(山東科技大學(xué) 材料科學(xué)與工程學(xué)院,青島 266590)
摘 要: 采用熱爆合成-自發(fā)熔滲方法快速制備TiC/Fe3Al復(fù)合材料,通過(guò)相組成和顯微組織的演變分析復(fù)合材料的形成過(guò)程,探討TiC的生成及長(zhǎng)大機(jī)制,并對(duì)復(fù)合材料的滑動(dòng)摩擦磨損性能進(jìn)行研究。結(jié)果表明:Ti、C熱爆合成為T(mén)iC多孔壓坯,F(xiàn)e3Al熔體自發(fā)滲入壓坯孔隙;TiC在熔體中進(jìn)行溶解-析出,結(jié)晶為初生TiC和共晶TiC。進(jìn)入TiC晶格的Fe優(yōu)先吸附在{100}晶面上,使其表面能降低,初生TiC形貌由{111}八面體轉(zhuǎn)變?yōu)閧100}立方體。TiC生長(zhǎng)機(jī)制為小平面晶的臺(tái)階側(cè)向生長(zhǎng),自發(fā)熔滲較快的冷卻速度使生長(zhǎng)臺(tái)階增多,形成疊層生長(zhǎng)。TiC/Fe3Al復(fù)合材料的滑動(dòng)磨損率為2.7×10-7 g/s,比Fe3Al的下降31.7%。磨損機(jī)理研究表明TiC有效抑制了剝層磨損,使復(fù)合材料的耐磨損性能提高。
關(guān)鍵字: TiC/Fe3Al;熱爆合成;自發(fā)熔滲;生長(zhǎng)機(jī)制;磨損
(College of Materials Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, China)
Abstract:TiC/Fe3Al composites were fabricated rapidly by the combination of thermal explosion synthesis and spontaneous melt infiltration. The formation mechanism based on the phase composition and microstructure evolution process, TiC growth mechanism, sliding friction and wear properties of the resultant materials were investigated systematically. The molten Fe3Al spontaneously infiltrates the pores of porous TiC compacts prepared by thermal explosion synthesis using Ti and C powders, resulting in the creation of TiC/Fe3Al composites. The formation of TiC in final products can be attributed to dissolution-precipitation mechanism, i.e., TiC dissolves in Fe3Al melt and decomposes into Ti and C, the latter reacts in the molten pool and precipitates the primary TiC and eutectic TiC during the cooling process. Fe atoms can enter the TiC lattice and be adsorbed preferentially at the {100} crystal plane, giving rise to reduce the surface energy of the {100} plane, so, the morphology of primary TiC changes from {111} octahedron to {100} cube. The TiC growth pattern is lateral growth of facet crystals, tending to grow layer by layer depend on more growth steps provided by the high cooling rate during the fabricate process. The sliding wear rate of TiC/Fe3Al composites is 2.7×10-7 g/s, decreased by 31.7% compared with that of Fe3Al. The wear mechanism indicates that the wear resistance of the composites can be improved noticeably because the addition of TiC may effectively inhibit the delamination wear.
Key words: TiC/Fe3Al; thermal explosion synthesis; pressureless melt infiltration; growth mechanism; wear


