[{"language":[{"iso":"eng"}],"article_number":"107235","doi":"10.1016/j.ijfatigue.2022.107235","author":[{"full_name":"Hein, Maxwell","first_name":"Maxwell","last_name":"Hein"},{"full_name":"Lopes Dias, Nelson Filipe","first_name":"Nelson Filipe","last_name":"Lopes Dias"},{"full_name":"Kokalj, David","first_name":"David","last_name":"Kokalj"},{"full_name":"Stangier, Dominic","first_name":"Dominic","last_name":"Stangier"},{"last_name":"Hoyer","first_name":"Kay-Peter","full_name":"Hoyer, Kay-Peter"},{"full_name":"Tillmann, Wolfgang","last_name":"Tillmann","first_name":"Wolfgang"},{"last_name":"Schaper","first_name":"Mirko","full_name":"Schaper, Mirko"}],"publication_identifier":{"issn":["0142-1123"]},"year":"2022","title":"On the influence of physical vapor deposited thin coatings on the low-cycle fatigue behavior of additively processed Ti-6Al-7Nb alloy","intvolume":"       166","publication_status":"published","date_updated":"2023-04-27T16:48:10Z","date_created":"2023-02-02T14:23:43Z","department":[{"_id":"9"},{"_id":"158"}],"type":"journal_article","keyword":["Industrial and Manufacturing Engineering","Mechanical Engineering","Mechanics of Materials","General Materials Science","Modeling and Simulation"],"publication":"International Journal of Fatigue","publisher":"Elsevier BV","_id":"41490","volume":166,"user_id":"48411","status":"public","citation":{"ieee":"M. Hein <i>et al.</i>, “On the influence of physical vapor deposited thin coatings on the low-cycle fatigue behavior of additively processed Ti-6Al-7Nb alloy,” <i>International Journal of Fatigue</i>, vol. 166, Art. no. 107235, 2022, doi: <a href=\"https://doi.org/10.1016/j.ijfatigue.2022.107235\">10.1016/j.ijfatigue.2022.107235</a>.","apa":"Hein, M., Lopes Dias, N. F., Kokalj, D., Stangier, D., Hoyer, K.-P., Tillmann, W., &#38; Schaper, M. (2022). On the influence of physical vapor deposited thin coatings on the low-cycle fatigue behavior of additively processed Ti-6Al-7Nb alloy. <i>International Journal of Fatigue</i>, <i>166</i>, Article 107235. <a href=\"https://doi.org/10.1016/j.ijfatigue.2022.107235\">https://doi.org/10.1016/j.ijfatigue.2022.107235</a>","short":"M. Hein, N.F. Lopes Dias, D. Kokalj, D. Stangier, K.-P. Hoyer, W. Tillmann, M. Schaper, International Journal of Fatigue 166 (2022).","chicago":"Hein, Maxwell, Nelson Filipe Lopes Dias, David Kokalj, Dominic Stangier, Kay-Peter Hoyer, Wolfgang Tillmann, and Mirko Schaper. “On the Influence of Physical Vapor Deposited Thin Coatings on the Low-Cycle Fatigue Behavior of Additively Processed Ti-6Al-7Nb Alloy.” <i>International Journal of Fatigue</i> 166 (2022). <a href=\"https://doi.org/10.1016/j.ijfatigue.2022.107235\">https://doi.org/10.1016/j.ijfatigue.2022.107235</a>.","mla":"Hein, Maxwell, et al. “On the Influence of Physical Vapor Deposited Thin Coatings on the Low-Cycle Fatigue Behavior of Additively Processed Ti-6Al-7Nb Alloy.” <i>International Journal of Fatigue</i>, vol. 166, 107235, Elsevier BV, 2022, doi:<a href=\"https://doi.org/10.1016/j.ijfatigue.2022.107235\">10.1016/j.ijfatigue.2022.107235</a>.","bibtex":"@article{Hein_Lopes Dias_Kokalj_Stangier_Hoyer_Tillmann_Schaper_2022, title={On the influence of physical vapor deposited thin coatings on the low-cycle fatigue behavior of additively processed Ti-6Al-7Nb alloy}, volume={166}, DOI={<a href=\"https://doi.org/10.1016/j.ijfatigue.2022.107235\">10.1016/j.ijfatigue.2022.107235</a>}, number={107235}, journal={International Journal of Fatigue}, publisher={Elsevier BV}, author={Hein, Maxwell and Lopes Dias, Nelson Filipe and Kokalj, David and Stangier, Dominic and Hoyer, Kay-Peter and Tillmann, Wolfgang and Schaper, Mirko}, year={2022} }","ama":"Hein M, Lopes Dias NF, Kokalj D, et al. On the influence of physical vapor deposited thin coatings on the low-cycle fatigue behavior of additively processed Ti-6Al-7Nb alloy. <i>International Journal of Fatigue</i>. 2022;166. doi:<a href=\"https://doi.org/10.1016/j.ijfatigue.2022.107235\">10.1016/j.ijfatigue.2022.107235</a>"}},{"status":"public","user_id":"36287","volume":59,"page":"660-675","publisher":"Walter de Gruyter GmbH","_id":"34000","quality_controlled":"1","citation":{"bibtex":"@article{Rozo Vasquez_Kanagarajah_Arian_Kersting_Homberg_Trächtler_Walther_2022, title={Coupled microscopic and micromagnetic depth-specific analysis of plastic deformation and phase transformation of metastable austenitic steel AISI 304L by flow forming}, volume={59}, DOI={<a href=\"https://doi.org/10.1515/pm-2022-0064\">10.1515/pm-2022-0064</a>}, number={11}, journal={Practical Metallography}, publisher={Walter de Gruyter GmbH}, author={Rozo Vasquez, Julian and Kanagarajah, Hanigah and Arian, Bahman and Kersting, Lukas and Homberg, Werner and Trächtler, Ansgar and Walther, Frank}, year={2022}, pages={660–675} }","ama":"Rozo Vasquez J, Kanagarajah H, Arian B, et al. Coupled microscopic and micromagnetic depth-specific analysis of plastic deformation and phase transformation of metastable austenitic steel AISI 304L by flow forming. <i>Practical Metallography</i>. 2022;59(11):660-675. doi:<a href=\"https://doi.org/10.1515/pm-2022-0064\">10.1515/pm-2022-0064</a>","mla":"Rozo Vasquez, Julian, et al. “Coupled Microscopic and Micromagnetic Depth-Specific Analysis of Plastic Deformation and Phase Transformation of Metastable Austenitic Steel AISI 304L by Flow Forming.” <i>Practical Metallography</i>, vol. 59, no. 11, Walter de Gruyter GmbH, 2022, pp. 660–75, doi:<a href=\"https://doi.org/10.1515/pm-2022-0064\">10.1515/pm-2022-0064</a>.","short":"J. Rozo Vasquez, H. Kanagarajah, B. Arian, L. Kersting, W. Homberg, A. Trächtler, F. Walther, Practical Metallography 59 (2022) 660–675.","chicago":"Rozo Vasquez, Julian, Hanigah Kanagarajah, Bahman Arian, Lukas Kersting, Werner Homberg, Ansgar Trächtler, and Frank Walther. “Coupled Microscopic and Micromagnetic Depth-Specific Analysis of Plastic Deformation and Phase Transformation of Metastable Austenitic Steel AISI 304L by Flow Forming.” <i>Practical Metallography</i> 59, no. 11 (2022): 660–75. <a href=\"https://doi.org/10.1515/pm-2022-0064\">https://doi.org/10.1515/pm-2022-0064</a>.","ieee":"J. Rozo Vasquez <i>et al.</i>, “Coupled microscopic and micromagnetic depth-specific analysis of plastic deformation and phase transformation of metastable austenitic steel AISI 304L by flow forming,” <i>Practical Metallography</i>, vol. 59, no. 11, pp. 660–675, 2022, doi: <a href=\"https://doi.org/10.1515/pm-2022-0064\">10.1515/pm-2022-0064</a>.","apa":"Rozo Vasquez, J., Kanagarajah, H., Arian, B., Kersting, L., Homberg, W., Trächtler, A., &#38; Walther, F. (2022). Coupled microscopic and micromagnetic depth-specific analysis of plastic deformation and phase transformation of metastable austenitic steel AISI 304L by flow forming. <i>Practical Metallography</i>, <i>59</i>(11), 660–675. <a href=\"https://doi.org/10.1515/pm-2022-0064\">https://doi.org/10.1515/pm-2022-0064</a>"},"date_updated":"2023-05-02T08:19:27Z","publication_status":"published","intvolume":"        59","year":"2022","title":"Coupled microscopic and micromagnetic depth-specific analysis of plastic deformation and phase transformation of metastable austenitic steel AISI 304L by flow forming","publication_identifier":{"issn":["2195-8599","0032-678X"]},"author":[{"full_name":"Rozo Vasquez, Julian","first_name":"Julian","last_name":"Rozo Vasquez"},{"full_name":"Kanagarajah, Hanigah","last_name":"Kanagarajah","first_name":"Hanigah"},{"id":"36287","full_name":"Arian, Bahman","last_name":"Arian","first_name":"Bahman"},{"full_name":"Kersting, Lukas","last_name":"Kersting","first_name":"Lukas"},{"full_name":"Homberg, Werner","last_name":"Homberg","first_name":"Werner","id":"233"},{"full_name":"Trächtler, Ansgar","first_name":"Ansgar","last_name":"Trächtler","id":"552"},{"full_name":"Walther, Frank","first_name":"Frank","last_name":"Walther"}],"doi":"10.1515/pm-2022-0064","language":[{"iso":"eng"}],"abstract":[{"lang":"eng","text":"<jats:title>Abstract</jats:title>\r\n               <jats:p>This paper presents the characterization of the microstructure evolution during flow forming of austenitic stainless steel AISI 304L. Due to plastic deformation of metastable austenitic steel, phase transformation from γ-austenite into α’-martensite occurs. This is initiated by the formation of shear bands as product of the external stresses. By means of coupled microscopic and micromagnetic investigations, a characterization of the microstructure was carried out. In particular, this study shows the distribution of the strain-induced α’-martensite and its influence on material properties like hardness at different depths. The microstructural analyses by means of electron backscattered diffraction (EBSD) technique, evidence a higher amount of α’-martensite (ca. 23 %) close to the outer specimen surface, where the plastic deformation and the direct contact with the forming tool take place. In the middle area (ca. 1.5 mm depth from the outer surface), the portion of transformed α’-martensite drops to 7 % and in the inner surface to 2 %. These results are well correlated with microhardness and micromagnetic measurements at different depths. EBSD and atomic force microscopy (AFM) were used to make a detailed characterization of the topography and degree of deformation of the shear bands. Likewise, the mechanisms of nucleation of α’-martensite were discussed. This research contributes to the development of micromagnetic sensors to monitor the evolution of properties during flow forming. This makes them more suitable for closed-loop property control, which offers possibilities for an application-oriented and more efficient production.