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Wear Resistance Increase by Friction Stir Processing for Partial Magnesium Replacement in Aluminium Alloys

机译:耐磨搅拌加工耐磨耐磨耐摩擦加工铝合金替代镁

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In this paper, the influence of friction stir processing (FSP) was evaluated as a way of increasing mechanical properties and a way of replacing the magnesium content in aluminium alloys. FSP was done on AA5754 H111 aluminium alloy, containing 3 % Mg, by using various types of tools and different welding speeds, rotational speeds and tilt angles. Wear test was done against SiC abrasive papers. SiC was used to simulate extreme abrasive wear conditions. The wear test was done on untreated AA5754 specimens, processed AA5754 specimens and untreated AA5083 H111 specimens, the latter containing 4.5 % Mg. AA5083 was chosen as an alternative to AA5754, but with a significantly higher Mg content. Base material microhardness was 60 HV1 and 80 HV1 for AA5754 and AA5083 alloys respectively. To find the effect of FSP on AA5754 alloy, microstructures were studied, mainly grain size in the stir zone. It was found, that an elevated processing and rotational speed, without tilt angle and the tool without a reservoir resulted in an increase in hardness of the AA5754 to 70 HV1, but with the occurrence of tunneling defect and the wear rate of 79.3 mg. Lower FSP parameters and a tilted tool with a reservoir resulted in microhardness of 68 HV1 and wear rate of 68.2 mg without tunneling. These wear values are lower than those obtained with unmodified Al-alloys: AA5754 97.2 mg and AA5083 86.3 mg. An increased wear resistance can be attributed to the combined effect of grain boundary strengthening mechanism and solid solution strengthening, versus only the latter in untreated alloys.
机译:在本文中,评价摩擦搅拌处理(FSP)的影响,以增加机械性能的方式和替代铝合金中镁含量的方式。 FSP在AA5754 H111铝合金上完成,含有3%MG,通过使用各种类型的工具和不同的焊接速度,转速和倾斜角度。磨损测试是针对SiC磨料纸而完成的。 SIC用于模拟极端磨损条件。在未处理的AA5754样本上进行磨损试验,加工AA5754标本和未处理的AA5083 H111标本,后者含有4.5%Mg。选择AA5083作为AA5754的替代方案,但含量明显高。对于AA5754和AA5083合金,基材显微硬度为60HV1和80HV1。为了发现FSP对AA5754合金的影响,研究了微观结构,主要是搅拌区的晶粒尺寸。已经发现,升高的加工和转速,没有倾斜角度和没有储存器的工具导致AA5754至70 HV1的硬度增加,但随着隧道缺陷的发生和磨损率为79.3mg。较低的FSP参数和带储层的倾斜工具导致微硬度为68个HV1,磨损率为68.2毫克,无隧道。这些磨损值低于用未改性的铝合金获得的磨损值:Aa5754 97.2mg和Aa5083 86.3mg。增加的耐磨性可以归因于晶界强化机理和固体溶液强化的综合效果,而不是后者在未处理的合金中。

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