[{"publisher":"Vahid Jamebozorgi, self-published","type":"research_data","year":"2026","project":[{"name":"Bielefelder Institut für Angewandte Materialforschung","_id":"f89a05bb-bcea-11ed-9442-ed382659bc06"}],"title":"MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit","keyword":["Atomistic simulation","EBSD","Mesh generation","Finite element methods","Image processing","Digital-twin","Multiscale modeling"],"research_group":[{"_id":"af778127-b366-11ed-bde2-daed2b8eafee","name":"Bielefelder Institut für Angewandte Materialforschung (BIfAM)"}],"related_material":{"link":[{"relation":"confirmation","url":"https://github.com/Vahid-jb/MultiBEST---Multiscale-Multiphase-Bridging-Experiment-and-Simulation-Toolkit"}]},"abstract":[{"text":"Current simulation workflows overwhelmingly rely on idealized or implicit microstructures, which prevents true side‑by‑side comparison with experiments and slows methodological progress. Directly simulating experimentally identical samples—using atomistic and continuum models—is a critical yet largely unrealized step toward predictive, microstructure‑aware materials discovery. In this work, we introduce MultiBEST, a unified GUI‑based framework that constructs experimentally faithful atomistic and continuum models directly from 2D micrographs, EBSD data, or simple user sketches. The resulting continuum representations explicitly resolve grain boundaries as crystallography‑aware volumetric interfaces with distinct properties, enabling multiscale modelling that approaches atomistic‑level fidelity. MultiBEST delivers an end‑to‑end pipeline—from image processing to final model export—with tunable computational cost, from rapid prototyping to large‑scale simulations.","lang":"eng"}],"user_id":"242086","date_created":"2026-08-24T16:35:13Z","date_updated":"2026-08-28T13:46:33Z","status":"public","author":[{"id":"242086","orcid":"0009-0005-5700-3549","last_name":"Jamebozorgi","first_name":"Vahid","full_name":"Jamebozorgi, Vahid"},{"first_name":"Robin","last_name":"Quisbrok","full_name":"Quisbrok, Robin"},{"full_name":"Nasari, Amirbahador","first_name":"Amirbahador","last_name":"Nasari"},{"id":"35809","full_name":"Schröder, Christian","orcid_put_code_url":"https://api.orcid.org/v2.0/0000-0002-6391-6548/work/225113793","last_name":"Schröder","orcid":"0000-0002-6391-6548","first_name":"Christian"}],"department":[{"_id":"103"}],"_id":"7120","citation":{"bibtex":"@book{Jamebozorgi_Quisbrok_Nasari_Schröder_2026, title={MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit}, publisher={Vahid Jamebozorgi, self-published}, author={Jamebozorgi, Vahid and Quisbrok, Robin and Nasari, Amirbahador and Schröder, Christian}, year={2026} }","ama":"Jamebozorgi V, Quisbrok R, Nasari A, Schröder C. <i>MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit</i>. Vahid Jamebozorgi, self-published; 2026.","short":"V. Jamebozorgi, R. Quisbrok, A. Nasari, C. Schröder, MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit, Vahid Jamebozorgi, self-published, 2026.","alphadin":"<span style=\"font-variant:small-caps;\">Jamebozorgi, Vahid</span> ; <span style=\"font-variant:small-caps;\">Quisbrok, Robin</span> ; <span style=\"font-variant:small-caps;\">Nasari, Amirbahador</span> ; <span style=\"font-variant:small-caps;\">Schröder, Christian</span>: <i>MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit</i> : Vahid Jamebozorgi, self-published, 2026","mla":"Jamebozorgi, Vahid, et al. <i>MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit</i>. Vahid Jamebozorgi, self-published, 2026.","ieee":"V. Jamebozorgi, R. Quisbrok, A. Nasari, and C. Schröder, <i>MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit</i>. Vahid Jamebozorgi, self-published, 2026.","chicago":"Jamebozorgi, Vahid, Robin Quisbrok, Amirbahador Nasari, and Christian Schröder. <i>MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit</i>. Vahid Jamebozorgi, self-published, 2026.","apa":"Jamebozorgi, V., Quisbrok, R., Nasari, A., &#38; Schröder, C. (2026). <i>MultiBEST – Multiscale/Multiphase Bridging Experiment and Simulation Toolkit</i>. Vahid Jamebozorgi, self-published."