</jats:p>"}],"issue":"11","publication":"Practical Metallography","type":"journal_article","keyword":["Metals and Alloys","Mechanics of Materials","Condensed Matter Physics","Electronic","Optical and Magnetic Materials"],"department":[{"_id":"156"},{"_id":"153"},{"_id":"241"}],"date_created":"2022-11-04T08:29:21Z"},{"language":[{"iso":"eng"}],"doi":"10.4028/p-yp2hj3","author":[{"full_name":"Kersting, Lukas","first_name":"Lukas","last_name":"Kersting"},{"id":"36287","full_name":"Arian, Bahman","last_name":"Arian","first_name":"Bahman"},{"last_name":"Vasquez","first_name":"Julian Rozo","full_name":"Vasquez, Julian Rozo"},{"id":"552","full_name":"Trächtler, Ansgar","first_name":"Ansgar","last_name":"Trächtler"},{"last_name":"Homberg","first_name":"Werner","full_name":"Homberg, Werner","id":"233"},{"full_name":"Walther, Frank","first_name":"Frank","last_name":"Walther"}],"publication_identifier":{"issn":["1662-9795"]},"title":"Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes","year":"2022","intvolume":"       926","publication_status":"published","date_updated":"2023-05-02T08:19:13Z","date_created":"2022-11-04T08:27:33Z","department":[{"_id":"156"},{"_id":"153"},{"_id":"241"}],"type":"journal_article","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"publication":"Key Engineering Materials","abstract":[{"text":"<jats:p>The production of complex multi-functional, high-strength parts is becoming increasingly important in the industry. Especially with small batch size, the incremental flow forming processes can be advantageous. The production of parts with complex geometry and locally graded material properties currently depicts a great challenge in the flow forming process. At this point, the usage of closed-loop control for the shape and properties could be a feasible new solution. The overall aim in this project is to establish an intelligent closed-loop control system for the wall thickness as well as the α’-martensite content of AISI 304L-workpieces in a flow forming process. To reach this goal, a novel sensor concept for online measurements of the wall thickness reduction and the martensite content during forming process is proposed. It includes the setup of a modified flow forming machine and the integration of the sensor system in the machine control. Additionally, a simulation model for the flow forming process is presented which describes the forming process with regard to the plastic workpiece deformation, the induced α’-martensite fraction, and the sensor behavior. This model was used for designing a closed-loop process control of the wall thickness reduction that was subsequently realized at the real plant including online measured feedback from the sensor system.</jats:p>","lang":"eng"}],"publisher":"Trans Tech Publications, Ltd.","_id":"33999","page":"862-874","volume":926,"user_id":"36287","status":"public","citation":{"ieee":"L. Kersting, B. Arian, J. R. Vasquez, A. Trächtler, W. Homberg, and F. Walther, “Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes,” <i>Key Engineering Materials</i>, vol. 926, pp. 862–874, 2022, doi: <a href=\"https://doi.org/10.4028/p-yp2hj3\">10.4028/p-yp2hj3</a>.","apa":"Kersting, L., Arian, B., Vasquez, J. R., Trächtler, A., Homberg, W., &#38; Walther, F. (2022). Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes. <i>Key Engineering Materials</i>, <i>926</i>, 862–874. <a href=\"https://doi.org/10.4028/p-yp2hj3\">https://doi.org/10.4028/p-yp2hj3</a>","chicago":"Kersting, Lukas, Bahman Arian, Julian Rozo Vasquez, Ansgar Trächtler, Werner Homberg, and Frank Walther. “Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes.” <i>Key Engineering Materials</i> 926 (2022): 862–74. <a href=\"https://doi.org/10.4028/p-yp2hj3\">https://doi.org/10.4028/p-yp2hj3</a>.","short":"L. Kersting, B. Arian, J.R. Vasquez, A. Trächtler, W. Homberg, F. Walther, Key Engineering Materials 926 (2022) 862–874.","mla":"Kersting, Lukas, et al. “Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes.” <i>Key Engineering Materials</i>, vol. 926, Trans Tech Publications, Ltd., 2022, pp. 862–74, doi:<a href=\"https://doi.org/10.4028/p-yp2hj3\">10.4028/p-yp2hj3</a>.","bibtex":"@article{Kersting_Arian_Vasquez_Trächtler_Homberg_Walther_2022, title={Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes}, volume={926}, DOI={<a href=\"https://doi.org/10.4028/p-yp2hj3\">10.4028/p-yp2hj3</a>}, journal={Key Engineering Materials}, publisher={Trans Tech Publications, Ltd.}, author={Kersting, Lukas and Arian, Bahman and Vasquez, Julian Rozo and Trächtler, Ansgar and Homberg, Werner and Walther, Frank}, year={2022}, pages={862–874} }","ama":"Kersting L, Arian B, Vasquez JR, Trächtler A, Homberg W, Walther F. Innovative Online Measurement and Modelling Approach for Property-Controlled Flow Forming Processes. <i>Key Engineering Materials</i>. 2022;926:862-874. doi:<a href=\"https://doi.org/10.4028/p-yp2hj3\">10.4028/p-yp2hj3</a>"},"quality_controlled":"1"},{"citation":{"mla":"Stallmeister, Tim, and Thomas Tröster. “In-Mold-Assembly of Hybrid Bending Structures by Compression Molding.” <i>Key Engineering Materials</i>, vol. 926, Trans Tech Publications, Ltd., 2022, pp. 1457–67, doi:<a href=\"https://doi.org/10.4028/p-5fxp53\">10.4028/p-5fxp53</a>.","ama":"Stallmeister T, Tröster T. In-Mold-Assembly of Hybrid Bending Structures by Compression Molding. <i>Key Engineering Materials</i>. 2022;926:1457-1467. doi:<a href=\"https://doi.org/10.4028/p-5fxp53\">10.4028/p-5fxp53</a>","bibtex":"@article{Stallmeister_Tröster_2022, title={In-Mold-Assembly of Hybrid Bending Structures by Compression Molding}, volume={926}, DOI={<a href=\"https://doi.org/10.4028/p-5fxp53\">10.4028/p-5fxp53</a>}, journal={Key Engineering Materials}, publisher={Trans Tech Publications, Ltd.}, author={Stallmeister, Tim and Tröster, Thomas}, year={2022}, pages={1457–1467} }","apa":"Stallmeister, T., &#38; Tröster, T. (2022). In-Mold-Assembly of Hybrid Bending Structures by Compression Molding. <i>Key Engineering Materials</i>, <i>926</i>, 1457–1467. <a href=\"https://doi.org/10.4028/p-5fxp53\">https://doi.org/10.4028/p-5fxp53</a>","ieee":"T. Stallmeister and T. Tröster, “In-Mold-Assembly of Hybrid Bending Structures by Compression Molding,” <i>Key Engineering Materials</i>, vol. 926, pp. 1457–1467, 2022, doi: <a href=\"https://doi.org/10.4028/p-5fxp53\">10.4028/p-5fxp53</a>.","chicago":"Stallmeister, Tim, and Thomas Tröster. “In-Mold-Assembly of Hybrid Bending Structures by Compression Molding.” <i>Key Engineering Materials</i> 926 (2022): 1457–67. <a href=\"https://doi.org/10.4028/p-5fxp53\">https://doi.org/10.4028/p-5fxp53</a>.","short":"T. Stallmeister, T. Tröster, Key Engineering Materials 926 (2022) 1457–1467."},"quality_controlled":"1","status":"public","page":"1457-1467","publisher":"Trans Tech Publications, Ltd.","_id":"32869","user_id":"14931","volume":926,"publication":"Key Engineering Materials","abstract":[{"lang":"eng","text":"<jats:p>The further development of in-mold-assembly (IMA) technologies for structural hybrid components is of great importance for increasing the economic efficiency and thus the application potential. This paper presents an innovative IMA process concept for the manufacturing of bending loaded hybrid components consisting of two outer metal belts and an inner core structure made of glass mat reinforced thermoplastic (GMT). In this process, the core structure, which is provided with stiffening ribs and functional elements, is formed and joined to two metal belts in one single step. For experimental validation of the concept, the development of a prototypic molding tool and the manufacturing of hybrid beams including process parameters are described. Three-point bending tests and optical measurement technologies are used to characterize the failure behavior and mechanical properties of the produced hybrid beams. It was found that the innovative IMA process enables the manufacturing of hybrid components with high energy absorption and low weight in one step. The mass-specific energy absorption is increased by 693 % compared to pure GMT beams.