Page 45 - IJB-7-2
P. 45

Zhang, et al.
               in Materials Science Fabrication  of NiTi through Additive   Formation Mechanisms and Fatigue Response in Al-Si-Mg
               Manufacturing: A Review. Prog Mater Sci, 83:630–63.  Alloys Made by Selective Laser Melting. Mater Sci Eng A
               https://doi.org/10.1016/j.pmatsci.2016.08.001.      Struct, 712:166–74.
           106.  Shishkovsky I, Yadroitsev I, Smurov I, 2012, Direct Selective   https://doi.org/10.1016/j.msea.2017.11.078.
               Laser Melting of Nitinol Powder. Phys Procedia, 39:447–54.  117.  Prashanth  KG,  Scudino  S,  Eckert  J,  2017,  Defining  the
               https://doi.org/10.1016/j.phpro.2012.10.060.        Tensile  Properties  of Al-12Si Parts Produced by Selective
           107.  Shiva S, Palani IA, Mishra SK, et al., 2015, Investigations   Laser Melting. Acta Mater, 126:25–35.
               on  the  Influence  of  Composition  in  the  Development  of   https://doi.org/10.1016/j.actamat.2016.12.044.
               Ni-Ti Shape Memory  Alloy using Laser Based  Additive   118.  Zhou X, Li K, Zhang D, et al., 2015, Textures Formed in a
               Manufacturing. Opt Laser Technol, 69:44–51.         CoCrMo Alloy by Selective Laser Melting. J Alloys Compd,
               https://doi.org/10.1016/j.optlastec.2014.12.014.    631:153–64.
           108.  Yang Y, Zhan JB, Sui JB, et al., 2020, Functionally Graded   119.  Wang X, Yu J, Liu J, et al., 2020, Effect of Process Parameters
               NiTi  Alloy with Exceptional  Strain-Hardening  Effect   on the Phase Transformation Behavior and Tensile Properties
               Fabricated by SLM Method. Scr Mater, 188:130–4.     of NiTi Shape Memory Alloys Fabricated by Selective Laser
               https://doi.org/10.1016/j.scriptamat.2020.07.019.   Melting. Addit Manuf, 36:101545.
           109.  Saedi S, Turabi A S, Andani MT, et al., 2016, The Influence   https://doi.org/10.1016/j.addma.2020.101545.
               of Heat Treatment on the Thermomechanical Response of Ni-  120.  Ou SF, Peng BY, Chen YC, et al., 2018, Manufacturing and
               Rich NiTi Alloys Manufactured by Selective Laser Melting. J   Characterization of NiTi Alloy with Functional Properties by
               Alloys Compd, 677:204–10.                           Selective Laser Melting. Metals, 8:342.
               https://doi.org/10.1016/j.jallcom.2016.03.161.      https://doi.org/10.3390/met8050342.
           110.  Imran M, Zhang X, 2020, Recent Developments on the Cyclic   121.  Kaur M, Singh K, 2019, Review on Titanium and Titanium
               Stability in Elastocaloric Materials. Mater Des, 195:109030.  Based Alloys as Biomaterials for Orthopaedic Applications.
               https://doi.org/10.1016/j.matdes.2020.109030.       Mater Sci Eng C, 102:844–62.
           111.  Dadbakhsh S, Speirs M, Kruth JP, et al., 2015, Influence of   122.  Moghaddam NS, Saghaian SE,  Amerinatanzi  A,  et al.,
               SLM on Shape Memory and Compression Behaviour of NiTi   2018, Anisotropic Tensile and Actuation Properties of NiTi
               Scaffolds. CIRP Ann Manuf Technol, 64(1):209–12.    Fabricated  with Selective  Laser Melting.  Mater Sci Eng A
               https://doi.org/10.1016/j.cirp.2015.04.039.         Struct, 724:220–30.
           112.  Bormann T, Schulz  G, Deyhle H,  et  al., 2014, Combining   https://doi.org/10.1016/j.msea.2018.03.072.
               Micro  Computed Tomography  and Three-Dimensional   123.  Bayati P, Jahadakbar A, Barati M, et al., 2020, Toward Low
               Registration to Evaluate  Local Strains in Shape Memory   and High Cycle Fatigue Behavior of SLM-Fabricated NiTi:
               Scaffolds. Acta Biomater, 10:1024–34.               Considering the Effect of Build Orientation and Employing a
               https://doi.org/10.1016/j.actbio.2013.11.007.       Self-Heating Approach. Int J Mech Sci, 185:105878.
           113.  Andani MT, Saedi S, Turabi AS, et al., 2017, Mechanical and   https://doi.org/10.1016/j.ijmecsci.2020.105878.
               Shape Memory Properties of Porous  Ni50.1Ti49.9  Alloys   124.  Zhang Q, Hao S, Liu Y, et al., 2020, The Microstructure of
               Manufactured by Selective  Laser Melting.  J Mech Behav   a Selective  Laser Melting (SLM)-Fabricated NiTi Shape
               Biomed, 68:224–31.                                  Memory  Alloy with Superior  Tensile Property and Shape
               https://doi.org/10.1016/j.jmbbm.2017.01.047.        Memory Recoverability. Appl Mater Today, 19:100547.
           114.  Ma C, Gu D, Lin K, et al., 2019, Selective Laser Melting   https://doi.org/10.1016/j.apmt.2019.100547.
               Additive Manufacturing of Cancer pagurus’s Claw Inspired   125.  Koike  M, Martinez  K, Guo L,  et  al., 2011, Evaluation  of
               Bionic Structures with High Strength and Toughness. Appl   Titanium  Alloy  Fabricated  using Electron  Beam  Melting
               Surf Sci, 469:647–56.                               System  for Dental Applications.  J  Mater  Process Technol,
               https://doi.org/10.1016/j.apsusc.2018.11.026.       211:1400–8.
           115.  Xiong Z, Li Z, Sun Z, et al., 2019, Selective Laser Melting   126.  Speirs M, van Hooreweder B, van Humbeeck J, et al., 2017,
               of NiTi  Alloy with Superior  Tensile Property and Shape   Fatigue Behaviour of NiTi Shape Memory Alloy Scaffolds
               Memory Effect. J Mater Sci Technol, 35:2238–42.     Produced by SLM, a Unit Cell Design Comparison. J Mech
               https://doi.org/10.1016/j.jmst.2019.05.015.         Behav Biomed, 70:53–59.
           116.  Yang KV, Rometsch  P, Jarvis  T,  et  al., 2018, Porosity   https://doi.org/10.1016/j.jmbbm.2017.01.016.

                                       International Journal of Bioprinting (2021)–Volume 7, Issue 2        41
   40   41   42   43   44   45   46   47   48   49   50