}},{"department":[{"_id":"103"}],"author":[{"id":"242086","full_name":"Jamebozorgi, Vahid","orcid":"0009-0005-5700-3549","last_name":"Jamebozorgi","first_name":"Vahid"},{"full_name":"Quisbrok, Robin","first_name":"Robin","last_name":"Quisbrok"},{"orcid_put_code_url":"https://api.orcid.org/v2.0/0000-0002-6391-6548/work/225113776","full_name":"Schröder, Christian","first_name":"Christian","orcid":"0000-0002-6391-6548","last_name":"Schröder","id":"35809"}],"_id":"7119","citation":{"ama":"Jamebozorgi V, Quisbrok R, Schröder C. <i>Virtual Characterization Lab Toolkit</i>. Vahid Jamebozorgi, self-published; 2026.","bibtex":"@book{Jamebozorgi_Quisbrok_Schröder_2026, title={Virtual Characterization Lab Toolkit}, publisher={Vahid Jamebozorgi, self-published}, author={Jamebozorgi, Vahid and Quisbrok, Robin and Schröder, Christian}, year={2026} }","short":"V. Jamebozorgi, R. Quisbrok, C. Schröder, Virtual Characterization Lab Toolkit, Vahid Jamebozorgi, self-published, 2026.","mla":"Jamebozorgi, Vahid, et al. <i>Virtual Characterization Lab Toolkit</i>. Vahid Jamebozorgi, self-published, 2026.","ieee":"V. Jamebozorgi, R. Quisbrok, and C. Schröder, <i>Virtual Characterization Lab Toolkit</i>. Vahid Jamebozorgi, self-published, 2026.","alphadin":"<span style=\"font-variant:small-caps;\">Jamebozorgi, Vahid</span> ; <span style=\"font-variant:small-caps;\">Quisbrok, Robin</span> ; <span style=\"font-variant:small-caps;\">Schröder, Christian</span>: <i>Virtual Characterization Lab Toolkit</i> : Vahid Jamebozorgi, self-published, 2026","chicago":"Jamebozorgi, Vahid, Robin Quisbrok, and Christian Schröder. <i>Virtual Characterization Lab Toolkit</i>. Vahid Jamebozorgi, self-published, 2026.","apa":"Jamebozorgi, V., Quisbrok, R., &#38; Schröder, C. (2026). <i>Virtual Characterization Lab Toolkit</i>. Vahid Jamebozorgi, self-published."},"user_id":"242086","abstract":[{"lang":"eng","text":"Material discovery using traditional experimental methods is a slow and costly process, often limited by the sampling process, characterization condition constraints, and the requirement for expensive equipment. While computational tools have transformed materials research by accelerating the investigation of material properties, a significant gap remains in connecting high-fidelity simulations with established experimental characterization techniques. Virtual Characterization Lab (VCL), a unified, open-source toolkit designed to bridge this gap. The VCL streamlines pre- and post-processing workflows—primarily designed for, but not limited to, molecular dynamics (MD) simulations. It enables researchers to analyze crystallography and generate essential characterization data, including X-ray Diffraction (XRD), Selected Area Electron Diffraction (SAED), Vibrational Density of States (VDOS), and Infrared (IR) spectra, all within a single, intuitive graphical user interface (GUI). By integrating every step from initial structure preparation to final data visualization, the VCL accelerates materials discovery by making virtual characterization more efficient, accessible, and directly comparable to experimental results."