Professorship for materials mechanics

Organisational unit: Professoship

Organisation profile

The professorship for materials mechanics with a focus on process simulation is a shared professorship carried out in cooperation with the Helmholtz-Zentrum hereon GmbH. In particular, this is concerned with the digital modelling of technological production processes and materials, whereby considerable focus is placed on local modification processes, solid state joining processes and forming processes. The modelling approaches which are used for these range from micromechanics (e.g. crystal plasticity and phase field simulations), to continuum mechanics for describing material behaviour, to approaches for complex process simulations.

Main research areas

At the same time, one of the main focuses of the activities carried out by the professorship at the Leuphana is the development and application of mathematical models (material models) for describing microstructure development and the deformation behaviour of various metallic materials across multiple length scales. These developments often take place in close conjunction with the experimental work being carried out at the hereon. The length scale and timescale on which the relevant processes in the material take place or on which these are modelled depends on the material, the process and the component. Over the past few years, the work group has built up a vast wealth of experience when it comes to modelling many material systems such as these. In addition to carrying out intense studies on deformation processes in metallic materials, the work group has also dealt with additional material systems such as metallic glasses and polymers.

At the Helmholtz-Zentrum hereon, the professorship deals specifically with the experimental study and process modelling of solid state joining processes and manufacturing processes which act on a local level. Some named examples of these are joining processes such as friction stir welding and laser welding, as well as additive manufacturing processes such as friction welding and laser deposition welding. This is accompanied by local modification processes for the targeted adjustment of residual stresses (residual stress engineering), such as laser shock peening and hammer peening. One of the fundamental goals of these research activities is to investigate the entire system of process, microstructure and property through a combination of experimental and simulation-based approaches in order to achieve an improved physical understanding thereof. By adapting the process parameters in a targeted manner, the insights gained can be used to optimise material or structural behaviour, e.g. with regard to deformation and failure behaviour.

The professorship plays an active role in various national and international organisations such as the GAMM (International Association of Applied Mathematics and Mechanics) or the ZHM (Centre for Advanced Materials).

Key teaching focuses are in the fields of applied mechanics and material modelling, as well as in the provision of additional engineering basics.

  1. 2019
  2. Published

    Two-step simulation approach for laser shock peening

    Pozdnyakov, V., Keller, S., Kashaev, N., Klusemann, B. & Oberrath, J., 11.2019, In: Proceedings in applied mathematics and mechanics. 19, 1, 2 p., e201900497.

    Research output: Journal contributionsConference article in journalResearchpeer-review

  3. Published

    Crack closure mechanisms in residual stress fields generated by laser shock peening: A combined experimental-numerical approach

    Keller, S., Horstmann, M., Kashaev, N. & Klusemann, B., 01.11.2019, In: Engineering Fracture Mechanics. 221, 15 p., 106630.

    Research output: Journal contributionsJournal articlesResearchpeer-review

  4. 2020
  5. Published

    Digitalisierung aus der Perspektive Fachdidaktischer Forschung und Ingenieurwissenschaftlicher Lehrpraxis

    Block, B.-M. & Klusemann, B., 2020, 14. Ingenieurpädagogischen Regionaltagung 2019: Technische Bildung im Kontext von 'Digitalisierung' / 'Automatisierung' - Tendenzen, Möglichkeiten, Perspektiven. Petersen, M. & Kammasch, G. (eds.). Berlin: Ingenieur-Pädagogische Wissenschaftsgesellschaft, p. 147-155 8 p.

    Research output: Contributions to collected editions/worksArticle in conference proceedingsResearchpeer-review

  6. Published

    Fatigue crack propagation influenced by laser shock peening introduced residual stress fields in aluminium specimens

    Keller, S., Horstmann, M., Kashaev, N. & Klusemann, B., 01.01.2020, ICAF 2019 – Structural Integrity in the Age of Additive Manufacturing: Proceedings of the 30th Symposium of the International Committee on Aeronautical Fatigue, 2019. Niepokolczycki, A. & Komorowski, J. (eds.). Cham, Schweiz: Springer, p. 617-631 15 p. (Lecture Notes in Mechanical Engineering).

    Research output: Contributions to collected editions/worksArticle in conference proceedingsResearchpeer-review

  7. Published

    Microstructure by design: An approach of grain refinement and isotropy improvement in multi-layer wire-based laser metal deposition

    Froend, M., Ventzke, V., Dorn, F., Kashaev, N., Klusemann, B. & Enz, J., 20.01.2020, In: Materials Science and Engineering A. 772, 13 p., 138635.

    Research output: Journal contributionsJournal articlesResearchpeer-review

  8. Published

    Editorial: Machine Learning and Data Mining in Materials Science

    Huber, N., Kalidindi, S. R., Klusemann, B. & Cyron, C. J., 28.02.2020, In: Frontiers in Materials. 7, 3 p., 51.

    Research output: Journal contributionsOther (editorial matter etc.)Research

  9. Published

    Diffusion-driven microstructure evolution in OpenCalphad

    Herrnring, J., Sundman, B. & Klusemann, B., 01.04.2020, In: Computational Materials Science. 175, 10 p., 109236.

    Research output: Journal contributionsJournal articlesResearchpeer-review

  10. Published

    The influence of laser shock peening on fatigue properties of AA2024-T3 alloy with a fastener hole

    Sikhamov, R., Fomin, F., Klusemann, B. & Kashaev, N., 09.04.2020, In: Metals. 10, 4, 13 p., 495.

    Research output: Journal contributionsJournal articlesResearchpeer-review

  11. Published

    Friction riveting of 3D printed polyamide 6 with AA 6056-T6

    dos Santos Mallmann, P. H., Blaga, L. A., dos Santos, J. F. & Klusemann, B., 05.2020, In: Procedia Manufacturing. 47, p. 406-412 7 p.

    Research output: Journal contributionsConference article in journalResearchpeer-review

  12. Published

    Mechanical performance prediction for friction riveting joints of dissimilar materials via machine learning

    Bock, F. E., Blaga, L. A. & Klusemann, B., 05.2020, In: Procedia Manufacturing. 47, p. 615-622 8 p.

    Research output: Journal contributionsConference article in journalResearchpeer-review

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