</jats:p>"}],"date_created":"2022-08-17T07:28:31Z","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"type":"journal_article","department":[{"_id":"9"},{"_id":"149"},{"_id":"321"}],"year":"2022","title":"In-Mold-Assembly of Hybrid Bending Structures by Compression Molding","publication_identifier":{"issn":["1662-9795"]},"author":[{"full_name":"Stallmeister, Tim","first_name":"Tim","last_name":"Stallmeister","id":"45538"},{"id":"553","full_name":"Tröster, Thomas","first_name":"Thomas","last_name":"Tröster"}],"date_updated":"2023-05-03T07:44:40Z","publication_status":"published","intvolume":"       926","language":[{"iso":"eng"}],"doi":"10.4028/p-5fxp53"},{"abstract":[{"text":"Inspired by plant grafting, grafted vortex beams can be formed through grafting two or more helical phase profiles of optical vortex beams. Recently, grafted perfect vortex beams (GPVBs) have attracted much attention due to their unique optical properties and potential applications. However, the current method to generate and manipulate GPVBs requires a complex and bulky optical system, hindering further investigation and limiting its practical applications. Here, a compact metasurface approach for generating and manipulating GPVBs in multiple channels is proposed and demonstrated, which eliminates the need for such a complex optical setup. A single metasurface is utilized to realize various superpositions of GPVBs with different combinations of topological charges in four channels, leading to asymmetric singularity distributions. The positions of singularities in the superimposed beam can be further modulated by introducing an initial phase difference in the metasurface design. The work demonstrates a compact metasurface platform that performs a sophisticated optical task that is very challenging with conventional optics, opening opportunities for the investigation and applications of GPVBs in a wide range of emerging application areas, such as singular optics and quantum science.","lang":"eng"}],"issue":"30","publication":"Advanced Materials","department":[{"_id":"15"},{"_id":"230"},{"_id":"289"},{"_id":"623"}],"keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"type":"journal_article","date_created":"2022-06-20T11:05:50Z","intvolume":"        34","article_type":"original","date_updated":"2023-05-12T11:20:44Z","publication_status":"published","publication_identifier":{"issn":["0935-9648","1521-4095"]},"author":[{"first_name":"Hammad","last_name":"Ahmed","full_name":"Ahmed, Hammad"},{"last_name":"Intaravanne","first_name":"Yuttana","full_name":"Intaravanne, Yuttana"},{"full_name":"Ming, Yang","last_name":"Ming","first_name":"Yang"},{"full_name":"Ansari, Muhammad Afnan","last_name":"Ansari","first_name":"Muhammad Afnan"},{"full_name":"Buller, Gerald S.","last_name":"Buller","first_name":"Gerald S."},{"id":"30525","last_name":"Zentgraf","first_name":"Thomas","orcid":"0000-0002-8662-1101","full_name":"Zentgraf, Thomas"},{"full_name":"Chen, Xianzhong","last_name":"Chen","first_name":"Xianzhong"}],"year":"2022","title":"Multichannel Superposition of Grafted Perfect Vortex Beams","doi":"10.1002/adma.202203044","language":[{"iso":"eng"}],"article_number":"2203044","quality_controlled":"1","citation":{"ama":"Ahmed H, Intaravanne Y, Ming Y, et al. Multichannel Superposition of Grafted Perfect Vortex Beams. <i>Advanced Materials</i>. 2022;34(30). doi:<a href=\"https://doi.org/10.1002/adma.202203044\">10.1002/adma.202203044</a>","bibtex":"@article{Ahmed_Intaravanne_Ming_Ansari_Buller_Zentgraf_Chen_2022, title={Multichannel Superposition of Grafted Perfect Vortex Beams}, volume={34}, DOI={<a href=\"https://doi.org/10.1002/adma.202203044\">10.1002/adma.202203044</a>}, number={302203044}, journal={Advanced Materials}, publisher={Wiley}, author={Ahmed, Hammad and Intaravanne, Yuttana and Ming, Yang and Ansari, Muhammad Afnan and Buller, Gerald S. and Zentgraf, Thomas and Chen, Xianzhong}, year={2022} }","mla":"Ahmed, Hammad, et al. “Multichannel Superposition of Grafted Perfect Vortex Beams.” <i>Advanced Materials</i>, vol. 34, no. 30, 2203044, Wiley, 2022, doi:<a href=\"https://doi.org/10.1002/adma.202203044\">10.1002/adma.202203044</a>.","short":"H. Ahmed, Y. Intaravanne, Y. Ming, M.A. Ansari, G.S. Buller, T. Zentgraf, X. Chen, Advanced Materials 34 (2022).","chicago":"Ahmed, Hammad, Yuttana Intaravanne, Yang Ming, Muhammad Afnan Ansari, Gerald S. Buller, Thomas Zentgraf, and Xianzhong Chen. “Multichannel Superposition of Grafted Perfect Vortex Beams.” <i>Advanced Materials</i> 34, no. 30 (2022). <a href=\"https://doi.org/10.1002/adma.202203044\">https://doi.org/10.1002/adma.202203044</a>.","apa":"Ahmed, H., Intaravanne, Y., Ming, Y., Ansari, M. A., Buller, G. S., Zentgraf, T., &#38; Chen, X. (2022). Multichannel Superposition of Grafted Perfect Vortex Beams. <i>Advanced Materials</i>, <i>34</i>(30), Article 2203044. <a href=\"https://doi.org/10.1002/adma.202203044\">https://doi.org/10.1002/adma.202203044</a>","ieee":"H. Ahmed <i>et al.</i>, “Multichannel Superposition of Grafted Perfect Vortex Beams,” <i>Advanced Materials</i>, vol. 34, no. 30, Art. no. 2203044, 2022, doi: <a href=\"https://doi.org/10.1002/adma.202203044\">10.1002/adma.202203044</a>."},"status":"public","volume":34,"user_id":"30525","_id":"32068","publisher":"Wiley"},{"status":"public","title":"About the structure of the discrete and continuous Eringen’s nonlocal elastica","year":"2022","publication_identifier":{"issn":["1081-2865","1741-3028"]},"author":[{"full_name":"Cresson, Jacky","first_name":"Jacky","last_name":"Cresson"},{"full_name":"Hariz-Belgacem, Khaled","first_name":"Khaled","last_name":"Hariz-Belgacem"}],"publication_status":"published","date_updated":"2023-07-27T16:07:04Z","article_type":"original","article_number":"108128652211080","language":[{"iso":"eng"}],"_id":"39412","publisher":"SAGE Publications","user_id":"98857","doi":"10.1177/10812865221108094","publication":"Mathematics and Mechanics of Solids","citation":{"ama":"Cresson J, Hariz-Belgacem K. About the structure of the discrete and continuous Eringen’s nonlocal elastica. <i>Mathematics and Mechanics of Solids</i>. Published online 2022. doi:<a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>","bibtex":"@article{Cresson_Hariz-Belgacem_2022, title={About the structure of the discrete and continuous Eringen’s nonlocal elastica}, DOI={<a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>}, number={108128652211080}, journal={Mathematics and Mechanics of Solids}, publisher={SAGE Publications}, author={Cresson, Jacky and Hariz-Belgacem, Khaled}, year={2022} }","mla":"Cresson, Jacky, and Khaled Hariz-Belgacem. “About the Structure of the Discrete and Continuous Eringen’s Nonlocal Elastica.” <i>Mathematics and Mechanics of Solids</i>, 108128652211080, SAGE Publications, 2022, doi:<a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>.","short":"J. Cresson, K. Hariz-Belgacem, Mathematics and Mechanics of Solids (2022).","chicago":"Cresson, Jacky, and Khaled Hariz-Belgacem. “About the Structure of the Discrete and Continuous Eringen’s Nonlocal Elastica.” <i>Mathematics and Mechanics of Solids</i>, 2022. <a href=\"https://doi.org/10.1177/10812865221108094\">https://doi.org/10.1177/10812865221108094</a>.","apa":"Cresson, J., &#38; Hariz-Belgacem, K. (2022). About the structure of the discrete and continuous Eringen’s nonlocal elastica. <i>Mathematics and Mechanics of Solids</i>, Article 108128652211080. <a href=\"https://doi.org/10.1177/10812865221108094\">https://doi.org/10.1177/10812865221108094</a>","ieee":"J. Cresson and K. Hariz-Belgacem, “About the structure of the discrete and continuous Eringen’s nonlocal elastica,” <i>Mathematics and Mechanics of Solids</i>, Art. no. 108128652211080, 2022, doi: <a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>."