}],"date_updated":"2026-08-28T13:46:22Z","status":"public","date_created":"2026-08-24T16:29:50Z","research_group":[{"_id":"af778127-b366-11ed-bde2-daed2b8eafee","name":"Bielefelder Institut für Angewandte Materialforschung (BIfAM)"}],"project":[{"_id":"f89a05bb-bcea-11ed-9442-ed382659bc06","name":"Bielefelder Institut für Angewandte Materialforschung"}],"title":"Virtual Characterization Lab Toolkit","keyword":["Atomistic simulation","Defects","XRD","TEM","Vibrational analysis","Virtual material characterization"],"related_material":{"link":[{"relation":"confirmation","url":"https://github.com/Vahid-jb/Virtual-Characterization-Lab-Toolkit"}]},"type":"research_data","publisher":"Vahid Jamebozorgi, self-published","year":"2026"},{"publication":"Proceedings of the 16th International Modelica&FMI Conference","status":"public","publication_status":"published","date_created":"2025-12-01T13:48:57Z","user_id":"250307","language":[{"iso":"eng"}],"_id":"6357","citation":{"chicago":"Hannebohm, Philip, and Bernhard Bachmann. “Selective Evaluation of RHS during Multi-Rate Simulation.” In <i>Proceedings of the 16th International Modelica&#38;FMI Conference</i>, edited by Dirk Zimmer and Ulf Christian Müller, 218:943–947. 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Linköping University Electronic Press; 2025:943–947. doi:<a href=\"https://doi.org/10.3384/ecp218943\">10.3384/ecp218943</a>","bibtex":"@inproceedings{Hannebohm_Bachmann_2025, series={Linköping Electronic Conference Proceedings}, title={Selective Evaluation of RHS during Multi-Rate Simulation}, volume={218}, DOI={<a href=\"https://doi.org/10.3384/ecp218943\">10.3384/ecp218943</a>}, booktitle={Proceedings of the 16th International Modelica&#38;FMI Conference}, publisher={Linköping University Electronic Press}, author={Hannebohm, Philip and Bachmann, Bernhard}, editor={Zimmer, Dirk and Müller, Ulf ChristianEditors}, year={2025}, pages={943–947}, collection={Linköping Electronic Conference Proceedings} }","mla":"Hannebohm, Philip, and Bernhard Bachmann. “Selective Evaluation of RHS during Multi-Rate Simulation.” <i>Proceedings of the 16th International Modelica&#38;FMI Conference</i>, edited by Dirk Zimmer and Ulf Christian Müller, vol. 218, Linköping University Electronic Press, 2025, pp. 943–947, doi:<a href=\"https://doi.org/10.3384/ecp218943\">10.3384/ecp218943</a>.","ieee":"P. Hannebohm and B. Bachmann, “Selective Evaluation of RHS during Multi-Rate Simulation,” in <i>Proceedings of the 16th International Modelica&#38;FMI Conference</i>, Lucerne, 2025, vol. 218, pp. 943–947.","alphadin":"<span style=\"font-variant:small-caps;\">Hannebohm, Philip</span> ; <span style=\"font-variant:small-caps;\">Bachmann, Bernhard</span>: Selective Evaluation of RHS during Multi-Rate Simulation. In: <span style=\"font-variant:small-caps;\">Zimmer, D.</span> ; <span style=\"font-variant:small-caps;\">Müller, U. C.</span> (Hrsg.): <i>Proceedings of the 16th International Modelica&#38;FMI Conference</i>, <i>Linköping Electronic Conference Proceedings</i>. Bd. 218 : Linköping University Electronic Press, 2025, S. 943–947","short":"P. Hannebohm, B. Bachmann, in: D. Zimmer, U.C. 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(2023). HUMANZENTRIERTE PRODUKTIONSPLANUNG MIT KI - Entwicklung eines Assistenzsystems. <i>Arbeitswelt.Plus Working Paper</i>. <a href=\"https://doi.org/10.55594/UXIT4205\">https://doi.org/10.55594/UXIT4205</a>","chicago":"Vollenkemper, Lukas, Marvin Mönikes, Florian Wortmann, Melanie Rudolph-Puls, Martin Kohlhase, Angelika Röchter, and Christian Ewering. “HUMANZENTRIERTE PRODUKTIONSPLANUNG MIT KI - Entwicklung Eines Assistenzsystems.” <i>Arbeitswelt.Plus Working Paper</i>, 2023. <a href=\"https://doi.org/10.55594/UXIT4205\">https://doi.org/10.55594/UXIT4205</a>.","short":"L. Vollenkemper, M. Mönikes, F. Wortmann, M. Rudolph-Puls, M. Kohlhase, A. Röchter, C. Ewering, Arbeitswelt.Plus Working Paper (2023).","alphadin":"<span style=\"font-variant:small-caps;\">Vollenkemper, Lukas</span> ; <span style=\"font-variant:small-caps;\">Mönikes, Marvin</span> ; <span style=\"font-variant:small-caps;\">Wortmann, Florian</span> ; <span style=\"font-variant:small-caps;\">Rudolph-Puls, Melanie</span> ; <span style=\"font-variant:small-caps;\">Kohlhase, Martin</span> ; <span style=\"font-variant:small-caps;\">Röchter, Angelika</span> ; <span style=\"font-variant:small-caps;\">Ewering, Christian</span>: HUMANZENTRIERTE PRODUKTIONSPLANUNG MIT KI - Entwicklung eines Assistenzsystems. In: <i>Arbeitswelt.Plus Working Paper</i>, it’s OWL Clustermanagement GmbH (2023)","mla":"Vollenkemper, Lukas, et al. “HUMANZENTRIERTE PRODUKTIONSPLANUNG MIT KI - Entwicklung Eines Assistenzsystems.” <i>Arbeitswelt.Plus Working Paper</i>, it’s OWL Clustermanagement GmbH, 2023, doi:<a href=\"https://doi.org/10.55594/UXIT4205\">10.55594/UXIT4205</a>.","ieee":"L. 