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首页> 外文期刊>Key Engineering Materials >Mechanical Alloying of Ti-Al-Si-C Powders, Their Thermal Stability, Phase Evolution, and Synthesis and Deformation of In Situ Produced Titanium Aluminide Composites
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Mechanical Alloying of Ti-Al-Si-C Powders, Their Thermal Stability, Phase Evolution, and Synthesis and Deformation of In Situ Produced Titanium Aluminide Composites

机译:Ti-Al-Si-C粉末的机械合金化,热稳定性,相变以及原位生产的铝化钛复合材料的合成和变形

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摘要

Addition of silicon promotes the development of a stable phase Ti_5Si_3 through thermo-mechanical treatment in TiAl-based alloys develop, while carbon seems to be a promising element for generating both solid solution effect and dispersion strengthening by precipitation of TiC or Ti_2AlC during subsequent processing of such alloys. In this study, elemental powder mixture of 58Ti-30Al-6Si-6C (at%) was selected to find the structural changes during mechanical alloying (MA) process in order to understand the mechanism of alloying as well as study the subsequent thermal stability and evolution of phases. The results obtained would be useful towards in situ synthesis of titanium aluminide composites that are targeted to serve applications involving high tempearture. Such route will enable precipitation of harder Ti_5Si_3 and TiC particles within a matrix of TiAl through hot isostatic pressing (HIP). Firstly, MA of the chosen powder mix was performed up to 40 hours. The structural evolution of MA powders and/or annealed powders was characterized by X-ray diffraction (XRD). The stability of milled powders was investigated by differential scanning calorimetry (DSC) to study the phase transformations. Then, 10% of MA powder or the so called 'precursor' was incorporated into Ti-45Al-2Cr-4Nb-1.5Mn (at%) baseline matrix or baseline elemental powder, and was packed into stainless steel tubes after thorough blending. The sealed tubes were subjected to HIPing under a pressure of 150 MPa at 1100℃ for 4 hours, followed by furnace cooling to room temperature. After HIPing, the resulted composites were annealed at 1150℃ for 4 hours. The composites were evaluated for their mechanical properties and deformability at room and elevated temperatures. The results indicate that the synthesized composites have indicated extensive workability at a temperature of 800 ℃ as well as good mechanical proporties up to this temperature.
机译:通过在TiAl基合金中进行热机械处理,硅的添加促进了稳定相Ti_5Si_3的发展,而碳似乎是一种有前途的元素,可通过固溶效果和在随后的TiC加工过程中通过沉淀TiC或Ti_2AlC来产生弥散强化。这样的合金。在这项研究中,选择58Ti-30Al-6Si-6C(at%)的元素粉末混合物来发现机械合金化(MA)过程中的结构变化,以便了解合金化的机理以及研究随后的热稳定性和阶段的演变。获得的结果对于原位合成旨在用于涉及高温应用的铝化钛复合材料将是有用的。这样的途径将使得能够通过热等静压(HIP)在TiAl的基质内沉淀出较硬的Ti_5Si_3和TiC颗粒。首先,对所选粉末混合物进行MA长达40小时。 MA粉末和/或退火粉末的结构演变通过X射线衍射(XRD)表征。通过差示扫描量热法(DSC)研究了研磨粉的稳定性,以研究相变。然后,将10%的MA粉或所谓的“前体”掺入Ti-45Al-2Cr-4Nb-1.5Mn(at%)基准基质或基准元素粉末中,并在彻底混合后装入不锈钢管中。将密封的管在1100℃下在150MPa的压力下进行HIP处理4小时,然后将炉冷却至室温。热压后,将所得复合材料在1150℃退火4小时。评价了复合材料在室温和高温下的机械性能和可变形性。结果表明,合成的复合材料在800℃的温度下具有广泛的可加工性,并且在该温度下具有良好的机械性能。

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