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Titanium particulate reinforced AZ31 magnesium matrix composites with improved ductility prepared using friction stir processing

机译:钛颗粒增强的AZ31镁基增强复合材料,采用摩擦搅拌工艺制备,具有改善的延展性

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摘要

Conventional ceramic particulate reinforcements cause a major loss in ductility of magnesium matrix composites (MMCs). Metallic particles possessing higher melting point can offer a solution to this issue. Titanium (Ti) particles (0,7,14 and 21 vol%) were reinforced into magnesium alloy AZ31 using friction stir processing (FSP) performed by a conventional sturdy vertical milling machine. The microstructure and the tensile behavior of the fabricated composites were studied in detail. The micrographs revealed a uniform distribution of Ti particles all over the stir zone irrespective of the volume content of Ti. Ti particles did not decompose or react with the matrix and its alloying elements. Ti particles established a proper interface with the matrix AZ31. Ti particles survived the severe plastic strain without breakage. The grains in the matrix were refined extremely because of dynamic recrystallization and the pinning effect of Ti particles. A large number of dislocations are found in the composite. Ti particles improved the tensile strength of the composite and helped to retain appreciable ductility.
机译:传统的陶瓷颗粒增强剂会导致镁基复合材料(MMC)延展性的重大损失。具有较高熔点的金属颗粒可以解决这个问题。钛(Ti)颗粒(0、7、14和21 vol%)通过常规坚固的立式铣床进行的摩擦搅拌处理(FSP)增强为镁合金AZ31。详细研究了复合材料的微观结构和拉伸性能。显微照片显示,与钛的体积含量无关,钛颗粒在整个搅拌区均匀分布。 Ti颗粒不会分解或与基体及其合金元素发生反应。 Ti颗粒与基体AZ31建立了适当的界面。钛颗粒经受住了严重的塑性应变而没有破裂。由于动态再结晶和Ti颗粒的钉扎作用,基体中的晶粒得到了极大的细化。在复合材料中发现了大量的位错。钛颗粒提高了复合材料的拉伸强度,并有助于保持明显的延展性。

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