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HUMANZENTRIERTE PRODUKTIONSPLANUNG MIT KI - Entwicklung eines Assistenzsystems. <i>ArbeitsweltPlus Working Paper</i>. 2023. doi:<a href=\"https://doi.org/10.55594/UXIT4205\">10.55594/UXIT4205</a>"},"_id":"2855","main_file_link":[{"url":"https://arbeitswelt.plus/wp-content/uploads/2023/03/Working_Paper_ImpliKIt_FINAL.pdf"}],"language":[{"iso":"eng"}],"user_id":"256529","date_created":"2023-05-08T16:27:31Z","publication_status":"published","status":"public","publication":"Arbeitswelt.Plus Working Paper","date_updated":"2026-07-31T18:33:03Z"},{"urn":"urn:nbn:de:hbz:bi10-23330","file":[{"file_id":"2334","file_size":11715456,"file_name":"_2023_Blachowicz_Symmetry15_234_v2.pdf","content_type":"application/pdf","relation":"main_file","success":1,"date_updated":"2023-02-03T06:52:20Z","creator":"aehrmann","access_level":"open_access","date_created":"2023-02-03T06:52:20Z"}],"type":"journal_article","doi":"10.3390/sym15010234","volume":15,"tmp":{"image":"/images/cc_by.png","short":"CC BY (4.0)","name":"Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)","legal_code_url":"https://creativecommons.org/licenses/by/4.0/legalcode"},"author":[{"last_name":"Blachowicz","first_name":"Tomasz","full_name":"Blachowicz, Tomasz"},{"first_name":"Pawel","last_name":"Steblinski","full_name":"Steblinski, Pawel"},{"id":"223776","full_name":"Ehrmann, Andrea","orcid_put_code_url":"https://api.orcid.org/v2.0/0000-0003-0695-3905/work/181737437","last_name":"Ehrmann","orcid":"0000-0003-0695-3905","first_name":"Andrea"}],"date_updated":"2026-03-17T15:28:31Z","publication_identifier":{"eissn":["2073-8994"]},"oa":"1","file_date_updated":"2023-02-03T06:52:20Z","keyword":["micromagnetic simulation","Parallel Finite Element Micromagnetics Package (Magpar)","magnetocrystalline anisotropy","exchange energy","demagnetization energy"],"quality_controlled":"1","title":"Influence of Physical Symmetries on the Magnetization Dynamics in Magnetic Fibers","article_type":"original","article_number":"234","year":"2023","has_accepted_license":"1","issue":"1","funded_apc":"1","publisher":"MDPI AG","main_file_link":[{"open_access":"1"}],"citation":{"apa":"Blachowicz, T., Steblinski, P., &#38; Ehrmann, A. 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Blachowicz. “Magnetization Reversal Asymmetry in a Structured Ferromagnetic Nanoparticle with Varying Shape Anisotropy.” <i>Journal of Magnetism and Magnetic Materials</i> 546 (2022). <a href=\"https://doi.org/10.1016/j.jmmm.2021.168929\">https://doi.org/10.1016/j.jmmm.2021.168929</a>.","apa":"Ehrmann, A., &#38; Blachowicz, T. (2022). Magnetization reversal asymmetry in a structured ferromagnetic nanoparticle with varying shape anisotropy. <i>Journal of Magnetism and Magnetic Materials</i>, <i>546</i>. <a href=\"https://doi.org/10.1016/j.jmmm.2021.168929\">https://doi.org/10.1016/j.jmmm.2021.168929</a>","short":"A. Ehrmann, T. Blachowicz, Journal of Magnetism and Magnetic Materials 546 (2022).","alphadin":"<span style=\"font-variant:small-caps;\">Ehrmann, Andrea</span> ; <span style=\"font-variant:small-caps;\">Blachowicz, T.</span>: Magnetization reversal asymmetry in a structured ferromagnetic nanoparticle with varying shape anisotropy. 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