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Characterization of Brittle Phase in Magnesium Based Materials Prepared by Powder Metallurgy

机译:粉末冶金制备镁基材料中脆性相的表征

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Magnesium-zinc based materials are characteristic with the creation of intermetallic phases, strongly influencing material mechanical properties. Mg-Zn powder mixture (10 % wt. Zn) was processed by the hot pressing method under 500 MPa at 300 °C. Microstructure of the prepared material was analyzed in terms of light optical microscopy and scanning electron microscopy. Chemical and phase composition of the processed material were analyzed by energy-dispersive X-ray spectroscopy and X-ray powder diffraction, respectively. Microhardness testing was adopted to characterize created structure mechanical properties on the microscopic level. Depending on the Mg-Zn powder mixture local chemical composition, the structural and chemical analysis of the processed material revealed that it consisted of magnesium and zinc rich areas, and MgZn_2 intermetallic phase. The MgZn_2 intermetallic phase belongs to the so-called Laves phases group with the general formula AB_2. Laves phases are characteristic with high hardness and the related high brittleness. Their presence in the material usually results in deterioration of mechanical properties such as strength and toughness. The microhardness of magnesium and zinc rich areas in the processed material was 58±1 HV 0.025 and 47 ±1 HV 0.025, respectively, while the value of the microhardness for MgZn_2 intermetallic phase was 323±12 HV 0.025. Different behavior and mechanical properties of the present phases was observed on the fracture surfaces of specimens broken during the 3-point bend test. While brittle fracture was a characteristic feature for MgZn_2 intermetallic phase, the rest of the material exhibited more ductile fracture behavior with characteristic transgranular failure.
机译:基于镁 - 锌的材料是具有金属间相的产生,强烈影响材料机械性能。通过在300℃下的500MPa下的热压方法加工Mg-Zn粉末混合物(10%wt。Zn)。在光学显微镜和扫描电子显微镜方面分析制备的材料的微观结构。通过能量分散X射线光谱和X射线粉末衍射分析加工材料的化学和相组合物。采用显微硬度检测来表征在微观水平上产生的结构机械性能。取决于Mg-Zn粉末混合物局部化学组成,加工材料的结构和化学分析表明它由富含镁和富锌的区域和MgZN_2金属间相组成。 MgzN_2金属间相对于通式AB_2所属的熔点相组属于所谓的熔化阶段。 Laves阶段具有高硬度和相关高脆性的特征。它们在材料中的存在通常导致机械性能的劣化,例如强度和韧性。加工材料中镁和富锌区域的显微硬度分别为58±1 HV 0.025和47±1 HV 0.025,而MgZN_2金属间相的显微硬度值为323±12HV 0.025。在3点弯曲试验期间,观察到本阶段的不同行为和机械性能。虽然脆性骨折是MgZN_2金属间相的特征,但其余的材料表现出具有特征性转窄突变的延展性裂缝行为。

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