4.5 Article

Selective Laser Melting of 60NiTi Alloy with Superior Wear Resistance

期刊

METALS
卷 12, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/met12040620

关键词

60NiTi alloy; additive manufacturing; selective laser melting; process optimization; wear resistance

资金

  1. Joint Fund of the National Natural Science Foundation Committee and Chinese Academy of Engineering Physics (NSAF) [U2130201]
  2. Natural Science Foundation of China [51971244, 51731010]
  3. Advanced Structural Technology Foundation of China [2020-JCJQ-JJ-024]
  4. Guangdong Basic and Applied Basic Research Foundation [2021A1515011666]

向作者/读者索取更多资源

In this work, 60NiTi alloy was successfully fabricated using selective laser melting (SLM) technology. Optimal parameters of laser power and scanning speed were determined to achieve high quality and appropriate composition. The resulting SLM 60NiTi exhibited high density, low Ni loss, high compression strength, and large reversible strain. It also demonstrated superior wear resistance compared to conventionally cast 60NiTi.
In this work, the selective laser melting (SLM) 60NiTi alloy was successfully fabricated. Through designing an orthogonal experiment of parameters optimization including laser power (P) and scanning speed (v), the optimal parameters window with both high forming quality and appropriate composition proportion was established. The SLM 60NiTi can exhibit high relative density (>98%) and low Ni loss (<0.2 at.%) at the parameter window of P = 80-90 W, v = 300-350 mm/s, and energy density of 145-155 J/mm(3). The optimally-selected SLM 60NiTi exhibits a high compression strength of 2.2 GPa and large reversible strain of 7% due to the reversible stress-induced martensitic transformation of the NiTi phase and the large elastic strain of the Ni4Ti3 phase. It also exhibits superior wear resistance to conventional casting solution treated 60NiTi because the NiTi phase formed in an SLM repeated thermal cycle possesses a lower solution Ni atom and thus lower critical stress for martensitic transformation, and is more prone to undergo martensitic transformation upon friction and wear.

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