@article{36813,
  author       = {{Bierkandt, Thomas and Hemberger, Patrick and Oßwald, Patrick and Gaiser, Nina and Hoener, Martin and Krüger, Dominik and Kasper, Tina and Köhler, Markus}},
  issn         = {{1540-7489}},
  journal      = {{Proceedings of the Combustion Institute}},
  keywords     = {{Physical and Theoretical Chemistry, Mechanical Engineering, General Chemical Engineering}},
  publisher    = {{Elsevier BV}},
  title        = {{{A combustion chemistry study of tetramethylethylene in a laminar premixed low-pressure hydrogen flame}}},
  doi          = {{10.1016/j.proci.2022.07.205}},
  year         = {{2022}},
}

@article{33002,
  abstract     = {{<jats:p>Many mechanical material properties show a dependence on the strain rate, e.g. yield stress or elongation at fracture. The quantitative description of the material behavior under dynamic loading is of major importance for the evaluation of crash safety. This is carried out using numerical methods and requires characteristic values for the materials used. For the standardized determination of dynamic characteristic values in sheet metal materials, tensile tests performed according to the guideline from [1]. A particular challenge in dynamic tensile tests is the force measurement during the test. For this purpose, strain gauges are attached on each specimen, wired to the measuring equipment and calibrated. This is a common way to determine a force signal that is as low in vibration and as free of bending moments as possible. The preparation effort for the used strain gauges are enormous. For these reasons, an optical method to determine the force by strain measurement using DIC is presented. The experiments are carried out on a high speed tensile testing system. In combioantion with a 3D DIC high speed system for optical strain measurement. The elastic deformation of the specimen in the dynamometric section is measured using strain gauges and the optical method. The measured signals are then compared to validate the presented method. The investigations are conducted using the dual phase steel material HCT590X and the aluminum material EN AW-6014 T4. Strain rates of up to 240 s-1 are investigated.</jats:p>}},
  author       = {{Böhnke, Max and Unruh, Eduard and Sell, Stanislaw and Bobbert, Mathias and Hein, David and Meschut, Gerson}},
  issn         = {{1662-9795}},
  journal      = {{Key Engineering Materials}},
  keywords     = {{Mechanical Engineering, Mechanics of Materials, General Materials Science}},
  location     = {{Braga, Portugal}},
  pages        = {{1564--1572}},
  publisher    = {{Trans Tech Publications, Ltd.}},
  title        = {{{Functionality Study of an Optical Measurement Concept for Local Force Signal Determination in High Strain Rate Tensile Tests}}},
  doi          = {{10.4028/p-wpuzyw}},
  volume       = {{926}},
  year         = {{2022}},
}

@inbook{33003,
  author       = {{Böhnke, Max and Bielak, Christian Roman and Bobbert, Mathias and Meschut, Gerson}},
  booktitle    = {{The Minerals, Metals &amp; Materials Series}},
  isbn         = {{9783031062117}},
  issn         = {{2367-1181}},
  location     = {{Toronto, Kanada}},
  publisher    = {{Springer International Publishing}},
  title        = {{{Development of a Modified Punch Test for Investigating the Failure Behavior in Sheet Metal Materials}}},
  doi          = {{10.1007/978-3-031-06212-4_52}},
  year         = {{2022}},
}

@article{34572,
  author       = {{Böhnke, Max and Bielak, Christian Roman and Bobbert, Mathias and Meschut, Gerson}},
  journal      = {{Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications}},
  publisher    = {{SAGE Journals}},
  title        = {{{Experimental and numerical investigation of the influence of multiaxial loading conditions on the failure behavior of clinched joints}}},
  doi          = {{10.1177/14644207221145886}},
  year         = {{2022}},
}

@article{32103,
  author       = {{Hanses, Hendrik and Horwath, Ilona}},
  issn         = {{2214-7853}},
  journal      = {{Materials Today: Proceedings}},
  keywords     = {{General Medicine}},
  number       = {{5}},
  pages        = {{2684--2688}},
  publisher    = {{Elsevier BV}},
  title        = {{{Development of operational and demand-oriented firefighting equipment}}},
  doi          = {{10.1016/j.matpr.2022.06.031}},
  volume       = {{62}},
  year         = {{2022}},
}

