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Wire-based directed energy deposition of NiTiTa shape memory alloys: Microstructure, phase transformation, electrochemistry, X-ray visibility and mechanical properties

机译:NiTiTa形状记忆合金的线基定向能量沉积:微观结构、相变、电化学、X射线可见度和机械性能

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摘要

Wire and arc additive manufacturing (WAAM) technology was used for the fabrication of NiTiTa (2.5 at. % Ta) shape memory alloys (SMAs) for the first time, using commercialy available NiTi wire and Ta foil as the feedstock materials. The addition of Ta significantly increased the phase transformation temperatures, leading to a room -temperature microstructure composed of both B19 ' martensite and B2 austenite, and (Ti,Ta)2Ni precipitates distributed at the grain boundaries. Compared with the WAAM fabricated NiTi counterpart, the corrosion po-tential (Ecorr) of the NiTiTa material increased from -0.55 to -0.44 V, while the corrosion current density (Icorr) decreased from 1.90 x 10-6 to 4.2 x 10- 7 A/cm2. The X-ray brightness increased from 19.6 to 56.4 %. These results indicate that the addition of Ta can enhance the corrosion resistance and X-ray visibility of NiTiTa parts. Furthermore, the WAAM fabricated NiTiTa material was able to retain a stable superelastic response under 10 loading-unloading cycles, highlighting the great potential application value in the biomedical field. Our work provides an innovative method for additively manufacturing NiTi-based multi-component SMAs through WAAM.
机译:线和弧加法制造(WAAM)技术是用于NiTiTa的制造(2.5。第一次使用镍钛丝商务代表和Ta铝箔为原料材料。除了助教显著增加的阶段转变温度,导致一个房间温度都B19组成的微观结构B2的马氏体和奥氏体,(钛、Ta) 2倪沉淀在晶界分布。相比于WAAM镍钛制作的,腐蚀po-tential (Ecorr)NiTiTa材料从-0.55增加到-0.44V,腐蚀电流密度(Icorr)从1.90下降4.2 x 10 - 6 x 10 - 7 /平方厘米。x射线亮度从19.6增加到56.4%。可以提高耐蚀性和x射线能见度NiTiTa部分组成。装配式NiTiTa材料得以保留稳定的超弹性响应下10装卸周期,突显出伟大潜在的生物医学应用价值字段。加法制造位错通过WAAM多组分的sma材料。

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