@article{24086,
  abstract     = {{Laser beam melting (LBM) is an advanced manufacturing technology providing
special features and the possibility to produce complex and individual parts directly
from a CAD model. TiAl6V4 is the most common used titanium alloy particularly
in biomedical applications. TiAl6Nb7 shows promising improvements especially
regarding biocompatible properties due to the substitution of the hazardous
vanadium. This work focuses on the examination of laser beam melted TiAl6Nb7.
For microstructural investigation scanning electron microscopy including energydispersive
x-ray spectroscopy as well as electron backscatter diffraction are utilized.
The laser beam melted related acicular microstructure as well as the corresponding
mechanical properties, which are determined by hardness measurements
and tensile tests, are investigated. The laser beam melted alloy meets,
except of breaking elongation A, the mechanical demands like ultimate tensile
strength Rm, yield strength Rp0.2, Vickers hardness HV of international standard
ISO 5832-11. Next steps contain comparison between TiAl6Nb7 and TiAl6V4 in
different conditions. Further investigations aim at improving mechanical properties
of TiAl6Nb7 by heat treatments and assessment of their influence on the microstructure
as well as examination regarding the corrosive behavior in human bodylike
conditions.}},
  author       = {{Hein, Maxwell and Hoyer, Kay-Peter and Schaper, Mirko}},
  issn         = {{0933-5137}},
  journal      = {{Materialwissenschaft und Werkstofftechnik}},
  keywords     = {{Laser beam melting, titanium alloy, TiAl6Nb7, biomedical engineering, implants}},
  pages        = {{703--716}},
  title        = {{{Additively processed TiAl6Nb7 alloy for biomedical applications}}},
  doi          = {{10.1002/mawe.202000288}},
  volume       = {{52}},
  year         = {{2021}},
}

@article{29813,
  author       = {{Cieslar, Miroslav and Králík, Rostislav and Bajtošová, Lucia and Křivská, Barbora and Hájek, Michal and Belejová, Sára and Grydin, Olexandr and Stolbchenko, Mykhailo and Schaper, Mirko}},
  issn         = {{1431-9276}},
  journal      = {{Microscopy and Microanalysis}},
  keywords     = {{Instrumentation}},
  number       = {{S2}},
  pages        = {{79--80}},
  publisher    = {{Cambridge University Press (CUP)}},
  title        = {{{High Temperature Annealing of Twin-Roll Cast Al-Li-Based Alloy Studied by In-situ SEM and STEM}}},
  doi          = {{10.1017/s1431927621013398}},
  volume       = {{27}},
  year         = {{2021}},
}

@article{41514,
  author       = {{Krüger, Jan Tobias and Hoyer, Kay-Peter and Filor, Viviane and Pramanik, Sudipta and Kietzmann, Manfred and Meißner, Jessica and Schaper, Mirko}},
  issn         = {{0925-8388}},
  journal      = {{Journal of Alloys and Compounds}},
  keywords     = {{Materials Chemistry, Metals and Alloys, Mechanical Engineering, Mechanics of Materials}},
  publisher    = {{Elsevier BV}},
  title        = {{{Novel AgCa and AgCaLa alloys for Fe-based bioresorbable implants with adapted degradation}}},
  doi          = {{10.1016/j.jallcom.2021.159544}},
  volume       = {{871}},
  year         = {{2021}},
}

@article{29814,
  author       = {{Křivská, Barbora and Šlapáková, Michaela and Minárik, Peter and Fekete, Klaudia and Králík, Rostislav and Stolbchenko, Mykhailo and Schaper, Mirko and Grydin, Olexandr}},
  issn         = {{1431-9276}},
  journal      = {{Microscopy and Microanalysis}},
  keywords     = {{Instrumentation}},
  number       = {{S2}},
  pages        = {{91--92}},
  publisher    = {{Cambridge University Press (CUP)}},
  title        = {{{Intermetallic Phase Growth in Al-steel Clad Strip during In-situ Heating in TEM}}},
  doi          = {{10.1017/s1431927621013453}},
  volume       = {{27}},
  year         = {{2021}},
}