},"abstract":[{"text":"<jats:p> The Eringen’s nonlocal elastica equation does not possess a Lagrangian formulation. In this article, we find a variational integrating factor which enables us to provide a Lagrangian and Hamiltonian structure associated to this equation. Explicit expressions of the solutions in terms of elliptic integrals of the first kind are then deduced. We then derive discrete version of the Eringen’s nonlocal elastica preserving the Lagrangian and Hamiltonian structure and compare it with Challamel’s and co-worker definition of a discrete Eringen’s nonlocal elastica. </jats:p>","lang":"eng"}],"date_created":"2023-01-24T10:28:32Z","keyword":["Mechanics of Materials","General Materials Science","General Mathematics"],"type":"journal_article"},{"status":"public","year":"2022","title":"About the structure of the discrete and continuous Eringen’s nonlocal elastica","author":[{"full_name":"Cresson, Jacky","first_name":"Jacky","last_name":"Cresson"},{"id":"98857","full_name":"Hariz Belgacem, Khaled","first_name":"Khaled","last_name":"Hariz Belgacem"}],"publication_identifier":{"issn":["1081-2865","1741-3028"]},"date_updated":"2023-08-01T11:52:17Z","publication_status":"published","article_number":"108128652211080","_id":"39400","language":[{"iso":"eng"}],"publisher":"SAGE Publications","doi":"10.1177/10812865221108094","user_id":"98857","publication":"Mathematics and Mechanics of Solids","citation":{"apa":"Cresson, J., &#38; Hariz Belgacem, K. (2022). About the structure of the discrete and continuous Eringen’s nonlocal elastica. <i>Mathematics and Mechanics of Solids</i>, Article 108128652211080. <a href=\"https://doi.org/10.1177/10812865221108094\">https://doi.org/10.1177/10812865221108094</a>","ieee":"J. Cresson and K. Hariz Belgacem, “About the structure of the discrete and continuous Eringen’s nonlocal elastica,” <i>Mathematics and Mechanics of Solids</i>, Art. no. 108128652211080, 2022, doi: <a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>.","short":"J. Cresson, K. Hariz Belgacem, Mathematics and Mechanics of Solids (2022).","chicago":"Cresson, Jacky, and Khaled Hariz Belgacem. “About the Structure of the Discrete and Continuous Eringen’s Nonlocal Elastica.” <i>Mathematics and Mechanics of Solids</i>, 2022. <a href=\"https://doi.org/10.1177/10812865221108094\">https://doi.org/10.1177/10812865221108094</a>.","mla":"Cresson, Jacky, and Khaled Hariz Belgacem. “About the Structure of the Discrete and Continuous Eringen’s Nonlocal Elastica.” <i>Mathematics and Mechanics of Solids</i>, 108128652211080, SAGE Publications, 2022, doi:<a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>.","ama":"Cresson J, Hariz Belgacem K. About the structure of the discrete and continuous Eringen’s nonlocal elastica. <i>Mathematics and Mechanics of Solids</i>. Published online 2022. doi:<a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>","bibtex":"@article{Cresson_Hariz Belgacem_2022, title={About the structure of the discrete and continuous Eringen’s nonlocal elastica}, DOI={<a href=\"https://doi.org/10.1177/10812865221108094\">10.1177/10812865221108094</a>}, number={108128652211080}, journal={Mathematics and Mechanics of Solids}, publisher={SAGE Publications}, author={Cresson, Jacky and Hariz Belgacem, Khaled}, year={2022} }"},"abstract":[{"lang":"eng","text":"<jats:p> The Eringen’s nonlocal elastica equation does not possess a Lagrangian formulation. In this article, we find a variational integrating factor which enables us to provide a Lagrangian and Hamiltonian structure associated to this equation. Explicit expressions of the solutions in terms of elliptic integrals of the first kind are then deduced. We then derive discrete version of the Eringen’s nonlocal elastica preserving the Lagrangian and Hamiltonian structure and compare it with Challamel’s and co-worker definition of a discrete Eringen’s nonlocal elastica. </jats:p>"}],"date_created":"2023-01-24T10:18:34Z","keyword":["Mechanics of Materials","General Materials Science","General Mathematics"],"type":"journal_article"},{"citation":{"mla":"Kothe, Linda, et al. “Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors.” <i>Advanced Materials Interfaces</i>, vol. 9, 2102357, Wiley, 2022, doi:<a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>.","apa":"Kothe, L., Albert, M., Meier, C., Wagner, T., &#38; Tiemann, M. (2022). Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors. <i>Advanced Materials Interfaces</i>, <i>9</i>, Article 2102357. <a href=\"https://doi.org/10.1002/admi.202102357\">https://doi.org/10.1002/admi.202102357</a>","ieee":"L. Kothe, M. Albert, C. Meier, T. Wagner, and M. Tiemann, “Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors,” <i>Advanced Materials Interfaces</i>, vol. 9, Art. no. 2102357, 2022, doi: <a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>.","chicago":"Kothe, Linda, Maximilian Albert, Cedrik Meier, Thorsten Wagner, and Michael Tiemann. “Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors.” <i>Advanced Materials Interfaces</i> 9 (2022). <a href=\"https://doi.org/10.1002/admi.202102357\">https://doi.org/10.1002/admi.202102357</a>.","ama":"Kothe L, Albert M, Meier C, Wagner T, Tiemann M. Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors. <i>Advanced Materials Interfaces</i>. 2022;9. doi:<a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>","short":"L. Kothe, M. Albert, C. Meier, T. Wagner, M. Tiemann, Advanced Materials Interfaces 9 (2022).","bibtex":"@article{Kothe_Albert_Meier_Wagner_Tiemann_2022, title={Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors}, volume={9}, DOI={<a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>}, number={2102357}, journal={Advanced Materials Interfaces}, publisher={Wiley}, author={Kothe, Linda and Albert, Maximilian and Meier, Cedrik and Wagner, Thorsten and Tiemann, Michael}, year={2022} }"},"quality_controlled":"1","oa":"1","status":"public","publisher":"Wiley","_id":"29790","user_id":"23547","volume":9,"publication":"Advanced Materials Interfaces","abstract":[{"text":"The free exciton transition (near-band-edge emission, NBE) of ZnO at ≈388 nm can be strongly enhanced and even stimulated by an underlying photonic structure. 1D Photonic crystals, so-called distributed Bragg reflectors, are utilized to suppress the deep-level emission of ZnO (DLE, ≈500–530 nm). The reflector stacks are fabricated in a layer-by-layer procedure by wet-chemical synthesis. They consist of low-ε porous SiO2 layers and high-ε TiO2 layers. Varying the thickness of the SiO2 layers allows tuning the optical bandgap in a wide range between ≈420 and 800 nm. A ZnO layer is deposited on top of the reflector stacks by sol–gel synthesis. The spontaneous photoluminescence (PL) emission of the ZnO film is modulated by the photonic structure. When the optical bandgap of the reflector is in resonance with the deep-level emission of ZnO (DLE, ≈500–530 nm), then this defect-related emission mode is suppressed. Strong NBE emission is observed even when the ZnO layer does not show any NBE emission (due to low crystallinity) in the absence of the photonic structure. With this cost-efficient synthesis method, emitters for, e.g., luminescent gas sensors can be fabricated.","lang":"eng"}],"date_created":"2022-02-08T15:24:58Z","type":"journal_article","keyword":["Mechanical Engineering","Mechanics of Materials"],"department":[{"_id":"15"},{"_id":"35"},{"_id":"2"},{"_id":"307"},{"_id":"230"}],"year":"2022","title":"Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors","author":[{"first_name":"Linda","last_name":"Kothe","full_name":"Kothe, Linda"},{"last_name":"Albert","first_name":"Maximilian","full_name":"Albert, Maximilian"},{"id":"20798","full_name":"Meier, Cedrik","first_name":"Cedrik","orcid":"https://orcid.org/0000-0002-3787-3572","last_name":"Meier"},{"full_name":"Wagner, Thorsten","last_name":"Wagner","first_name":"Thorsten"},{"id":"23547","full_name":"Tiemann, Michael","last_name":"Tiemann","first_name":"Michael","orcid":"0000-0003-1711-2722"}],"publication_identifier":{"issn":["2196-7350","2196-7350"]},"publication_status":"published","date_updated":"2025-05-27T07:42:58Z","article_type":"original","intvolume":"         9","article_number":"2102357","main_file_link":[{"url":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/admi.202102357","open_access":"1"}],"language":[{"iso":"eng"}],"doi":"10.1002/admi.202102357"},{"publisher":"Trans Tech Publications, Ltd.","_id":"51197","page":"1489-1497","volume":926,"user_id":"83408","status":"public","citation":{"chicago":"Köhler, Daniel, Richard Stephan, Robert Kupfer, Juliane Troschitz, Alexander Brosius, and Maik Gude. “Investigations on Combined &#38;lt;I&#38;gt;In Situ&#38;lt;/I&#38;gt; CT and Acoustic Analysis during Clinching.” <i>Key Engineering Materials</i> 926 (2022): 1489–97. <a href=\"https://doi.org/10.4028/p-32330d\">https://doi.org/10.4028/p-32330d</a>.","short":"D. Köhler, R. Stephan, R. Kupfer, J. Troschitz, A. Brosius, M. Gude, Key Engineering Materials 926 (2022) 1489–1497.","ieee":"D. Köhler, R. Stephan, R. Kupfer, J. Troschitz, A. Brosius, and M. Gude, “Investigations on Combined &#38;lt;i&#38;gt;In Situ&#38;lt;/i&#38;gt; CT and Acoustic Analysis during Clinching,” <i>Key Engineering Materials</i>, vol. 926, pp. 1489–1497, 2022, doi: <a href=\"https://doi.org/10.4028/p-32330d\">10.4028/p-32330d</a>.","apa":"Köhler, D., Stephan, R., Kupfer, R., Troschitz, J., Brosius, A., &#38; Gude, M. (2022). Investigations on Combined &#38;lt;i&#38;gt;In Situ&#38;lt;/i&#38;gt; CT and Acoustic Analysis during Clinching. <i>Key Engineering Materials</i>, <i>926</i>, 1489–1497. <a href=\"https://doi.org/10.4028/p-32330d\">https://doi.org/10.4028/p-32330d</a>","bibtex":"@article{Köhler_Stephan_Kupfer_Troschitz_Brosius_Gude_2022, title={Investigations on Combined &#38;lt;i&#38;gt;In Situ&#38;lt;/i&#38;gt; CT and Acoustic Analysis during Clinching}, volume={926}, DOI={<a href=\"https://doi.org/10.4028/p-32330d\">10.4028/p-32330d</a>}, journal={Key Engineering Materials}, publisher={Trans Tech Publications, Ltd.