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FEM Simulations of Fatigue Crack Initiation in the Oligocrystalline Microstructure of Stents. Materials, (16)17:6003, MDPI, 2023. [PUMA: oa ubs_10004 ubs_20004 ubs_30047 ubs_40073 ubs_40074 unibibliografie wos]
Investigation of Auxetic Structural Deformation Behavior of PBAT Polymers Using Process and Finite Element Simulation. Polymers, (15)14:3142, MDPI, 2023. [PUMA: f2023 gold mult oa oafonds ubs_10004 ubs_20004 ubs_20005 ubs_30047 ubs_30056 ubs_40073 ubs_40074 ubs_40081 unibibliografie wos]
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Deformation Behavior Investigation of Auxetic Structure Made of Poly(butylene adipate-co-terephthalate) Biopolymers Using Finite Element Method. Polymers, (15)7:1792, MDPI, 2023. [PUMA: f2023 gold mult oa oafonds ubs_10004 ubs_20004 ubs_20005 ubs_30047 ubs_30056 ubs_40073 ubs_40074 ubs_40081 unibibliografie]
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Nonlocal Damage Modeling of Solder Joint Failure under Thermal and Thermomechanical cyclic Loading. Proceedings of ASME 2021 International Technical Conference and Exhibition on Packaging and Integration of Electronic and Photonic Microsystems (InterPACK2021), V001T06A003, the American Society of Mechanical Engineers, New York, NY, USA, 2021. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 ubs_40074 unibibliografie wos]
Microstructural Modeling and Simulation of a Carbon Black-Based Conductive Polymer-A Template for the Virtual Design of a Composite Material. ACS omega, (7)33:28820–28830, American Chemical Society, 2022. [PUMA: mult ubs_10004 ubs_20004 ubs_30047 ubs_40073 ubs_40074 unibibliografie wos]
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Deformation Behavior of 3D Printed Auxetic Structures of Thermoplastic Polymers : PLA, PBAT, and Blends. Polymers, (15)2:389, MDPI, 2023. [PUMA: f2022 mult oa oafonds ubs_10004 ubs_20004 ubs_20005 ubs_30047 ubs_30056 ubs_40073 ubs_40074 ubs_40081 uni unibibliografie]
Ab initio investigations of Fe(110)/graphene interfaces. Applied surface science, (598):153714, Elsevier, 2022. [PUMA: mult ubs_10004 ubs_20004 ubs_30047 ubs_40073 ubs_40074 unibibliografie wos]
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Sensor-Integrated Tool for Self-Optimizing Single-Lip Deep Hole Drilling. International journal of automation technology, (16)2:126-137, Fuji Technology Press, 2022. [PUMA: mult oa ubs_10004 ubs_10007 ubs_20004 ubs_20011 ubs_30047 ubs_30118 ubs_40073 ubs_40074 ubs_40310 unibibliografie wos]
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Molecular Dynamics Simulation of High-Temperature Creep Behavior of Nickel Polycrystalline Nanopillars. Molecules, (26)9:2606, MDPI, 2021. [PUMA: mult oa ubs_10003 ubs_10004 ubs_20003 ubs_20004 ubs_30032 ubs_30047 ubs_40073 ubs_40294 unibibliografie wos]
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Numerical Investigations on the Damage Behaviour of a Reconstructed Anode for Solid Oxide Fuel Cell Application. Energies, (14)23:8082, MDPI, 2021. [PUMA: dfg f2021 oa oafonds ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie]
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Crack analysis of nano-sized thermoelectric material structures. Engineering fracture mechanics, (234):107078, Elsevier Science, 2020. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
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3D optical measurement and numerical simulation of the fracture behavior of Al6061 laser welded joints. Engineering Fracture Mechanics, (206):501-508, Elsevier Science, 2019. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
Precipitation, planar defects and dislocations in alloys : Simulations on Ni3Si and Ni3Al precipitates. Particle Methods in Natural Science and Engineering, 227, 14:1559-1574, Springer, Berlin, 2019. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
Introducing a method of constructing realistic closed cell nano-porous iron crystals and MD simulations to investigate the influence of the system size on the stability and the mechanical properties. Proceedings of the 28th International Workshop on Computational Mechanics of Materials (IWCMM28), 166:150-154, Elsevier, Amsterdam, 2019. [PUMA: ubs_10004 ubs_10014 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
Particle methods in natural science and engineering. European Physical Journal Special Topics, (227)14:1493-1499, Springer, 2019. [PUMA: mult oa ubs_10003 ubs_10004 ubs_10005 ubs_20003 ubs_20004 ubs_20005 ubs_20008 ubs_30039 ubs_30047 ubs_30058 ubs_30086 ubs_40065 ubs_40073 ubs_40084 ubs_40129 unibibliografie wos]
Hohe Belastungen sicher überstehen. In Jan Knippers, Ulrich Schmid, und Thomas Speck (Hrsg.), Bionisch bauen : von der Natur lernen, 54-73, Birkhäuser, Basel, 2019. [PUMA: mult ubs_10002 ubs_10004 ubs_20002 ubs_20004 ubs_30023 ubs_30047 ubs_40022 ubs_40073 unibibliografie]
Numerical simulation of the fatigue behavior of additive manufactured titanium porous lattice structures. Materials science & engineering. C, Materials for biological applications, (60):339-347, Elsevier, 2016. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
Hydrogen diffusion in doped and undoped alpha-Ti: An ab-initio investigation. International journal of hydrogen energy, (41)21:9108-9116, Elsevier, 2016. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
Additive manufacturing and mechanical characterization of graded porosity scaffolds designed based on triply periodic minimal surface architectures. Journal of the mechanical behavior of biomedical materials, (62):481-494, Elsevier, 2016. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
The relationships between deformation mechanisms and mechanical properties of additively manufactured porous biomaterials. Journal of the mechanical behavior of biomedical materials, (70):28-42, Elsevier, 2017. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]
Microstructure evolution in HR3C austenitic steel during long-term creep at 650 degrees C. Materials science & engineering. A, Structural materials: properties, microstructure and processing, (681):74-84, Elsevier, 2017. [PUMA: ubs_10004 ubs_20004 ubs_30047 ubs_40073 unibibliografie wos]