@article{41515,
  author       = {{Pramanik, Sudipta and Tasche, Lennart and Hoyer, Kay-Peter and Schaper, Mirko}},
  issn         = {{2214-8604}},
  journal      = {{Additive Manufacturing}},
  keywords     = {{Industrial and Manufacturing Engineering, Engineering (miscellaneous), General Materials Science, Biomedical Engineering}},
  publisher    = {{Elsevier BV}},
  title        = {{{Investigating the microstructure of an additively manufactured FeCo alloy: an electron microscopy study}}},
  doi          = {{10.1016/j.addma.2021.102087}},
  volume       = {{46}},
  year         = {{2021}},
}

@article{24090,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Within this research, the multiscale microstructural evolution before and after the tensile test of a FeCo alloy is addressed. X-ray <jats:italic>µ</jats:italic>-computer tomography (CT), electron backscattered diffraction (EBSD), and transmission electron microscopy (TEM) are employed to determine the microstructure on different length scales. Microstructural evolution is studied by performing EBSD of the same area before and after the tensile test. As a result, <jats:inline-formula><jats:alternatives><jats:tex-math>$$\langle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟨</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>001<jats:inline-formula><jats:alternatives><jats:tex-math>$$\rangle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟩</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>||TD, <jats:inline-formula><jats:alternatives><jats:tex-math>$$\langle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟨</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>011<jats:inline-formula><jats:alternatives><jats:tex-math>$$\rangle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟩</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>||TD are hard orientations and <jats:inline-formula><jats:alternatives><jats:tex-math>$$\langle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟨</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>111<jats:inline-formula><jats:alternatives><jats:tex-math>$$\rangle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟩</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>||TD is soft orientations for deformation accommodation. It is not possible to predict the deformation of a single grain with the Taylor model. However, the Taylor model accurately predicts the orientation of all grains after deformation. {123}<jats:inline-formula><jats:alternatives><jats:tex-math>$$\langle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟨</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>111<jats:inline-formula><jats:alternatives><jats:tex-math>$$\rangle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟩</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula> is the most active slip system, and {112}<jats:inline-formula><jats:alternatives><jats:tex-math>$$\langle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟨</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula>111<jats:inline-formula><jats:alternatives><jats:tex-math>$$\rangle$$</jats:tex-math><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML">
                <mml:mo>⟩</mml:mo>
              </mml:math></jats:alternatives></jats:inline-formula> is the least active slip system. Both EBSD micrographs show grain subdivision after tensile testing. TEM images show the formation of dislocation cells. Correlative HRTEM images show unresolved lattice fringes at dislocation cell boundaries, whereas resolved lattice fringes are observed at dislocation cell interior. Since Schmid’s law is unable to predict the deformation behavior of grains, the boundary slip transmission accurately predicts the grain deformation behavior.</jats:p>}},
  author       = {{Pramanik, Sudipta and Tasche, Lennart and Hoyer, Kay-Peter and Schaper, Mirko}},
  issn         = {{1059-9495}},
  journal      = {{Journal of Materials Engineering and Performance}},
  title        = {{{Correlation between Taylor Model Prediction and Transmission Electron Microscopy-Based Microstructural Investigations of Quasi-In Situ Tensile Deformation of Additively Manufactured FeCo Alloy}}},
  doi          = {{10.1007/s11665-021-06065-9}},
  year         = {{2021}},
}

