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High-strength magnesium alloys for degradable implant applications

机译:用于可降解植入物的高强度镁合金

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This article describes the design principles deployed in developing high-strength and ductile Mg-Zn-Zr-Ca-Mn(-Yb) alloys based on a concept, which aims to restrict grain growth considerably during alloy casting and forming. The efficiency of the development approach is discussed. Moreover, the microstructure and phase analysis of the alloys subjected to different thermal treatments are presented and the influence of the alloy composition, particularly the addition of Yb, on the evolution of the microstructure is discussed in connection with the mechanical properties of the materials. The newly developed alloys exhibit high strength (yield stress of up to 350 MPa) at considerable ductility (elongation to fracture of up to 19%) in the as-extruded state and reveal age hardening potential (increase in hardness of 10-15% compared to that in the recrystallization heat-treated state). Appropriate heat treatments enable tailoring of the strength-ductility relation. Thermal annealing of the material resulted in a remarkable increase in ductility (elongation to fracture of more than 20% for all heat-treated samples) while high strength is retained (yield stress ranging from 210 to 315 MPa). We attribute the attractive mechanical properties of the developed alloys to their fine-grained microstructure, where the grain boundaries and lattice defects are stabilized by second phase particles formed during casting and thermal treatments.
机译:本文基于一个概念描述了开发用于开发高强度和韧性Mg-Zn-Zr-Ca-Mn(-Yb)合金的设计原理,该概念旨在在合金铸造和成形过程中显着限制晶粒的生长。讨论了开发方法的效率。此外,介绍了经过不同热处理的合金的微观结构和相分析,并结合材料的机械性能讨论了合金组成(尤其是Yb的添加)对微观结构演变的影响。新开发的合金在挤压状态下具有相当高的延展性(断裂伸长率高达19%),具有高强度(屈服应力高达350 MPa),并且具有时效硬化的潜力(与之相比,硬度提高了10-15%) (在重结晶热处理状态下)。适当的热处理可以调整强度-延性关系。材料的热退火导致延展性显着提高(所有热处理样品的断裂伸长率均超过20%),同时又保持了高强度(屈服应力范围为210至315 MPa)。我们将发达合金的吸引人的机械性能归因于其细晶粒的微观结构,其中的晶界和晶格缺陷通过在铸造和热处理过程中形成的第二相颗粒得以稳定。

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