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The abrasive wear of sintered titanium matrix-ceramic particle reinforced composites

机译:烧结钛基陶瓷颗粒增强复合材料的磨粒磨损

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Particulate (TiC, TiB_2 or Si_3N_4) reinforced Ti composites were produced by vacuum sintering (at 1400 deg C for 2 h). Ti + TiC Composites could be sintered to high fractional densities (> 93precent), even at high TiC loadings (e.g., 40 volume percent (volprecent)). No reactions were observed to occur between the Ti and TiC. By contrast, the Ti and TiB_2 and Ti and Si_3N_4 reacted to form composites consisting of Ti, TiB and TiB_2 and #alpha#-Ti(N), Ti_5Si_3, Ti_3Si, and Ti_2N, respectively. As a consequence, Ti was consumed and/or the reaction products intrinsically generated porosity during sintering. These composites were more difficult to consolidate via solid state sintering, particularly at higher volume fractions. Despite the porosity, the composites were more wear resistant (pin-on-drum abrasive wear against 100 #mu#m garnet particles) than unreinforced Ti, with the exception of the Ti + 2.5 volprecent TiB_2 and Ti + <= 10 volprecent TiC composites. The ranking of microhardness and abrasion wear resistance of the composites was as follows: (hardest, most wear resistant) Ti + Si_3N_4 (i.e., #alpha#-Ti(N), +Ti+5Si+3, Ti+3Si, and Ti_2N) Ti+TiB_2Ti+TiC (softest, least wear resistant). The microhardness coupled with the apparent strength of the chemical interface that developed between the constituent composite phases was responsible for the observed wear behavior.
机译:通过真空烧结(在1400摄氏度下2 h)生产出颗粒状(TiC,TiB_2或Si_3N_4)增强的Ti复合材料。即使在高TiC负载下(例如40%(体积)),Ti + TiC复合材料也可以烧结到高分数密度(> 93%)。在Ti和TiC之间未观察到反应发生。相反,Ti和TiB_2以及Ti和Si_3N_4反应形成分别由Ti,TiB和TiB_2和#alpha#-Ti(N),Ti_5Si_3,Ti_3Si和Ti_2N组成的复合物。结果,Ti被消耗和/或反应产物在烧结过程中固有地产生孔隙。这些复合材料更难以通过固态烧结进行固结,特别是在较高的体积分数下。尽管存在孔隙,该复合材料比未增强的Ti更具耐磨性(对100#μ#m石榴石颗粒的针鼓磨损),但Ti + 2.5体积分数的TiB_2和Ti + <= 10体积分数的TiC复合材料除外。复合材料的显微硬度和耐磨性等级如下:(最硬,最耐磨)Ti + Si_3N_4(即,#alpha#-Ti(N),+ Ti + 5Si + 3,Ti + 3Si和Ti_2N )>> Ti + TiB_2 >> Ti + TiC(最柔软,耐磨性最低)。显微硬度与组成复合相之间形成的化学界面的表观强度有关,是观察到的磨损行为的原因。

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