@article{27509,
  abstract     = {{<jats:sec>
<jats:title content-type="abstract-subheading">Purpose</jats:title>
<jats:p>The currently existing restrictions regarding the deployment of additively manufactured components because of poor surface roughness, porosity and residual stresses as well as their influence on the low-cycle fatigue (LCF) strength are addressed in this paper.</jats:p>
</jats:sec>
<jats:sec>
<jats:title content-type="abstract-subheading">Design/methodology/approach</jats:title>
<jats:p>This study aims to evaluating the effect of different pre- and post-treatments on the LCF strength of additively manufactured 316L parts. Therefore, 316L specimens manufactured by laser powder bed fusion were examined in their as-built state as well as after grinding, or coating with regard to the surface roughness, residual stresses and LCF strength. To differentiate between topographical effects and residual stress-related phenomena, stress-relieved 316L specimens served as a reference throughout the investigations. To enable an alumina coating of the 316L components, atmospheric plasma spraying was used, and the near-surface residual stresses and the surface roughness are measured and investigated.</jats:p>
</jats:sec>
<jats:sec>
<jats:title content-type="abstract-subheading">Findings</jats:title>
<jats:p>The results have shown that the applied pre- and post-treatments such as stress-relief heat treatment, grinding and alumina coating have each led to an increase in LCF strength of the 316L specimens. In contrast, the non-heat-treated specimens predominantly exhibited coating delamination.</jats:p>
</jats:sec>
<jats:sec>
<jats:title content-type="abstract-subheading">Originality/value</jats:title>
<jats:p>To the best of the authors’ knowledge, this is the first study of the correlation between the LCF behavior of additively manufactured uncoated 316L specimens in comparison with additively manufactured 316L specimens with an alumina coating.</jats:p>
</jats:sec>}},
  author       = {{Garthe, Kai-Uwe and Hoyer, Kay-Peter and Hagen, Leif and Tillmann, Wolfgang and Schaper, Mirko}},
  issn         = {{1355-2546}},
  journal      = {{Rapid Prototyping Journal}},
  title        = {{{Correlation between pre- and post-treatments of additively manufactured 316L parts and the resulting low cycle fatigue behavior}}},
  doi          = {{10.1108/rpj-01-2021-0017}},
  year         = {{2021}},
}

@article{24087,
  abstract     = {{Resorbable implants are highly beneficial to reduce patient burden since they need not be removed after a defined period. Currently, magnesium (Mg) and polymers are being applied as bioresorbable materials. However, for some applications the insufficient mechanical properties and high degradation rate of Mg cause the need for new materials. Iron (Fe)-based alloys are promising due to their biocompatibility and good mechanical properties, but their degradation rate is too low and needs to be adapted eg. via alloying with manganese (Mn). Besides, phases with high electrochemical potential lead to increased degradation of residual material with lower potential based on the galvanic coupling. Here, silver (Ag) is promising for the formation of such phases due to its high electrochemical potential (+0.8 V vs. SHE), immiscibility with Fe, biocompatibility, and anti-bacterial properties. Since remaining silver particles can lead to adverse consequences as thrombosis, these particles need to dissolve after the matrix material. Thus a silver alloy with high electrochemical potential, biocompatibility, and adjusted degradation behavior is required as an additive for iron-based bioresorbable materials. Several silver alloying systems are possible, but regarding the electrochemical potential and degradation behavior of binary alloys, calcium (Ca) and lanthanum (La) are best-suited considering their biocompatibility. Accordingly, this research addresses AgCa and AgCaLa alloys as additives for iron-based degradable materials with adapted degradation behavior.}},
  author       = {{Krüger, Jan Tobias and Hoyer, Kay-Peter and Filor, Viviane and Pramanik, Sudipta and Kietzmann, Manfred and Meißner, Jessica and Schaper, Mirko}},
  issn         = {{0925-8388}},
  journal      = {{Journal of Alloys and Compounds}},
  title        = {{{Novel AgCa and AgCaLa alloys for Fe-based bioresorbable implants with adapted degradation}}},
  doi          = {{10.1016/j.jallcom.2021.159544}},
  year         = {{2021}},
}

