well as the challenges associated with these activities

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Summary

Introduction

In the late 19th century universities began to include significant scientific research in its activities, where it acted as a complement to its education activities. The development of such equipment is always carried out in the context of student thesis and projects, which play a key role in integrally developing the components, always under the supervision of the AJP unit members This allows the students to experience first-hand the processes and methods which must be mastered in the design of advanced testing machines, as well as the challenges associated with these activities. As stated before, this equipment later plays a critical role in supporting innovative research work on adhesively bonded connections and allows the unit to be independent and agile on its operation

Production
Testing
A Case Study
Conclusions
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