}, author={Köhler, Daniel and Stephan, Richard and Kupfer, Robert and Troschitz, Juliane and Brosius, Alexander and Gude, Maik}, year={2022}, pages={1489–1497} }","ama":"Köhler D, Stephan R, Kupfer R, Troschitz J, Brosius A, Gude M. Investigations on Combined &#38;lt;i&#38;gt;In Situ&#38;lt;/i&#38;gt; CT and Acoustic Analysis during Clinching. <i>Key Engineering Materials</i>. 2022;926:1489-1497. doi:<a href=\"https://doi.org/10.4028/p-32330d\">10.4028/p-32330d</a>","mla":"Köhler, Daniel, et al. “Investigations on Combined &#38;lt;I&#38;gt;In Situ&#38;lt;/I&#38;gt; CT and Acoustic Analysis during Clinching.” <i>Key Engineering Materials</i>, vol. 926, Trans Tech Publications, Ltd., 2022, pp. 1489–97, doi:<a href=\"https://doi.org/10.4028/p-32330d\">10.4028/p-32330d</a>."},"project":[{"_id":"130","grant_number":"418701707","name":"TRR 285: TRR 285"},{"_id":"133","name":"TRR 285 - C: TRR 285 - Project Area C"},{"_id":"148","name":"TRR 285 – C04: TRR 285 - Subproject C04"}],"language":[{"iso":"eng"}],"doi":"10.4028/p-32330d","publication_identifier":{"issn":["1662-9795"]},"author":[{"full_name":"Köhler, Daniel","first_name":"Daniel","last_name":"Köhler"},{"first_name":"Richard","last_name":"Stephan","full_name":"Stephan, Richard"},{"last_name":"Kupfer","first_name":"Robert","full_name":"Kupfer, Robert"},{"first_name":"Juliane","last_name":"Troschitz","full_name":"Troschitz, Juliane"},{"first_name":"Alexander","last_name":"Brosius","full_name":"Brosius, Alexander"},{"full_name":"Gude, Maik","first_name":"Maik","last_name":"Gude"}],"title":"Investigations on Combined &lt;i&gt;In Situ&lt;/i&gt; CT and Acoustic Analysis during Clinching","year":"2022","intvolume":"       926","publication_status":"published","date_updated":"2025-06-02T20:21:13Z","date_created":"2024-02-06T15:04:45Z","department":[{"_id":"157"},{"_id":"43"}],"type":"journal_article","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"publication":"Key Engineering Materials","abstract":[{"text":"<jats:p>Clinching is a cost efficient method for joining components in series production. To assure the clinch point’s quality, the force displacement curve during clinching or the bottom thickness are monitored. The most significant geometrical characteristics of the clinch point, neck thickness and undercut, are usually tested destructively by microsectioning. However, micrograph preparation goes ahead with a resetting of elastic deformations and crack-closing after unloading. To generate a comprehensive knowledge of the clinch point’s inner geometry under load, in-situ computed tomography (CT) and acoustic testing (TDA) can be combined. While the TDA is highly sensitive to the inner state of the clinch point, it could detect critical events like crack development during loading. If such events are indicated, the loading process is stopped and a stepped in-situ CT of the following crack and deformation development is performed. In this paper, the concept is applied to the process of clinching itself, providing a detailed three-dimensional insight in the development of the joining zone. A test set-up is used which allows a stepwise clinching of two aluminium sheets EN AW 6014. Furthermore, this set-up is positioned within a CT system. In order to minimize X-ray absorption, a beryllium cylinder is used within the set-up frame and clinching tools are made from Si3N4. The actuator and sensor necessary for the TDA are integrated in the set-up. In regular process steps, the clinching process is interrupted in order to perform a TDA and a CT scan. In order to enhance the visibility of the interface, a thin tin layer is positioned between the sheets prior clinching. It is shown, that the test-set up allows a monitoring of the dynamic behaviour of the specimen during clinching while the CT scans visualize the inner geometry and material flow non-destructively.</jats:p>","lang":"eng"}]},{"language":[{"iso":"eng"}],"_id":"51193","publisher":"Elsevier BV","article_number":"100108","volume":5,"user_id":"83408","doi":"10.1016/j.jajp.2022.100108","publication_identifier":{"issn":["2666-3309"]},"author":[{"full_name":"Kupfer, Robert","last_name":"Kupfer","first_name":"Robert"},{"full_name":"Köhler, Daniel","first_name":"Daniel","last_name":"Köhler"},{"last_name":"Römisch","first_name":"David","full_name":"Römisch, David"},{"last_name":"Wituschek","first_name":"Simon","full_name":"Wituschek, Simon"},{"first_name":"Lars","last_name":"Ewenz","full_name":"Ewenz, Lars"},{"first_name":"Jan","last_name":"Kalich","full_name":"Kalich, Jan"},{"last_name":"Weiß","first_name":"Deborah","full_name":"Weiß, Deborah"},{"last_name":"Sadeghian","first_name":"Behdad","full_name":"Sadeghian, Behdad"},{"full_name":"Busch, Matthias","first_name":"Matthias","last_name":"Busch"},{"last_name":"Krüger","first_name":"Jan","full_name":"Krüger, Jan"},{"full_name":"Neuser, Moritz","first_name":"Moritz","last_name":"Neuser"},{"full_name":"Grydin, Olexandr","last_name":"Grydin","first_name":"Olexandr"},{"first_name":"Max","last_name":"Böhnke","full_name":"Böhnke, Max"},{"last_name":"Bielak","first_name":"Christian-Roman","full_name":"Bielak, Christian-Roman"},{"first_name":"Juliane","last_name":"Troschitz","full_name":"Troschitz, Juliane"}],"title":"Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties","year":"2022","status":"public","intvolume":"         5","publication_status":"published","date_updated":"2025-06-02T20:20:08Z","date_created":"2024-02-06T15:01:32Z","type":"journal_article","keyword":["Mechanical Engineering","Mechanics of Materials","Engineering (miscellaneous)","Chemical Engineering (miscellaneous)"],"citation":{"ama":"Kupfer R, Köhler D, Römisch D, et al. Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties. <i>Journal of Advanced Joining Processes</i>. 2022;5. doi:<a href=\"https://doi.org/10.1016/j.jajp.2022.100108\">10.1016/j.jajp.2022.100108</a>","bibtex":"@article{Kupfer_Köhler_Römisch_Wituschek_Ewenz_Kalich_Weiß_Sadeghian_Busch_Krüger_et al._2022, title={Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties}, volume={5}, DOI={<a href=\"https://doi.org/10.1016/j.jajp.2022.100108\">10.1016/j.jajp.2022.100108</a>}, number={100108}, journal={Journal of Advanced Joining Processes}, publisher={Elsevier BV}, author={Kupfer, Robert and Köhler, Daniel and Römisch, David and Wituschek, Simon and Ewenz, Lars and Kalich, Jan and Weiß, Deborah and Sadeghian, Behdad and Busch, Matthias and Krüger, Jan and et al.}, year={2022} }","mla":"Kupfer, Robert, et al. “Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties.” <i>Journal of Advanced Joining Processes</i>, vol. 5, 100108, Elsevier BV, 2022, doi:<a href=\"https://doi.org/10.1016/j.jajp.2022.100108\">10.1016/j.jajp.2022.100108</a>.","short":"R. Kupfer, D. Köhler, D. Römisch, S. Wituschek, L. Ewenz, J. Kalich, D. Weiß, B. Sadeghian, M. Busch, J. Krüger, M. Neuser, O. Grydin, M. Böhnke, C.-R. Bielak, J. Troschitz, Journal of Advanced Joining Processes 5 (2022).","chicago":"Kupfer, Robert, Daniel Köhler, David Römisch, Simon Wituschek, Lars Ewenz, Jan Kalich, Deborah Weiß, et al. “Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties.” <i>Journal of Advanced Joining Processes</i> 5 (2022). <a href=\"https://doi.org/10.1016/j.jajp.2022.100108\">https://doi.org/10.1016/j.jajp.2022.100108</a>.","apa":"Kupfer, R., Köhler, D., Römisch, D., Wituschek, S., Ewenz, L., Kalich, J., Weiß, D., Sadeghian, B., Busch, M., Krüger, J., Neuser, M., Grydin, O., Böhnke, M., Bielak, C.