@article{34459,
  author       = {{Schmelzle, Lars and Striewe, Marius and Mergheim, Julia and Meschut, Gerson and Possart, Gunnar and Teutenberg, Dominik and Hein, David and Steinmann, Paul}},
  issn         = {{0169-4243}},
  journal      = {{Journal of Adhesion Science and Technology}},
  keywords     = {{Materials Chemistry, Surfaces, Coatings and Films, Surfaces and Interfaces, Mechanics of Materials, General Chemistry}},
  title        = {{{Testing, modelling, and parameter identification for adhesively bonded joints under the influence of temperature}}},
  doi          = {{10.1080/01694243.2022.2125714}},
  year         = {{2022}},
}

@inproceedings{20446,
  author       = {{Neumann, Stefan and Meschut, Gerson and Schmatz, Frederik and Flügge, Wilko}},
  title        = {{{Robotergestütztes manuelles mechanisches Fügen – RoboterFügen}}},
  year         = {{2022}},
}

@inproceedings{36866,
  abstract     = {{Die additive Fertigung bietet die Möglichkeit, digitale Prototypen dank der
Besonderheit der werkzeuglosen Fertigung schnellstmöglich in reale Strukturen
umzusetzen. Dieses Verfahren kann jedoch nur dann mit optimaler Geschwindigkeit
genutzt werden, wenn Engpässe wirksam vermieden werden können. Einer dieser
Engpässe ist der Konstruktionsprozess. Gerade im Bereich der additiven Fertigung
sind in letzter Zeit immer leistungsfähigere Softwarelösungen erschienen, die das
Design für die additive Fertigung, einschließlich der meisten Computer-Aided-Design
(CAD)-Aufgaben, beschleunigen. In vielen Bereichen wird daher bereits versucht, so
viele Schritte wie möglich zu automatisieren, nicht selten unter Verwendung
neuronaler Netze und künstlicher Intelligenz. Dieser Beitrag zeigt am Beispiel einer
automatisierten Strukturoptimierung eines Stuhls, warum das Nutzen neuronaler
Netze im Konstruktionsprozess sinnvoll ist, um die Bereiche der konventionellen
Topologieoptimierung und des Generative Design weiter zu verknüpfen und somit die
Produktentwicklungszeit zu reduzieren.}},
  author       = {{Ott, Manuel and Meihöfener, Niclas and Koch, Rainer}},
  booktitle    = {{Bericht 407 - 7. Tagung des DVM-Arbeitskreises Additiv gefertigte Bauteile und Strukturen}},
  keywords     = {{Künstliche Intelligenz, Neuronale Netze, 3D-Druck, Design for Additive Manufacturing}},
  location     = {{Berlin}},
  pages        = {{91--106}},
  title        = {{{Neuronale Netze in der Konstruktion zur Ausschöpfung der Potentiale additiver Fertigungstechnologien}}},
  doi          = {{10.48447/ADD-2022-014}},
  volume       = {{7}},
  year         = {{2022}},
}

@inproceedings{37258,
  author       = {{Haller, Sebastian and Tinkloh, Steffen Rainer and Tröster, Thomas and Brandt, Robert}},
  booktitle    = {{5th International Conference Hybrid 2022 Material & Structures}},
  title        = {{{The environmental impact on the strain rate dependent energy absorption capability of a hybrid crash absorber element}}},
  year         = {{2022}},
}

@inproceedings{32819,
  author       = {{Pfeifer, Florian and Tröster, Thomas and Marten, Thorsten and Dietrich, André and Nacke, Bernard and Grundmeier, Guido}},
  booktitle    = {{Proceedings of the 6th International Conference on Steels in Cars and Trucks}},
  location     = {{Mailand}},
  title        = {{{Investigation on hot sheet metal forming by means of a longitudinal flux inductor}}},
  year         = {{2022}},
}

@phdthesis{37635,
  author       = {{Dörner, Marius}},
  title        = {{{Wave-Schnecken in der Einschneckenextrusion}}},
  year         = {{2022}},
}

