238
Views
1
CrossRef citations to date
0
Altmetric
Research Articles

Study of NiAl-based alloy parts produced by metal injection moulding

, , &
Pages 52-60 | Received 12 Nov 2020, Accepted 08 May 2021, Published online: 19 May 2021

References

  • Kaplanskii YY, Zaitsev AA, Levashov EA, et al. NiAl based alloy produced by HIP and SLM of pre-alloyed spherical powders. Evolution of the structure and mechanical behavior at high temperatures. Mater Sci Eng A. 2018;717:48–59.
  • Caccuri V, Desmorat R, Cormier J. Tensorial- nature of γ′-rafting evolution in nickel-based single crystal superalloys. Acta Mater. 2018;158:138–154.
  • Wang W, Zhu G, Wang R, et al. Novel in situ synthesized carbide reinforced Ni base composite for structural castings with high creep resistance. Mater Des. 2019;172:1–8.
  • Cao L, Wollgramm P, Bürger D, et al. How evolving multiaxial stress states affect the kinetics of rafting during creep of single crystal Ni-base superalloys. Acta Mater. 2018;158:381–392.
  • Cho K, Ikeda K, Yasuda HY, et al. Improvement of room and high temperature tensile properties of NiAl-strengthened ferritic heat-resistant steels through Mo addition. Mater Sci Eng A. 2018;728:239–250.
  • Varona-Caballero A, Milenkovic S, Jabbari-Taleghani MA, et al. Mechanical alloying and field assisted hot pressing of nanocrystalline B2-NiAl intermetallic compound. Powder Metall. 2014;57(3):212–219.
  • Geist D, Gammer C, Rentenberger C, et al. Sessile dislocations by reactions in NiAl severely deformed at room temperature. J Alloys Compd. 2015;621:371–377.
  • Tong Z, Bao H. Decompose the electron and phonon thermal transport of intermetallic compounds NiAl and Ni3Al by first-principles calculations. Inter J Heat Mass Transfer. 2018;117:972–977.
  • Wang L, Shen J, Zhang G, et al. Stability of lamellar structure of directionally solidified NiAl-28Cr-6Mo eutectic alloy at different withdrawal rates and temperatures. Intermetallics. 2018;94:83–91.
  • Fan GH, Wang QW, Du Y, et al. Producing laminated NiAl with bimodal distribution of grain size by solid–liquid reaction treatment. Mater Sci Eng A. 2014;590:318–322.
  • Wei N C, Ma L, et al. Porous TiC–TiB2–NiAl composites and effect of NiAl contents on pore structure and microstructure. Powder Metall. 2015;58(4):273–280.
  • Povarova KB, Drozdov AA, Bazyleva OA, et al. Structural heat-resistant β-NiAl + γ′-Ni3Al alloys of the Ni–Al–Co system: I. Solidification and structure. Russ Metall. 2017;9:696–705.
  • Wang L, Zhang G, Shen J, et al. A true change of NiAl-Cr(Mo) eutectic lamellar structure during high temperature treatment. J Alloys Compd. 2018;732:124–128.
  • Colín J, Serna S, Campillo B, et al. Microstructural and lattice parameter study of as-cast and rapidly solidified NiAl intermetallic alloys with Cu additions. Intermetallics. 2008;16(7):847–853.
  • Cui Y, Chen H, Yang G, et al. Molecular dynamics simulations of lattice site preference and phase separation in B2-NiAl with Pt addition. J Alloys Compd. 2018;740:863–869.
  • Liu E, Jia J, Bai Y, et al. Study on preparation and mechanical property of nanocrystalline NiAl intermetallic. Mater Des. 2014;53:596–601.
  • Andasmas M, Chauveau T, Fagnon N, et al. Synthesis of NiAl intermetallics from cold-extruded samples. Intermetallics. 2013;32:137–144.
  • Hu W, Huang Z, Cai L, et al. Microstructural characterization and mechanical properties of a novel TiC-based cermet bonded with Ni3(Al,Ti) and NiAl duplexalloy. Mater Charact. 2018;135:295–302.
  • Xue B, Jing P, Ma W. Tribological properties of NiAl matrix composites filled with serpentine powders. J Mater Eng Perfor. 2017;26(12):5816–5824.
  • Kellner M, Kunz W, Steinmetz P, et al. Phase-field study of dynamic velocity variations during directional solidification of eutectic, NiAl-34Cr. Computa Mater Sci. 2018;145:291–305.
  • Albiez J, Sprenger I, Seemüller C, et al. Physically motivated model for creep of directionally solidified eutectics evaluated for the intermetallic NiAl–9Mo. Acta Mater. 2016;110:377–385.
  • Barabash RI, Liu W, Tischler JZ, et al. Phase-specific elastic/plastic interface interactions in layered NiAl–Cr(Mo) structures. Acta Mater. 2012;60(8):3279–3286.
  • Sheng LY, Zhang W, Guo JT, et al. Microstructure evolution and mechanical properties’ improvement of NiAl–Cr(Mo)–Hf eutectic alloy during suction casting and subsequent HIP treatment. Intermetallics. 2009;17:1115–1119.
  • Liu H, Xuan W, Xie X, et al. Microstructure evolution and room temperature fracture toughness of directionally solidified NiAl–31Cr3Mo–0.2Si near-eutectic alloy at different withdrawal rates. Mater Sci Eng A. 2016;678:243–251.
  • Wang L, Yao C, Shen J, et al. Microstructures and compressive properties of NiAl-Cr(Mo) and NiAl-Cr eutectic alloys with different Fe contents. Mater Sci Eng A. 2019;744:593–603.
  • Thavanayagam G, Swan J E. Aqueous debinding of polyvinyl butyral based binder system for titanium metal injection moulding. Powder Tech. 2018;326:402–410.
  • Holm M, Ebel T, Dahms M, et al. Investigations on Ti–6Al–4V with gadolinium addition fabricated by metal injection moulding. Mater Des. 2013;51:943–948.
  • Sun Z, Qin M, Li R, et al. Preparation of high performance soft magnetic alloy Fe-4Si-0.8P by metal injection molding. Adv Powder Technol. 2017;28(10):2687–2693.
  • Dehghan MA, Stjohn D, Dargusch M, et al. Metal injection moulding of non-spherical titanium powders: processing, microstructure and mechanical properties. J Manuf Process. 2018;31:416–423.
  • Ma J, Qin M, Zhang L, et al. Magnetic properties of Fe–50%Ni alloy fabricated by metal injection moulding. Mater Des. 2013;51:1018–1022.
  • Huai KW, Guo JT, Gao Q, et al. Microstructure and mechanical behavior of NiAl-based alloy prepared by powder metallurgical route. Intermetallics. 2007;15(5–6):749–752.
  • Sheng L, Guo JT, Zhang W, et al. Microstructure and mechanical properties of NiAl–Cr(Mo). Mater Des. 2009;30(4):964–969.
  • Shang Z, Shen J, Liu G, et al. Investigations on the solidification microstructures and room temperature compression properties of Nb-doped NiAl-32Cr-6Mo hypereutectic alloy. Mater Sci Eng A. 2018;723:89–96.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.