-R., &#38; Troschitz, J. (2022). Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties. <i>Journal of Advanced Joining Processes</i>, <i>5</i>, Article 100108. <a href=\"https://doi.org/10.1016/j.jajp.2022.100108\">https://doi.org/10.1016/j.jajp.2022.100108</a>","ieee":"R. Kupfer <i>et al.</i>, “Clinching of Aluminum Materials – Methods for the Continuous Characterization of Process, Microstructure and Properties,” <i>Journal of Advanced Joining Processes</i>, vol. 5, Art. no. 100108, 2022, doi: <a href=\"https://doi.org/10.1016/j.jajp.2022.100108\">10.1016/j.jajp.2022.100108</a>."},"publication":"Journal of Advanced Joining Processes"},{"volume":5,"doi":"10.1016/j.jajp.2022.100113","user_id":"83408","publisher":"Elsevier BV","_id":"51196","language":[{"iso":"eng"}],"article_number":"100113","intvolume":"         5","date_updated":"2025-06-02T20:20:04Z","publication_status":"published","author":[{"last_name":"Meschut","first_name":"G.","full_name":"Meschut, G."},{"first_name":"M.","last_name":"Merklein","full_name":"Merklein, M."},{"full_name":"Brosius, A.","first_name":"A.","last_name":"Brosius"},{"last_name":"Drummer","first_name":"D.","full_name":"Drummer, D."},{"full_name":"Fratini, L.","last_name":"Fratini","first_name":"L."},{"full_name":"Füssel, U.","last_name":"Füssel","first_name":"U."},{"full_name":"Gude, M.","first_name":"M.","last_name":"Gude"},{"full_name":"Homberg, W.","last_name":"Homberg","first_name":"W."},{"last_name":"Martins","first_name":"P.A.F.","full_name":"Martins, P.A.F."},{"full_name":"Bobbert, M.","last_name":"Bobbert","first_name":"M."},{"last_name":"Lechner","first_name":"M.","full_name":"Lechner, M."},{"last_name":"Kupfer","first_name":"R.","full_name":"Kupfer, R."},{"full_name":"Gröger, B.","last_name":"Gröger","first_name":"B."},{"full_name":"Han, D.","first_name":"D.","last_name":"Han"},{"full_name":"Kalich, J.","first_name":"J.","last_name":"Kalich"},{"full_name":"Kappe, F.","first_name":"F.","last_name":"Kappe"},{"full_name":"Kleffel, T.","last_name":"Kleffel","first_name":"T."},{"first_name":"D.","last_name":"Köhler","full_name":"Köhler, D."},{"full_name":"Kuball, C.-M.","last_name":"Kuball","first_name":"C.-M."},{"last_name":"Popp","first_name":"J.","full_name":"Popp, J."},{"last_name":"Römisch","first_name":"D.","full_name":"Römisch, D."},{"last_name":"Troschitz","first_name":"J.","full_name":"Troschitz, J."},{"full_name":"Wischer, C.","first_name":"C.","last_name":"Wischer"},{"full_name":"Wituschek, S.","last_name":"Wituschek","first_name":"S."},{"first_name":"M.","last_name":"Wolf","full_name":"Wolf, M."}],"publication_identifier":{"issn":["2666-3309"]},"year":"2022","status":"public","title":"Review on mechanical joining by plastic deformation","type":"journal_article","keyword":["Mechanical Engineering","Mechanics of Materials","Engineering (miscellaneous)","Chemical Engineering (miscellaneous)"],"date_created":"2024-02-06T15:03:43Z","citation":{"ama":"Meschut G, Merklein M, Brosius A, et al. Review on mechanical joining by plastic deformation. <i>Journal of Advanced Joining Processes</i>. 2022;5. doi:<a href=\"https://doi.org/10.1016/j.jajp.2022.100113\">10.1016/j.jajp.2022.100113</a>","bibtex":"@article{Meschut_Merklein_Brosius_Drummer_Fratini_Füssel_Gude_Homberg_Martins_Bobbert_et al._2022, title={Review on mechanical joining by plastic deformation}, volume={5}, DOI={<a href=\"https://doi.org/10.1016/j.jajp.2022.100113\">10.1016/j.jajp.2022.100113</a>}, number={100113}, journal={Journal of Advanced Joining Processes}, publisher={Elsevier BV}, author={Meschut, G. and Merklein, M. and Brosius, A. and Drummer, D. and Fratini, L. and Füssel, U. and Gude, M. and Homberg, W. and Martins, P.A.F. and Bobbert, M. and et al.}, year={2022} }","mla":"Meschut, G., et al. “Review on Mechanical Joining by Plastic Deformation.” <i>Journal of Advanced Joining Processes</i>, vol. 5, 100113, Elsevier BV, 2022, doi:<a href=\"https://doi.org/10.1016/j.jajp.2022.100113\">10.1016/j.jajp.2022.100113</a>.","short":"G. Meschut, M. Merklein, A. Brosius, D. Drummer, L. Fratini, U. Füssel, M. Gude, W. Homberg, P.A.F. Martins, M. Bobbert, M. Lechner, R. Kupfer, B. Gröger, D. Han, J. Kalich, F. Kappe, T. Kleffel, D. Köhler, C.-M. Kuball, J. Popp, D. Römisch, J. Troschitz, C. Wischer, S. Wituschek, M. Wolf, Journal of Advanced Joining Processes 5 (2022).","chicago":"Meschut, G., M. Merklein, A. Brosius, D. Drummer, L. Fratini, U. Füssel, M. Gude, et al. “Review on Mechanical Joining by Plastic Deformation.” <i>Journal of Advanced Joining Processes</i> 5 (2022). <a href=\"https://doi.org/10.1016/j.jajp.2022.100113\">https://doi.org/10.1016/j.jajp.2022.100113</a>.","apa":"Meschut, G., Merklein, M., Brosius, A., Drummer, D., Fratini, L., Füssel, U., Gude, M., Homberg, W., Martins, P. A. F., Bobbert, M., Lechner, M., Kupfer, R., Gröger, B., Han, D., Kalich, J., Kappe, F., Kleffel, T., Köhler, D., Kuball, C.-M., … Wolf, M. (2022). Review on mechanical joining by plastic deformation. <i>Journal of Advanced Joining Processes</i>, <i>5</i>, Article 100113. <a href=\"https://doi.org/10.1016/j.jajp.2022.100113\">https://doi.org/10.1016/j.jajp.2022.100113</a>","ieee":"G. Meschut <i>et al.</i>, “Review on mechanical joining by plastic deformation,” <i>Journal of Advanced Joining Processes</i>, vol. 5, Art. no. 100113, 2022, doi: <a href=\"https://doi.org/10.1016/j.jajp.2022.100113\">10.1016/j.jajp.2022.100113</a>."},"publication":"Journal of Advanced Joining Processes"},{"quality_controlled":"1","citation":{"bibtex":"@article{Odziomek_Giusto_Kossmann_Tarakina_Heske_Rivadeneira_Keil_Schmidt_Mazzanti_Savateev_et al._2022, title={“Red Carbon”: A Rediscovered Covalent Crystalline Semiconductor}, volume={34}, DOI={<a href=\"https://doi.org/10.1002/adma.202206405\">10.1002/adma.202206405</a>}, number={402206405}, journal={Advanced Materials}, publisher={Wiley}, author={Odziomek, Mateusz and Giusto, Paolo and Kossmann, Janina and Tarakina, Nadezda V. and Heske, Julian Joachim and Rivadeneira, Salvador M. and Keil, Waldemar and Schmidt, Claudia and Mazzanti, Stefano and Savateev, Oleksandr and et al.}, year={2022} }","ama":"Odziomek M, Giusto P, Kossmann J, et al. “Red Carbon”: A Rediscovered Covalent Crystalline Semiconductor. <i>Advanced Materials</i>. 2022;34(40). doi:<a href=\"https://doi.org/10.1002/adma.202206405\">10.1002/adma.202206405</a>","mla":"Odziomek, Mateusz, et al. “‘Red Carbon’: A Rediscovered Covalent Crystalline Semiconductor.” <i>Advanced Materials</i>, vol. 34, no. 40, 2206405, Wiley, 2022, doi:<a href=\"https://doi.org/10.1002/adma.202206405\">10.1002/adma.202206405</a>.","short":"M. Odziomek, P. Giusto, J. Kossmann, N.V. Tarakina, J.J. Heske, S.M. Rivadeneira, W. Keil, C. Schmidt, S. Mazzanti, O. Savateev, L. Perdigón‐Toro, D. Neher, T. Kühne, M. Antonietti, N. López‐Salas, Advanced Materials 34 (2022).","chicago":"Odziomek, Mateusz, Paolo Giusto, Janina Kossmann, Nadezda V. Tarakina, Julian Joachim Heske, Salvador M. Rivadeneira, Waldemar Keil, et al. “‘Red Carbon’: A Rediscovered Covalent Crystalline Semiconductor.” <i>Advanced Materials</i> 34, no. 40 (2022). <a href=\"https://doi.org/10.1002/adma.202206405\">https://doi.org/10.1002/adma.202206405</a>.","ieee":"M. Odziomek <i>et al.</i>, “‘Red Carbon’: A Rediscovered Covalent Crystalline Semiconductor,” <i>Advanced Materials</i>, vol. 34, no. 40, Art. no. 2206405, 2022, doi: <a href=\"https://doi.org/10.1002/adma.202206405\">10.1002/adma.202206405</a>.","apa":"Odziomek, M., Giusto, P., Kossmann, J., Tarakina, N. V., Heske, J. J., Rivadeneira, S. M., Keil, W., Schmidt, C., Mazzanti, S., Savateev, O., Perdigón‐Toro, L., Neher, D., Kühne, T., Antonietti, M., &#38; López‐Salas, N. (2022). “Red Carbon”: A Rediscovered Covalent Crystalline Semiconductor. <i>Advanced Materials</i>, <i>34</i>(40), Article 2206405. <a href=\"https://doi.org/10.1002/adma.202206405\">https://doi.org/10.1002/adma.202206405</a>"},"status":"public","volume":34,"user_id":"466","_id":"33687","publisher":"Wiley","publication":"Advanced Materials","issue":"40","department":[{"_id":"613"},{"_id":"315"}],"keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"type":"journal_article","date_created":"2022-10-11T08:19:29Z","intvolume":"        34","date_updated":"2025-10-15T15:08:17Z","publication_status":"published","publication_identifier":{"issn":["0935-9648","1521-4095"]},"author":[{"first_name":"Mateusz","last_name":"Odziomek","full_name":"Odziomek, Mateusz"},{"full_name":"Giusto, Paolo","first_name":"Paolo","last_name":"Giusto"},{"first_name":"Janina","last_name":"Kossmann","full_name":"Kossmann, Janina"},{"full_name":"Tarakina, Nadezda V.","first_name":"Nadezda V.","last_name":"Tarakina"},{"id":"53238","first_name":"Julian Joachim","last_name":"Heske","full_name":"Heske, Julian Joachim"},{"full_name":"Rivadeneira, Salvador M.","last_name":"Rivadeneira","first_name":"Salvador M."