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Effect of counter surface temperature and load on the transition from mild to severe wear behavior of Al-Si-SiC_p composites in reciprocating conditions

机译:往复运动条件下表面温度和载荷对Al-Si-SiC_p复合材料从轻度到严重磨损行为转变的影响

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In the present paper, the effect of counter surface temperature and load on the transition from mild to severe wear of A319/15%SiC_p, A336/15%SiC_p, and A390/15%SiC_p composites have been reported. Composites were produced through stir casting route. Adhesive wear behavior of composites was studied under dry reciprocating conditions using indigenously developed reciprocating friction wear test rig conforming to ASTM standard G133-05. It was found that increase in counter surface temperature increases wear rate and depending upon the load and type of composite mode of wear changes from mild oxidative to severe metallic wear noticed. At 120N load, the critical transition temperature for all the three Al-Si-SiC_p composites was found to be 350℃. SEM study of wear surface and wear debris was conducted to analyze the mode of wear and operating wear mechanism. Severe wear was characterized by massive plastic deformation and gross material removal while the mild wear was found to be associated with delamination and scoring as main wear mechanisms responsible for material loss.
机译:在本文中,已经报道了相反的表面温度和载荷对A319 / 15%SiC_p,A336 / 15%SiC_p和A390 / 15%SiC_p复合材料从轻度到严重磨损的转变的影响。通过搅拌铸造路线生产复合材料。使用符合ASTM标准G133-05的本地开发的往复式摩擦磨损试验机,在干燥往复条件下研究了复合材料的粘合磨损行为。已经发现,相对表面温度的增加会增加磨损率,并且取决于载荷和复合磨损方式的类型,注意到从轻度氧化到严重金属磨损的变化。在120N负载下,三种Al-Si-SiC_p复合材料的临界转变温度均为350℃。进行了磨损表面和磨损碎片的SEM研究,以分析磨损方式和运行磨损机理。严重磨损的特征是大量塑性变形和总的材料去除,而轻度磨损则与分层和刻痕有关,这是造成材料损失的主要磨损机制。

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