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首页> 外文期刊>Tribology Transactions >Tribological Behavior of an Aluminum Matrix Composite with Al4SiC4 Reinforcement under Dry Sliding Condition
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Tribological Behavior of an Aluminum Matrix Composite with Al4SiC4 Reinforcement under Dry Sliding Condition

机译:干滑条件下Al4SiC4增强铝基复合材料的摩擦学行为

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In the present research work, an aluminum-based metal matrix composite with in situ Al4SiC4 particles has been developed by the incorporation of TiC particles in commercial aluminum melt through a stir-casting method. Microstructure evaluation in correlation to developed hardness and mechanical properties was performed. Furthermore, the dry sliding wear behavior of commercial aluminum and commercial aluminum-5 vol% Al4SiC4 composite was investigated at low sliding speed (1 ms(-1)) against a hardened EN 31 disk at different loads. The wear mechanism involved adhesion and microcutting-abrasion at lower loads. On the other hand, at higher loads, abrasive wear involving microcutting along with adherent oxide formation was observed. The overall wear rate increased with load in the alloy as well as in the composite. Moreover, the overall wear rate of the composite was lower than that of the commercial aluminum at all applied loads.` The severe wear region at 39.2 N load in the case of the commercial aluminum-5 vol% Al4SiC4 composite was found to be delayed up to a longer sliding distance compared to commercial aluminum. The in situ Al4SiC4 particles offered resistance to adhesive wear. Accordingly, the commercial aluminum-5 vol% Al4SiC4 composite exhibited superior wear resistance compared to the commercial aluminum.
机译:在当前的研究工作中,通过将TiC颗粒通过搅拌铸造法掺入商业铝熔体中,开发了具有原位Al4SiC4颗粒的铝基金属基复合材料。进行了与已开发的硬度和机械性能相关的微观结构评估。此外,研究了商用铝和商用铝5 vol%Al4SiC4复合材料在低滑动速度(1 ms(-1))下在不同载荷下对硬化的EN 31盘的干式滑动磨损行为。磨损机理涉及在较低载荷下的附着力和微切削磨损。另一方面,在较高的载荷下,观察到涉及微观切削以及粘附氧化物形成的磨料磨损。整体磨损率随合金以及复合材料中的载荷而增加。此外,在所有施加的负载下,复合材料的整体磨损率均低于商用铝。`发现在商用铝含量为5vol%的Al4SiC4复合材料的情况下,在39.2 N负载下的严重磨损区域被延迟了。与商用铝相比,具有更长的滑动距离。原位Al4SiC4颗粒可抵抗粘合剂磨损。因此,与商品铝相比,商品铝5体积%的Al 4 SiC 4复合材料表现出优异的耐磨性。

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