},{"full_name":"Keil, Waldemar","last_name":"Keil","first_name":"Waldemar"},{"orcid":"0000-0003-3179-9997","first_name":"Claudia","last_name":"Schmidt","full_name":"Schmidt, Claudia","id":"466"},{"first_name":"Stefano","last_name":"Mazzanti","full_name":"Mazzanti, Stefano"},{"last_name":"Savateev","first_name":"Oleksandr","full_name":"Savateev, Oleksandr"},{"full_name":"Perdigón‐Toro, Lorena","last_name":"Perdigón‐Toro","first_name":"Lorena"},{"last_name":"Neher","first_name":"Dieter","full_name":"Neher, Dieter"},{"full_name":"Kühne, Thomas","last_name":"Kühne","first_name":"Thomas","id":"49079"},{"full_name":"Antonietti, Markus","last_name":"Antonietti","first_name":"Markus"},{"first_name":"Nieves","last_name":"López‐Salas","full_name":"López‐Salas, Nieves"}],"year":"2022","title":"“Red Carbon”: A Rediscovered Covalent Crystalline Semiconductor","doi":"10.1002/adma.202206405","language":[{"iso":"eng"}],"article_number":"2206405"},{"user_id":"60398","volume":101,"page":"197-207","_id":"52612","publisher":"American Welding Society","status":"public","quality_controlled":"1","popular_science":"1","citation":{"apa":"Böhne, C., Meschut, G., BIEGLER, M., &#38; RETHMEIER, M. (2022). The Influence of Electrode Indentation Rate on LME Formation during RSW. <i>Welding Journal</i>, <i>101</i>(7), 197–207. <a href=\"https://doi.org/10.29391/2022.101.015\">https://doi.org/10.29391/2022.101.015</a>","ieee":"C. Böhne, G. Meschut, M. BIEGLER, and M. RETHMEIER, “The Influence of Electrode Indentation Rate on LME Formation during RSW,” <i>Welding Journal</i>, vol. 101, no. 7, pp. 197–207, 2022, doi: <a href=\"https://doi.org/10.29391/2022.101.015\">10.29391/2022.101.015</a>.","chicago":"Böhne, Christoph, Gerson Meschut, MAX BIEGLER, and MICHAEL RETHMEIER. “The Influence of Electrode Indentation Rate on LME Formation during RSW.” <i>Welding Journal</i> 101, no. 7 (2022): 197–207. <a href=\"https://doi.org/10.29391/2022.101.015\">https://doi.org/10.29391/2022.101.015</a>.","short":"C. Böhne, G. Meschut, M. BIEGLER, M. RETHMEIER, Welding Journal 101 (2022) 197–207.","mla":"Böhne, Christoph, et al. “The Influence of Electrode Indentation Rate on LME Formation during RSW.” <i>Welding Journal</i>, vol. 101, no. 7, American Welding Society, 2022, pp. 197–207, doi:<a href=\"https://doi.org/10.29391/2022.101.015\">10.29391/2022.101.015</a>.","ama":"Böhne C, Meschut G, BIEGLER M, RETHMEIER M. The Influence of Electrode Indentation Rate on LME Formation during RSW. <i>Welding Journal</i>. 2022;101(7):197-207. doi:<a href=\"https://doi.org/10.29391/2022.101.015\">10.29391/2022.101.015</a>","bibtex":"@article{Böhne_Meschut_BIEGLER_RETHMEIER_2022, title={The Influence of Electrode Indentation Rate on LME Formation during RSW}, volume={101}, DOI={<a href=\"https://doi.org/10.29391/2022.101.015\">10.29391/2022.101.015</a>}, number={7}, journal={Welding Journal}, publisher={American Welding Society}, author={Böhne, Christoph and Meschut, Gerson and BIEGLER, MAX and RETHMEIER, MICHAEL}, year={2022}, pages={197–207} }"},"doi":"10.29391/2022.101.015","language":[{"iso":"eng"}],"date_updated":"2025-08-07T09:29:30Z","publication_status":"published","intvolume":"       101","year":"2022","title":"The Influence of Electrode Indentation Rate on LME Formation during RSW","publication_identifier":{"issn":["0043-2296","2689-0445"]},"author":[{"first_name":"Christoph","last_name":"Böhne","full_name":"Böhne, Christoph","id":"22483"},{"id":"32056","full_name":"Meschut, Gerson","last_name":"Meschut","orcid":"0000-0002-2763-1246","first_name":"Gerson"},{"full_name":"BIEGLER, MAX","first_name":"MAX","last_name":"BIEGLER"},{"full_name":"RETHMEIER, MICHAEL","last_name":"RETHMEIER","first_name":"MICHAEL"}],"type":"journal_article","keyword":["Metals and Alloys","Mechanical Engineering","Mechanics of Materials"],"department":[{"_id":"157"}],"date_created":"2024-03-18T11:51:57Z","abstract":[{"lang":"eng","text":"<jats:p>During resistance spot welding of zinc-coated advanced high-strength steels (AHSSs) for automotive production, liquid metal embrittlement (LME) cracking may occur in the event of a combination of various unfavorable influences. In this study, the interactions of different welding current levels and weld times on the tendency for LME cracking in third-generation AHSSs were investigated. LME manifested itself as high-penetration cracks around the circumference of the spot welds for welding currents closely below the expulsion limit. At the same time, the observed tendency for LME cracking showed no direct correlation with the overall heat input of the investigated welding processes. To identify a reliable indicator of the tendency for LME cracking, the local strain rate at the origin of the observed cracks was analyzed over the course of the welding process via finite element simulation. While the local strain rate showed a good correlation with the process-specific LME cracking tendency, it was difficult to interpret due to its discontinuous course. Therefore, based on the experimental measurement of electrode displacement during welding, electrode indentation velocity was proposed as a descriptive indicator for quantifying cracking tendency.</jats:p>"}],"publication":"Welding Journal","issue":"7"},{"status":"public","page":"1468-1478","_id":"37647","publisher":"Trans Tech Publications, Ltd.","user_id":"7850","volume":926,"citation":{"ieee":"C. Wischer and W. Homberg, “Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints,” <i>Key Engineering Materials</i>, vol. 926, pp. 1468–1478, 2022, doi: <a href=\"https://doi.org/10.4028/p-1n6741\">10.4028/p-1n6741</a>.","apa":"Wischer, C., &#38; Homberg, W. (2022). Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints. <i>Key Engineering Materials</i>, <i>926</i>, 1468–1478. <a href=\"https://doi.org/10.4028/p-1n6741\">https://doi.org/10.4028/p-1n6741</a>","short":"C. Wischer, W. Homberg, Key Engineering Materials 926 (2022) 1468–1478.","chicago":"Wischer, Christian, and Werner Homberg. “Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints.” <i>Key Engineering Materials</i> 926 (2022): 1468–78. <a href=\"https://doi.org/10.4028/p-1n6741\">https://doi.org/10.4028/p-1n6741</a>.","mla":"Wischer, Christian, and Werner Homberg. “Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints.” <i>Key Engineering Materials</i>, vol. 926, Trans Tech Publications, Ltd., 2022, pp. 1468–78, doi:<a href=\"https://doi.org/10.4028/p-1n6741\">10.4028/p-1n6741</a>.","bibtex":"@article{Wischer_Homberg_2022, title={Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints}, volume={926}, DOI={<a href=\"https://doi.org/10.4028/p-1n6741\">10.4028/p-1n6741</a>}, journal={Key Engineering Materials}, publisher={Trans Tech Publications, Ltd.}, author={Wischer, Christian and Homberg, Werner}, year={2022}, pages={1468–1478} }","ama":"Wischer C, Homberg W. Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints. <i>Key Engineering Materials</i>. 2022;926:1468-1478. doi:<a href=\"https://doi.org/10.4028/p-1n6741\">10.4028/p-1n6741</a>"},"quality_controlled":"1","project":[{"_id":"147","name":"TRR 285 – C03: TRR 285 - Subproject C03"},{"_id":"133","name":"TRR 285 - Project Area C"},{"_id":"130","name":"TRR 285:  Methodenentwicklung zur mechanischen Fügbarkeit in wandlungsfähigen Prozessketten"}],"year":"2022","title":"Further Development of an Adaptive Joining Technique Based on Friction Spinning to Produce Pre-Hole-Free Joints","publication_identifier":{"issn":["1662-9795"]},"author":[{"full_name":"Wischer, Christian","first_name":"Christian","last_name":"Wischer"},{"full_name":"Homberg, Werner","first_name":"Werner","last_name":"Homberg"}],"publication_status":"published","date_updated":"2026-05-12T12:00:20Z","article_type":"original","intvolume":"       926","language":[{"iso":"eng"}],"doi":"10.4028/p-1n6741","publication":"Key Engineering Materials","abstract":[{"text":"Mechanical joining processes are an essential part of modern lightweight construction. They permit materials of different types to be joined in a way that is suitable for the loads involved. These processes reach their limits, however, as soon as the boundary conditions change. In most cases, these elements are specially adapted to the joining point and cannot be used universally. Changes require cost-intensive adaptation of both the element and the process control, thus making production more complex. This results in high costs due to the increased number of auxiliary joining element variants required and reduces the economic efficiency of mechanical joining. One approach to overcoming this issue is the use of adaptive auxiliary joining elements formed by friction spinning. This article presents the current state of research on pre-hole-free joining with adaptive joining elements. The overall process chain is illustrated, explained and analyzed. Special attention is paid to demonstrating the feasibility of pre-hole-free joining with adaptive joining elements. The chosen mechanical parameters are subsequently listed. Finally, a comprehensive outlook of the future development potential is derived.