@article{23913,
  abstract     = {{<jats:p>Implementing the concept of mixed construction in modern automotive engineering requires the joining of sheet metal or extruded profiles with cast components made from different materials. As weight reduction is desired, these cast components are usually made from high-strength aluminium alloys of the Al-Si (Mn, Mg) system, which have limited weldability. The mechanical joinability of the cast components depends on their ductility, which is influenced by the microstructure. High-strength cast aluminium alloys have relatively low ductility, which leads to cracking of the joints. This limits the range of applications for cast aluminium alloys. In this study, an aluminium alloy of the Al-Si system AlSi9 is used to investigate relationships between solidification conditions during the sand casting process, microstructure, mechanical properties, and joinability. The demonstrator is a stepped plate with a minimum thickness of 2.0 mm and a maximum thickness of 4.0 mm, whereas the thickness difference between neighbour steps amounts to 0.5 mm. During casting trials, the solidification rates for different plate steps were measured. The microscopic investigations reveal a correlation between solidification rates and microstructure parameters such as secondary dendrite arm spacing. Furthermore, mechanical properties and the mechanical joinability are investigated.</jats:p>}},
  author       = {{Neuser, Moritz and Grydin, Olexandr and Andreiev, Anatolii and Schaper, Mirko}},
  issn         = {{2075-4701}},
  journal      = {{Metals}},
  title        = {{{Effect of Solidification Rates at Sand Casting on the Mechanical Joinability of a Cast Aluminium Alloy}}},
  doi          = {{10.3390/met11081304}},
  year         = {{2021}},
}

@article{24565,
  abstract     = {{<jats:title>Abstract</jats:title><jats:p>Laser surface treatment of metals is one option to improve their properties for adhesive bonding. In this paper, a pulsed YVO4 Laser source with a wavelength of 1064 nm and a maximum power of 25 W was utilized to increase the surface area of the steel HCT490X in order to improve its bonding properties with a carbon fibre reinforced polymer (CFRP). Investigated was the influence of the scanning speed of the laser source on the bonding properties. For this purpose, the steel surfaces were ablated at a scanning speed between 1500 and 4500 mm/s. Afterwards the components were bonded with the adhesive HexBond™ 677. After lap shear tests were carried out on the specimen, the surfaces were inspected using scanning electron microscopy (SEM). The experiments revealed that the bonding quality can be improved with a high scanning speed, even when the surface is not completely ablated.</jats:p>}},
  author       = {{Voswinkel, Dietrich and Kloidt, D. and Grydin, Olexandr and Schaper, Mirko}},
  issn         = {{0944-6524}},
  journal      = {{Production Engineering}},
  number       = {{2}},
  pages        = {{263--270}},
  title        = {{{Time efficient laser modification of steel surfaces for advanced bonding in hybrid materials}}},
  doi          = {{10.1007/s11740-020-01006-2}},
  volume       = {{15}},
  year         = {{2021}},
}

@article{24566,
  author       = {{Engelkemeier, Katja and Sun, Aijia and Voswinkel, Dietrich and Grydin, Olexandr and Schaper, Mirko and Bremser, Wolfgang}},
  issn         = {{2196-0216}},
  journal      = {{ChemElectroChem}},
  pages        = {{2155--2168}},
  publisher    = {{Wiley}},
  title        = {{{Zinc Anodizing: Structural Diversity of Anodic Zinc Oxide Controlled by the Type of Electrolyte}}},
  doi          = {{10.1002/celc.202100216}},
  year         = {{2021}},
}

@article{23897,
  author       = {{Andreiev, Anatolii and Hoyer, Kay-Peter and Dula, Dimitri and Hengsbach, Florian and Grydin, Olexandr and Frolov, Yaroslav and Schaper, Mirko}},
  issn         = {{0921-5093}},
  journal      = {{Materials Science and Engineering: A}},
  title        = {{{Laser beam melting of functionally graded materials with application-adapted tailoring of magnetic and mechanical performance}}},
  doi          = {{10.1016/j.msea.2021.141662}},
  year         = {{2021}},
}

@article{23911,
  author       = {{Pramanik, Sudipta and Andreiev, Anatolii and Hoyer, Kay-Peter and Schaper, Mirko}},
  issn         = {{0142-1123}},
  journal      = {{International Journal of Fatigue}},
  title        = {{{Quasi in-situ analysis of fracture path during cyclic loading of double-edged U notched additively manufactured FeCo alloy}}},
  doi          = {{10.1016/j.ijfatigue.2021.106498}},
  year         = {{2021}},
}

