Robust mechanical properties and corrosion resistance of new low-cost hot-forged and aged β-type Ti–14Mn–(x)Zr alloys

Low-cost β-type Ti–14Mn–(x)Zr (x = 0, 3, or 6 wt%) alloys were developed and prepared using single-electrode arc furnace, and the effects of the zirconium (Zr) content and thermomechanical treatment on the phase stability, microstructural evolution, hardness, compressive stress, and corrosion resist...

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Veröffentlicht in:Journal of alloys and compounds 2022-05, Vol.904, p.164098, Article 164098
Hauptverfasser: Awad, Ahmed H., El-Hofy, Hassan A., Chiba, Akihiko, Gepreel, Mohamed Abdel-Hady
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container_start_page 164098
container_title Journal of alloys and compounds
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creator Awad, Ahmed H.
El-Hofy, Hassan A.
Chiba, Akihiko
Gepreel, Mohamed Abdel-Hady
description Low-cost β-type Ti–14Mn–(x)Zr (x = 0, 3, or 6 wt%) alloys were developed and prepared using single-electrode arc furnace, and the effects of the zirconium (Zr) content and thermomechanical treatment on the phase stability, microstructural evolution, hardness, compressive stress, and corrosion resistance of the alloys were studied. The alloy thickness was reduced by approximately 45% by hot forging at 900 °C and were then water quenched and subsequently aged at 500 or 700 °C for different times. The combination of the proper Zr content, hot forging, and aging improved the alloy hardness, strength, and ductility. The dual (α + β) structure formed in the 6Zr alloy forged and then aged at 700 °C for 60 ks resulted in a high compressive yield stress of 1127 MPa and malleability above 70%. The forged and annealed alloys exhibited superior properties to commercial Ti–6Al–4 V (lower cost, corrosion resistance, and mechanical properties). The study findings elucidate the relationship between the composition and processing properties of low-cost Ti–14Mn–(x)Zr alloys for potential biomedical applications. •Hot forging then water quenching froze microstructure to maintain alloy slip bands.•Mechanical and corrosion properties improved by increasing Zr content in Ti–14Mn.•(α + β) 6Zr alloy attained 1127-MPa compressive yield stress and>70% malleability.•Hot-forged/annealed alloy properties were thermomechanically manipulated.•Manipulated properties comparable to those of commercially pure Ti and Ti–6Al–4V.
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The alloy thickness was reduced by approximately 45% by hot forging at 900 °C and were then water quenched and subsequently aged at 500 or 700 °C for different times. The combination of the proper Zr content, hot forging, and aging improved the alloy hardness, strength, and ductility. The dual (α + β) structure formed in the 6Zr alloy forged and then aged at 700 °C for 60 ks resulted in a high compressive yield stress of 1127 MPa and malleability above 70%. The forged and annealed alloys exhibited superior properties to commercial Ti–6Al–4 V (lower cost, corrosion resistance, and mechanical properties). The study findings elucidate the relationship between the composition and processing properties of low-cost Ti–14Mn–(x)Zr alloys for potential biomedical applications. •Hot forging then water quenching froze microstructure to maintain alloy slip bands.•Mechanical and corrosion properties improved by increasing Zr content in Ti–14Mn.•(α + β) 6Zr alloy attained 1127-MPa compressive yield stress and&gt;70% malleability.•Hot-forged/annealed alloy properties were thermomechanically manipulated.•Manipulated properties comparable to those of commercially pure Ti and Ti–6Al–4V.</description><identifier>ISSN: 0925-8388</identifier><identifier>EISSN: 1873-4669</identifier><identifier>DOI: 10.1016/j.jallcom.2022.164098</identifier><language>eng</language><publisher>Lausanne: Elsevier B.V</publisher><subject>Aging ; Aging (metallurgy) ; Alloys ; Biomedical materials ; Compressive properties ; Compressive strength ; Corrosion resistance ; Electric arc furnaces ; Hardness ; Hot forging ; Low cost ; Mechanical properties ; Phase stability ; Thermomechanical treatment ; Titanium ; Yield stress ; Zirconium base alloys ; Zr content ; β-Ti alloy</subject><ispartof>Journal of alloys and compounds, 2022-05, Vol.904, p.164098, Article 164098</ispartof><rights>2022 Elsevier B.V.</rights><rights>Copyright Elsevier BV May 25, 2022</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c337t-441d50f9eb527c69d3aac6df585a3149e9fd84cc98744178404226f8bc4810263</citedby><cites>FETCH-LOGICAL-c337t-441d50f9eb527c69d3aac6df585a3149e9fd84cc98744178404226f8bc4810263</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://www.sciencedirect.com/science/article/pii/S0925838822004893$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>314,776,780,3537,27901,27902,65306</link.rule.ids></links><search><creatorcontrib>Awad, Ahmed H.</creatorcontrib><creatorcontrib>El-Hofy, Hassan A.</creatorcontrib><creatorcontrib>Chiba, Akihiko</creatorcontrib><creatorcontrib>Gepreel, Mohamed Abdel-Hady</creatorcontrib><title>Robust mechanical properties and corrosion resistance of new low-cost hot-forged and aged β-type Ti–14Mn–(x)Zr alloys</title><title>Journal of alloys and compounds</title><description>Low-cost β-type Ti–14Mn–(x)Zr (x = 0, 3, or 6 wt%) alloys were developed and prepared using single-electrode arc furnace, and the effects of the zirconium (Zr) content and thermomechanical treatment on the phase stability, microstructural evolution, hardness, compressive stress, and corrosion resistance of the alloys were studied. 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subjects Aging
Aging (metallurgy)
Alloys
Biomedical materials
Compressive properties
Compressive strength
Corrosion resistance
Electric arc furnaces
Hardness
Hot forging
Low cost
Mechanical properties
Phase stability
Thermomechanical treatment
Titanium
Yield stress
Zirconium base alloys
Zr content
β-Ti alloy
title Robust mechanical properties and corrosion resistance of new low-cost hot-forged and aged β-type Ti–14Mn–(x)Zr alloys
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