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Fabrication of high-strength Ti materials by in-process solid solution strengthening of oxygen via P/M methods

机译:通过P / M方法通过过程中固溶氧强化来制造高强度Ti材料

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The applications of Ti and its alloys are limited to high-performance products because of the expensive material cost and poor plastic formability. In order to develop a cost-effective processing route for pure Ti and its alloys, pure Ti powder was used as raw material and consolidated by different powder metallurgy routes in this study. Warm compaction and cold compaction were employed to consolidate Ti powder and spark plasma sintering (SPS) was used as a reference method. The obtained compacts were hot extruded subsequently. The microstructures and mechanical properties of the hot-extruded pure Ti were evaluated. It was found that the samples prepared by warm compaction showed a higher ultimate tensile strength of 973.6 MPa, a better elongation of 26% and a higher Vickers hardness of 389.8 Hv compared with the other two methods. Effects of grain orientation, grain refinement and solid solution strengthening on mechanical properties were discussed. It was found that the main strengthening mechanism for the sample prepared by warm compaction was oxygen solid solution strengthening resulting from in-process in this study. The strengthening effect of oxygen solid solution was calculated as 769.8 MPa/mass% [O].
机译:由于昂贵的材料成本和较差的塑性,Ti及其合金的应用仅限于高性能产品。为了开发一种纯钛及其合金的经济有效的加工路线,本研究以纯钛粉为原料,并通过不同的粉末冶金路线进行固结。使用热压实和冷压实来固结Ti粉,并使用火花等离子体烧结(SPS)作为参考方法。随后将获得的压块热挤出。评价了热挤压纯钛的显微组织和力学性能。发现与其他两种方法相比,通过热压制制备的样品显示出更高的极限抗张强度973.6 MPa,更好的伸长率26%和更高的维氏硬度389.8 Hv。讨论了晶粒取向,晶粒细化和固溶强化对力学性能的影响。研究发现,温压成型样品的主要强化机理是过程中产生的氧固溶体强化。氧固溶体的强化效果经计算为769.8 MPa /质量%[O]。

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