Author:
Huang Chih-Chieh,Lam Tu-Ngoc,Amalia Lia,Chen Kuan-Hung,Yang Kuo-Yi,Muslih M. Rifai,Singh Sudhanshu Shekhar,Tsai Pei-I.,Lee Yuan-Tzu,Jain Jayant,Lee Soo Yeol,Lai Hong-Jen,Huang Wei-Chin,Chen San-Yuan,Huang E-Wen
Abstract
AbstractWe demonstrated the design of pre-additive manufacturing microalloying elements in tuning the microstructure of iron (Fe)-based alloys for their tunable mechanical properties. We tailored the microalloying stoichiometry of the feedstock to control the grain sizes of the metallic alloy systems. Two specific microalloying stoichiometries were reported, namely biodegradable iron powder with 99.5% purity (BDFe) and that with 98.5% (BDFe-Mo). Compared with the BDFe, the BDFe-Mo powder was found to have lower coefficient of thermal expansion (CTE) value and better oxidation resistance during consecutive heating and cooling cycles. The selective laser melting (SLM)-built BDFe-Mo exhibited high ultimate tensile strength (UTS) of 1200 MPa and fair elongation of 13.5%, while the SLM-built BDFe alloy revealed a much lower UTS of 495 MPa and a relatively better elongation of 17.5%, indicating the strength enhancement compared with the other biodegradable systems. Such an enhanced mechanical behavior in the BDFe-Mo was assigned to the dominant mechanism of ferrite grain refinement coupled with precipitate strengthening. Our findings suggest the tunability of outstanding strength-ductility combination by tailoring the pre-additive manufacturing microalloying elements with their proper concentrations.
Funder
National Research Foundation of Korea
Ministry of Science and Technology, Taiwan
Publisher
Springer Science and Business Media LLC
Reference79 articles.
1. Costello, K. & Rimol M. Gartner Identifies Five Emerging Trends That Will Drive Technology Innovation for the Next Decade. 2020: STAMFORD, Conn. p. https://www.gartner.com/en/newsroom/press-releases/2020-08-18-gartner-identifies-five-emerging-trends-that-will-drive-technology-innovation-for-the-next-decade.
2. Middleton, J. C. & Tipton, A. J. Synthetic biodegradable polymers as orthopedic devices. Biomaterials 21(23), 2335–2346 (2000).
3. Gilding, D. K. & Reed, A. M. Biodegradable polymers for use in surgery—polyglycolic/poly(actic acid) homo- and copolymers: 1. Polymer 20(12), 1459–1464 (1979).
4. Cha, P.-R. et al. Biodegradability engineering of biodegradable Mg alloys: Tailoring the electrochemical properties and microstructure of constituent phases. Sci. Rep. 3(1), 2367 (2013).
5. Yang, H. et al. Alloying design of biodegradable zinc as promising bone implants for load-bearing applications. Nat. Commun. 11(1), 401 (2020).
Cited by
15 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献