</jats:p>","lang":"eng"}],"date_created":"2023-01-20T07:47:18Z","type":"journal_article","keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"department":[{"_id":"156"}]},{"citation":{"mla":"Schramm, Britta, et al. “A Review on the Modeling of the Clinching Process Chain - Part I: Design Phase.” <i>Journal of Advanced Joining Processes</i>, vol. 6, 100133, Elsevier BV, 2022, doi:<a href=\"https://doi.org/10.1016/j.jajp.2022.100133\">10.1016/j.jajp.2022.100133</a>.","ama":"Schramm B, Martin S, Steinfelder C, et al. A Review on the Modeling of the Clinching Process Chain - Part I: Design Phase. <i>Journal of Advanced Joining Processes</i>. 2022;6. doi:<a href=\"https://doi.org/10.1016/j.jajp.2022.100133\">10.1016/j.jajp.2022.100133</a>","bibtex":"@article{Schramm_Martin_Steinfelder_Bielak_Brosius_Meschut_Tröster_Wallmersperger_Mergheim_2022, title={A Review on the Modeling of the Clinching Process Chain - Part I: Design Phase}, volume={6}, DOI={<a href=\"https://doi.org/10.1016/j.jajp.2022.100133\">10.1016/j.jajp.2022.100133</a>}, number={100133}, journal={Journal of Advanced Joining Processes}, publisher={Elsevier BV}, author={Schramm, Britta and Martin, Sven and Steinfelder, Christian and Bielak, Christian Roman and Brosius, Alexander and Meschut, Gerson and Tröster, Thomas and Wallmersperger, Thomas and Mergheim, Julia}, year={2022} }","apa":"Schramm, B., Martin, S., Steinfelder, C., Bielak, C. R., Brosius, A., Meschut, G., Tröster, T., Wallmersperger, T., &#38; Mergheim, J. (2022). A Review on the Modeling of the Clinching Process Chain - Part I: Design Phase. <i>Journal of Advanced Joining Processes</i>, <i>6</i>, Article 100133. <a href=\"https://doi.org/10.1016/j.jajp.2022.100133\">https://doi.org/10.1016/j.jajp.2022.100133</a>","ieee":"B. Schramm <i>et al.</i>, “A Review on the Modeling of the Clinching Process Chain - Part I: Design Phase,” <i>Journal of Advanced Joining Processes</i>, vol. 6, Art. no. 100133, 2022, doi: <a href=\"https://doi.org/10.1016/j.jajp.2022.100133\">10.1016/j.jajp.2022.100133</a>.","chicago":"Schramm, Britta, Sven Martin, Christian Steinfelder, Christian Roman Bielak, Alexander Brosius, Gerson Meschut, Thomas Tröster, Thomas Wallmersperger, and Julia Mergheim. “A Review on the Modeling of the Clinching Process Chain - Part I: Design Phase.” <i>Journal of Advanced Joining Processes</i> 6 (2022). <a href=\"https://doi.org/10.1016/j.jajp.2022.100133\">https://doi.org/10.1016/j.jajp.2022.100133</a>.","short":"B. Schramm, S. Martin, C. Steinfelder, C.R. Bielak, A. Brosius, G. Meschut, T. Tröster, T. Wallmersperger, J. 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Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes. <i>Key Engineering Materials</i>. 2021;883:81-88. doi:<a href=\"https://doi.org/10.4028/www.scientific.net/kem.883.81\">10.4028/www.scientific.net/kem.883.81</a>","bibtex":"@article{Rossel_Böhnke_Bielak_Bobbert_Meschut_2021, title={Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes}, volume={883}, DOI={<a href=\"https://doi.org/10.4028/www.scientific.net/kem.883.81\">10.4028/www.scientific.net/kem.883.81</a>}, journal={Key Engineering Materials}, publisher={Trans Tech Publications, Ltd.}, author={Rossel, Moritz Sebastian and Böhnke, Max and Bielak, Christian Roman and Bobbert, Mathias and Meschut, Gerson}, year={2021}, pages={81–88} }","mla":"Rossel, Moritz Sebastian, et al. “Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes.” <i>Key Engineering Materials</i>, vol. 883, Trans Tech Publications, Ltd., 2021, pp. 81–88, doi:<a href=\"https://doi.org/10.4028/www.scientific.net/kem.883.81\">10.4028/www.scientific.net/kem.883.81</a>.","chicago":"Rossel, Moritz Sebastian, Max Böhnke, Christian Roman Bielak, Mathias Bobbert, and Gerson Meschut. “Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes.” <i>Key Engineering Materials</i> 883 (2021): 81–88. <a href=\"https://doi.org/10.4028/www.scientific.net/kem.883.81\">https://doi.org/10.4028/www.scientific.net/kem.883.81</a>.","short":"M.S. Rossel, M. Böhnke, C.R. Bielak, M. Bobbert, G. Meschut, Key Engineering Materials 883 (2021) 81–88.","apa":"Rossel, M. S., Böhnke, M., Bielak, C. R., Bobbert, M., &#38; Meschut, G. (2021). Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes. <i>Key Engineering Materials</i>, <i>883</i>, 81–88. <a href=\"https://doi.org/10.4028/www.scientific.net/kem.883.81\">https://doi.org/10.4028/www.scientific.net/kem.883.81</a>","ieee":"M. S. Rossel, M. Böhnke, C. R. Bielak, M. Bobbert, and G. Meschut, “Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes,” <i>Key Engineering Materials</i>, vol. 883, pp. 81–88, 2021, doi: <a href=\"https://doi.org/10.4028/www.scientific.net/kem.883.81\">10.4028/www.scientific.net/kem.883.81</a>."},"project":[{"grant_number":"418701707","_id":"130","name":"TRR 285: TRR 285"},{"name":"TRR 285 - A: TRR 285 - Project Area A","_id":"131"},{"name":"TRR 285 – A01: TRR 285 - Subproject A01","_id":"135"}],"quality_controlled":"1","language":[{"iso":"eng"}],"doi":"10.4028/www.scientific.net/kem.883.81","author":[{"first_name":"Moritz Sebastian","last_name":"Rossel","full_name":"Rossel, Moritz Sebastian","id":"44503"},{"full_name":"Böhnke, Max","last_name":"Böhnke","first_name":"Max","id":"45779"},{"full_name":"Bielak, Christian Roman","first_name":"Christian Roman","last_name":"Bielak","id":"34782"},{"id":"7850","full_name":"Bobbert, Mathias","first_name":"Mathias","last_name":"Bobbert"},{"full_name":"Meschut, Gerson","last_name":"Meschut","first_name":"Gerson","orcid":"0000-0002-2763-1246","id":"32056"}],"publication_identifier":{"issn":["1662-9795"]},"year":"2021","title":"Development of a Method for the Identification of Friction Coefficients in Sheet Metal Materials for the Numerical Simulation of Clinching Processes","intvolume":"       883","publication_status":"published","date_updated":"2023-03-09T11:43:31Z","date_created":"2022-12-05T21:57:07Z","department":[{"_id":"630"},{"_id":"157"}],"keyword":["Mechanical Engineering","Mechanics of Materials","General Materials Science"],"type":"journal_article","publication":"Key Engineering Materials","abstract":[{"text":"In order to reduce the fuel consumption and consequently the greenhouse emissions, the automotive industry is implementing lightweight constructions in the body in white production. As a result, the use of aluminum alloys is continuously increasing. Due to poor weldability of aluminum in combination with other materials, mechanical joining technologies like clinching are increasingly used. In order to predict relevant characteristics of clinched joints and to ensure the reliability of the process, it is simulated numerically during product development processes. In this regard the predictive accuracy of the simulated process highly depends on the implemented friction model. In particular, the frictional behavior between the sheet metals affects the geometrical formation of the clinched joint significantly. This paper presents a testing method, which enables to determine the frictional coefficients between sheet metal materials for the simulation of clinching processes. For this purpose, the correlation of interface pressure and the relative velocity between aluminum sheets in clinching processes is investigated using numerical simulation. Furthermore, the developed testing method focuses on the specimen geometry as well as the reproduction of the occurring friction conditions between two sheet metal materials in clinching processes. Based on a methodical approach the test setup is explained and the functionality of the method is proven by experimental tests using sheet metal material EN AW6014.","lang":"eng"}]}]
