Zhao Lei, Wang Shuaipu, Wu Mingjian, Liu Chengxiang, Wu Zhilin
School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
Materials (Basel). 2024 Dec 6;17(23):5984. doi: 10.3390/ma17235984.
The rising industrial demand for ultra-lightweight materials with exceptional strength and toughness has intensified interest in dual-phase Mg-Li alloys due to their low density and high specific strength. While much of the research on Mg-Li alloys has concentrated on conventional strengthening methods, such as grain refinement and solid-solution strengthening, overcoming the challenge of plastic deformation compatibility between the α- and β-phases remains unresolved. This study focuses on Mg-8Li binary alloy, systematically investigating the impact of rolling deformation temperature and strain on the phase structures. A detailed analysis of fracture behavior reveals a novel brittle-tough composite fracture control strategy that enhances both strength and toughness simultaneously. This work advances the understanding of phase structure control and its role in strengthening and toughening mechanisms, offering critical insights for the development of next-generation dual-phase magnesium alloys.
工业对具有卓越强度和韧性的超轻材料的需求不断增加,这使得对双相Mg-Li合金的兴趣日益浓厚,因为它们具有低密度和高比强度。虽然对Mg-Li合金的许多研究都集中在传统的强化方法上,如晶粒细化和固溶强化,但克服α相和β相之间塑性变形相容性的挑战仍未得到解决。本研究聚焦于Mg-8Li二元合金,系统地研究了轧制变形温度和应变对相结构的影响。对断裂行为的详细分析揭示了一种新颖的脆韧复合断裂控制策略,该策略能同时提高强度和韧性。这项工作增进了我们对相结构控制及其在强化和增韧机制中作用的理解,为下一代双相镁合金的开发提供了关键见解。