Publikationen
Frank Balle
Es werden die 20 aktuellsten Publikation(en) angezeigt
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Premanand, A., Sharma, G., & Balle, F. (2026). A self-heating-based physics-guided neural network for fatigue life prediction of polymer matrix composites. Materials & Design, 268, 116444. https://doi.org/10.1016/j.matdes.2026.116444
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Premanand, A., Geist, H., & Balle, F. (2026). A framework to resist, postpone, and reverse physical obsolescence of engineering products with multiple use cycles. Resources, Conservation & Recycling Advances, 31, 200349. https://doi.org/10.1016/j.rcradv.2026.200349
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Geist, H., Schaake, L., & Balle, F. (2026). Mapping the global flows of engineering materials: estimating the influence of design disciplines. Cleaner Engineering and Technology, 32, 101238. https://doi.org/10.1016/j.clet.2026.101238
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Beck, G., Balle, F., Gökelma, M., Shamsuyeva, M., Perotto, G., & Gulia, K. (2026). Materials science and engineering for circularity : challenges, strategies and solution. Resources, Conservation and Recycling, 226, 108656. https://doi.org/10.1016/j.resconrec.2025.108656
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Premanand, A., & Balle, F. (2026). Significance of fracture fatigue entropy in predicting fatigue life across regimes in polymer matrix composites : a review and analysis. Composites : Part B, Engineering, 314, 113489. https://doi.org/10.1016/j.compositesb.2026.113489
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Geist, H., & Balle, F. (2026). Beyond life cycle thinking : a perspective. Ambio, 55(4), 767–774. https://doi.org/10.1007/s13280-025-02282-x
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Premanand, A., Sharma, G., & Balle, F. (2025). A straightforward machine learning-based giga-cycle fatigue life regression approach for polymer matrix composites. Results in Engineering, 28, 108037. https://doi.org/10.1016/j.rineng.2025.108037
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Geist, H., & Balle, F. (2025). Recyclability: redefining the concept for the circular economy. Journal of Industrial Ecology, 29(5), 1505–1522. https://doi.org/10.1111/jiec.70082
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Ragupathi, B., Walter, M., Fiedler, B., & Balle, F. (2025). Feasibility study on ultrasonic-assisted processing techniques for the value-retention of hybrid thermoplastic–thermoset composites. Composites : Part A, Applied Science and Manufacturing, 199, 109249. https://doi.org/10.1016/j.compositesa.2025.109249
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Ragupathi, B., & Balle, F. (2025). Ultrasonic reconsolidation at 20 kHz : a potential repair approach for aerospace composites.
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Strahringer, S., Imbert, M., May, M., & Balle, F. (2025). Impact-induced interlaminar crack initiation in notched thermoplastic composites for single-layer recovery purposes: role of the notch geometry. Journal of Dynamic Behavior of Materials, 11(4), 584–597. https://doi.org/10.1007/s40870-025-00480-y
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Premanand, A., & Balle, F. (2025). Heat dissipation and entropy accumulation of CF-PEKK composite under low and ultrasonic frequency loading. International Journal of Mechanical Sciences, 302, 110530. https://doi.org/10.1016/j.ijmecsci.2025.110530
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Ragupathi, B., & Balle, F. (2025). Circularity-engineering approach for value-retention of high-performance thermoplastic composites by ultrasonic-assisted technologies. https://doi.org/10.6094/UNIFR/265318
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Ragupathi, B., Strahringer, S., Rienks, M., Jakkula, P., Hohe, J., & Balle, F. (2025). Fracture toughness characterization of carbon fiber-reinforced thermoplastic composites under ultrasonic frequency. Polymer Composites, 46(S1), S575–S589. https://doi.org/10.1002/pc.29801
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Premanand, A., Schimmelpfeng, H., & Balle, F. (2025). Comparability of fatigue strength and life estimation of a CF-PEKK composite under low and ultrasonic frequencies using time-temperature-based approaches. Fatigue & Fracture of Engineering Materials & Structures, 48(5), 2363–2380. https://doi.org/10.1111/ffe.14608
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Premanand, A., Schimmelpfeng, H., & Balle, F. (2025). Specimen and experiment design for on- and off-axis fatigue and self-heating characterization of a woven CF-PEKK composite at low and ultrasonic frequencies. Composites, 295, 112183. https://doi.org/10.1016/j.compositesb.2025.112183
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Ragupathi, B., Burger, L., & Balle, F. (2025). Post-joining thermal characteristics and repair integrity of carbon fiber-reinforced thermoplastic composites during ultrasonic reconsolidation at 20 kHz. Composites, 16, 100565. https://doi.org/10.1016/j.jcomc.2025.100565
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Premanand, A., Schimmelpfeng, H., & Balle, F. (2025). On- and off-axis tension-compression and self-heating behavior of a woven CFRP up to the very high cycle fatigue regime.
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Pfaff, A. G., Jäcklein, M., Hoschke, K., & Balle, F. (2024). EBSD-based image quality analysis of in-situ tempered martensitic steel generated by L-PBF. Materials Characterization, 213, 114018. https://doi.org/10.1016/j.matchar.2024.114018
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Ragupathi, B., & Balle, F. (2024). Mit Ultraschall geht´s rund: Fügen, Trennen und Wiederverwenden von Verbundwerkstoffen.
Positionen, Funktionen, Mitgliedschaften (Auswahl)
- Mitherausgeber und Editorial Board Internat. “Journal Ultrasonics“
- Scientific Board “ Very High Cycle Fatigue Conference“, „Symposium für Verbundwerkstoffe und Werkstoffverbunde“
- Gutachter für die Deutsche Forschungsgesellschaft (DFG), die Netherlands Organisation for Scientific Research (NWO), Stifterverband, Gutachter für zahlreiche internationale Fachzeitschriften
Auszeichnungen und mediale Präsenz
- 2024: Fellowship für Innovationen in der digitalen Hochschullehre, MWK BaWü & Stifterverband
- 2022: Auszeichnung für ein Lehrmodul, Heidelberger Zentrum Bildung für Nachhaltige Entwicklung (BNE)
- 2021: Gewinner der nationalen MINT-Challenge „Durchstarten statt abbrechen“, Stifterverband
- 2020: Tandem-Fellowship für Innovationen in der Hochschullehre (Exzellenz in der Lehre), Stifterverband
- 2018: Rufe der TU Graz & Universität Augsburg auf die Professuren „Luftfahrtwerkstoffe“ &„Hybride Werkstoffe“
- 2010: Young Leader Professional Development Award, Minerals, Metals & Materials Society (TMS), USA
- 2009: Promotion mit Auszeichnung (summa cum laude)
- 2004: Ferchau Förderpreis (1 Platz), Jahrgangsbester im Maschinenbaustudium