Professorship for materials mechanics

Organisational unit: Section

Organisation profile

The professorship "materials mechanics“ focuses on the development of suitable models for different classes of materials based on the physical deformation mechanisms as well as on the modeling and simulation of local production processes. The development of these material models is crucial for the application of new materials, since these models are able to describe the deformation behavior in industrial production processes which allows for their optimization. In particular, local engineering in the context of production processes is of high technological relevance in adjusting local properties. For example, laser material processing and friction stir welding are relevant processes which are investigated. A targeted heat input into the material can be used to control and adjust the properties near the surface. As a result, improved properties, particularly in terms of damage tolerance can be achieved. The complexity of the interaction between the process parameters and material properties leads to high experimental effort, with sophisticated experimental techniques required to determine the influence of the process on the component. Therefore, reliable models are required to reduce the experimental effort. The developed material and process models are used to identify optimal process parameters that produce the desired properties inside the material and structure. The main objective of the professorship is to develop realistic and efficient numerical models which are formulated on basis of the underlying physical mechanisms. The identification of these mechanisms requires interdisciplinary collaborations with scientists from materials science, mechanics and production.The cooperation between the University of Lüneburg and the Helmholtz-Zentrum Geesthacht provides an ideal opportunity to accomplish the goals of this shared professorship.

Topics

modeling of microstructures

process modeling ans simulation of laser shock peening

process modeling and simulation of laser welding

modeling of metallic glasses

modeling of residual stresses

modeling of nano materials

development of homogenization approaches for heterogeneous materials

  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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