论文标题
用于超高温度空间和地面应用的Mo-Si-B合金:在各种温度和时间条件下液体辅助制造
Mo-Si-B alloys for ultra-high temperature space and ground applications: liquid assisted fabrication under various temperature and time conditions
论文作者
论文摘要
掺杂硼的钼硅化物已被认为是空间和地面超高温度应用的有吸引力的候选者,这远远超出了最先进的镍超级合金的限制。在这项工作中,我们正在探索一种通过使用无压力的反应熔融浸润方法来制造Mo-Si-B合金(作为涂料或小型组件)的新方法。这种方法的基本假设是通过Si-B融化与钼的直接相互作用的二元和/或三元和复杂的金属间相(硅质,硼化物,硼硅)的合成。这项工作的主要目的是检查Si-B熔体相互作用的温度和时间对形成反应产物的结构和形态的影响。为此,在温度下,在Eutectic Si-3.2b(wt%)合金夫妇(wt%)合金夫妇在1385-1550°C之间进行的秘密滴实验,并在10到30分钟之间保持时间。通过光学显微镜和扫描电子显微镜分析进行固化的串滴伴侣进行显微结构表征,同时在“顶视图”和横截面接口处进行。通过使用TEM/SAED和XRD技术鉴定在相互作用区内形成的相位。据报道,随着Si-B熔体与MO底物的相互作用的升高和时间的升高,主产品层(MOSI2+MO5SI3)的厚度以及富含硼的层的厚度都会增加。
Boron-doped molybdenum silicides have been already recognized as attractive candidates for space and ground ultra-high temperature applications far beyond limits of state-of-the-art nickel based superalloys. In this work, we are exploring a new method for fabricating Mo-Si-B alloys (as coatings or small bulk components) by utilizing a pressure-less reactive melt infiltration approach. The basic assumption of this approach is a synthesis of binary and/or ternary and complex intermetallic phases (silicides, borides, borosilicides), through a direct interaction of Si-B melt with molybdenum . The main purpose of this work, was to examine the effect of temperature and time of Si-B melt interaction on the structure and morphology of the formed reaction products. For this purpose, sessile drop experiments were carried out on the eutectic Si-3.2B (wt%) alloy/Mo couples at temperature varying between 1385-1550°C and holding time between 10 to 30 minutes. The solidified sessile drop couples were subjected to microstructural characterization by means of light microscopy and scanning electron microscopy analyses performed both at "top-view" and cross-sectioned interfaces. The phases formed within the interaction zone were identified by using TEM/SAED and XRD techniques. It was documented that a thickness of both main product layer (MoSi2+Mo5Si3), as well as boron-rich interlayer increases with raising temperature and time of the Si-B melt interaction with Mo substrates.