@article{24088,
  author       = {{Pramanik, Sudipta and Tasche, Lennart and Hoyer, Kay-Peter and Schaper, Mirko}},
  issn         = {{2214-8604}},
  journal      = {{Additive Manufacturing}},
  title        = {{{Investigating the microstructure of an additively manufactured FeCo alloy: an electron microscopy study}}},
  doi          = {{10.1016/j.addma.2021.102087}},
  year         = {{2021}},
}

@article{23803,
  author       = {{Reitz, Alexander and Grydin, Olexandr and Schaper, Mirko}},
  journal      = {{Materials Data for Smart Forming Technologies}},
  location     = {{Freiberg}},
  title        = {{{Characterization of phase transformations during graded thermo- mechanical treatment of steel 22MnB5 by means of optical methods }}},
  year         = {{2021}},
}

@proceedings{58117,
  editor       = {{Paschke, Hanno and Lauth, Martin and Schaper, Mirko and Brückner, Tristan and Thewes, Alexander}},
  location     = {{Virtual Conference}},
  title        = {{{Surface modifications reducing the adhesion of aluminum in twin roll casting applications}}},
  year         = {{2021}},
}

@article{41508,
  author       = {{Camberg, Alan Adam and Andreiev, Anatolii and Pramanik, Sudipta and Hoyer, Kay-Peter and Tröster, Thomas and Schaper, Mirko}},
  issn         = {{0921-5093}},
  journal      = {{Materials Science and Engineering: A}},
  keywords     = {{Mechanical Engineering, Mechanics of Materials, Condensed Matter Physics, General Materials Science}},
  publisher    = {{Elsevier BV}},
  title        = {{{Strength enhancement of AlMg sheet metal parts by rapid heating and subsequent cold die stamping of severely cold-rolled blanks}}},
  doi          = {{10.1016/j.msea.2021.142312}},
  volume       = {{831}},
  year         = {{2021}},
}

@article{27700,
  author       = {{Camberg, Alan Adam and Andreiev, Anatolii and Pramanik, Sudipta and Hoyer, Kay-Peter and Tröster, Thomas and Schaper, Mirko}},
  issn         = {{0921-5093}},
  journal      = {{Materials Science and Engineering: A}},
  publisher    = {{Elsevier}},
  title        = {{{Strength enhancement of AlMg sheet metal parts by rapid heating and subsequent cold die stamping of severely cold-rolled blanks}}},
  doi          = {{10.1016/j.msea.2021.142312}},
  year         = {{2021}},
}

@inbook{29086,
  author       = {{Drossel, Welf-G and Bobbert, Mathias and Böhme, Marcus and Dammann, Christian and Dittes, Axel and Gießmann, Mina and Hühne, Christian and Ihlemann, Jörn and Kießling, Robert and Lampke, Thomas and Lenz, Peter and Mahnken, Rolf and Meschut, Gerson and Müller, Roland and Nier, Matthias and Prussak, Robert and Riemer, Matthias and Sander, Sascha and Schaper, Mirko and Scharf, Ingolf and Scholze, Mario and Schwöbel, Stephan-Daniel and Sharafiev, Semen and Sinapius, Michael and Stefaniak, Daniel and Tröster, Thomas and Wagner, Martin F. -X. and Wang, Zheng and Zinn, Carolin}},
  booktitle    = {{Intrinsische Hybridverbunde für Leichtbautragstrukturen}},
  isbn         = {{9783662628324}},
  title        = {{{Hybridprofile für Trag- und Crashstrukturen}}},
  doi          = {{10.1007/978-3-662-62833-1_3}},
  year         = {{2021}},
}

@article{23898,
  author       = {{Andreiev, Anatolii and Hoyer, Kay-Peter and Dula, Dimitri and Hengsbach, Florian and Haase, Michael and Gierse, Jan and Zimmer, Detmar and Tröster, Thomas and Schaper, Mirko}},
  issn         = {{0924-0136}},
  journal      = {{Journal of Materials Processing Technology}},
  title        = {{{Soft-magnetic behavior of laser beam melted FeSi3 alloy with graded cross-section}}},
  doi          = {{10.1016/j.jmatprotec.2021.117183}},
  year         = {{2021}},
}