@phdthesis{37639,
  author       = {{Helmlinger, Lars René}},
  title        = {{{Untersuchungen zur werkstofflichen Aufbereitung von Post-Consumer-Kunststoffabfällen und Entwicklung eines neuen Aufbereitungsverfahrens}}},
  year         = {{2022}},
}

@phdthesis{37638,
  author       = {{Mühlhoff, Frederik Marvin}},
  title        = {{{Ein Beitrag zur InMould-Plasma Technologie zur Oberflächenvorbehandlung im Mehrkomponentenspritzgießwerkzeug}}},
  year         = {{2022}},
}

@phdthesis{37637,
  author       = {{Bialaschik, Max Oliver}},
  title        = {{{Ein Beitrag zum Warmgasstumpfschweißen von Kunststoffen}}},
  year         = {{2022}},
}

@phdthesis{37636,
  author       = {{Malatyali, Hatice}},
  title        = {{{Modellierung der Carbonfaserlängenverkürzung}}},
  year         = {{2022}},
}

@inbook{23405,
  author       = {{Gräßler, Iris and Scholle, Philipp and Thiele, Henrik}},
  booktitle    = {{Integrated Design Engineering. Ein interdisziplinäres Modell für die ganzheitliche Produktentwicklung, Kapitel: 20}},
  editor       = {{Vajna, Sandor}},
  pages        = {{544--566}},
  publisher    = {{Springer-Verlag}},
  title        = {{{Szenario-Technik}}},
  volume       = {{Kapitel 20}},
  year         = {{2022}},
}

@article{32174,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Increasing system complexity can be controlled by using systems engineering processes. INCOSE defines processes with inputs and outputs (artifacts) for this purpose. Specific SE roles are used to organize the tasks of the processes within the company. In this work, the responsibilities for artifacts are evaluated by means of the RACI scheme and examined by a cluster analysis and discussed for a SE transformation project with a German automotive OEM. As a result of the study, the optimal composition for systems engineering teams is identified and the systems engineering roles are prioritized.</jats:p>}},
  author       = {{Gräßler, Iris and Thiele, Henrik and Grewe, Benedikt and Hieb, Michael}},
  issn         = {{2732-527X}},
  journal      = {{Proceedings of the Design Society}},
  keywords     = {{systems engineering (SE), project management, model-based systems engineering (MBSE)}},
  location     = {{Dubrovnik}},
  pages        = {{1875--1884}},
  publisher    = {{Cambridge University Press (CUP)}},
  title        = {{{Responsibility Assignment in Systems Engineering}}},
  doi          = {{10.1017/pds.2022.190}},
  volume       = {{2}},
  year         = {{2022}},
}

@article{31185,
  author       = {{Ju, Xiaozhe and Mahnken, Rolf and Xu, Yangjian and Liang, Lihua and Cheng, Chun and Zhou, Wangmin}},
  issn         = {{0263-8223}},
  journal      = {{Composite Structures}},
  keywords     = {{Civil and Structural Engineering, Ceramics and Composites}},
  publisher    = {{Elsevier BV}},
  title        = {{{Multiscale analysis of composite structures with goal-oriented mesh adaptivity and reduced order homogenization}}},
  doi          = {{10.1016/j.compstruct.2022.115699}},
  year         = {{2022}},
}

@inproceedings{33035,
  author       = {{Mapura, Luz Alejandra and Kenig, Eugeny Y.}},
  booktitle    = {{Annual Meeting on Reaction Engineering and ProcessNet Subject Division "Heat and Mass Transfer"}},
  location     = {{Würzburg}},
  title        = {{{Effect of diffusivity and chemical reactions on the determination of mass transfer coefficients in columns with structured packing}}},
  year         = {{2022}},
}

@inproceedings{33254,
  author       = {{Buckmann, Felix and Kenig, Eugeny}},
  booktitle    = {{Annual Meeting on Reaction Engineering and ProcessNet Subject Division "Heat and Mass Transfer"}},
  location     = {{Würzburg}},
  title        = {{{Experimental study on the condensation of pure substances in outer pillow-plate channels}}},
  year         = {{2022}},
}

