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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >The microstructure, mechanical and corrosion properties of calcium polyphosphate reinforced ZK60A magnesium alloy composites
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The microstructure, mechanical and corrosion properties of calcium polyphosphate reinforced ZK60A magnesium alloy composites

机译:聚磷酸钙增强ZK60A镁合金复合材料的组织,力学性能和腐蚀性能

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The calcium polyphosphate (CPP) reinforced ZK60A magnesium-matrix composites are fabricated using powder metallurgy. In this study, the microstructure, mechanical and corrosion properties of the composites are investigated. The CPP particles are uniformly distributed throughout the composite with firmly bounded CPP–matrix interface. The composites consisted of 20 wt.% CPP achieved a maximum compressive strength of 494.88 MPa. Effective load transfer from matrix to particle results in particle fracture observed during compressive tests. Tensile tests show that the ultimate strength and yield strength of the composites were reduced by CPP addition. The fracture surfaces of composites observed during tensile tests show matrix deformation, interfacial detachment and particle breakage coupled with microscopic crack. The composites enhance the corrosion resistance of materials and exhibit a more uniform corrosion attack in immersion tests and electrochemical tests. Furthermore, CPP accelerates the precipitate of hydroxyapatite in the composites. These results suggest that the CPP_p/ZK60A composite is a promising candidate for degradable implant materials.
机译:聚磷酸钙(CPP)增强的ZK60A镁基复合材料是使用粉末冶金法制造的。在这项研究中,研究了复合材料的微观结构,机械性能和腐蚀性能。 CPP颗粒均匀地分布在整个复合材料中,并具有牢固结合的CPP-基体界面。由20 wt。%CPP组成的复合材料的最大抗压强度为494.88 MPa。从基质到颗粒的有效载荷转移会导致在压缩测试中观察到颗粒破裂。拉伸试验表明,CPP的添加降低了复合材料的极限强度和屈服强度。在拉伸试验中观察到的复合材料的断裂表面显示出基体变形,界面脱离和颗粒破裂以及微观裂纹。该复合材料增强了材料的耐腐蚀性,并在浸入测试和电化学测试中表现出更均匀的腐蚀侵蚀。此外,CPP促进了复合材料中羟基磷灰石的沉淀。这些结果表明,CPP_p / ZK60A复合材料是可降解植入材料的有希望的候选者。

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