个人信息Personal Information
副教授
博士生导师
硕士生导师
性别:男
毕业院校:大连理工大学
学位:博士
所在单位:材料科学与工程学院
学科:材料物理与化学. 材料学
办公地点:大连理工大学新三束实验室410
联系方式:0411-84706400
电子邮箱:yhli@dlut.edu.cn
Effects of alloying elements on thermal stability, glass-forming ability and soft magnetic properties of Fe-P-C-B metallic glasses
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论文类型:会议论文
发表时间:2015-05-11
收录刊物:EI、Scopus
摘要:Fe-based bulk metallic glasses (BMGs) are attractive for the engineering applications as functional materials because of their excellent soft magnetic properties, very high strength, viscous flow workability in the supercooled liquid region ( T<inf>x</inf> = T<inf>x</inf>-T<inf>g</inf>, T<inf>g</inf>: glass transition temperature; T<inf>g</inf>: crystallization temperature), and low material cost [1]. Recently, the thermoplastic processing has been expected to make highly functional micro-/nano-parts and electromechanical devices on the soft magnetic Fe-based BMGs by suing the viscous flow workability [1,2]. The suitable BMGs for thermoplastic processes have to possess simultaneously low T<inf>g</inf>, large T<inf>x</inf>, and high glass-forming ability (GFA). From a processing point of view, it is desirable to possess a large T<inf>x</inf> which gives access to a low forming viscosity, which in turn facilitates thermoplastic forming. A low T<inf>g</inf> implies a low processing temperature since it facilitates processing [2]. In addition, a low T<inf>g</inf> can prevent the reaction of the metallic glasses with mold materials. However, most of the Fe-based BMGs with good soft magnetic properties exhibited high T<inf>g</inf>, small T<inf>x</inf>, low GFA or high viscosity in the supercooled liquid state, which hinder their thermoplastic formability. In this work, with the aim of developing new ferromagnetic Fe-based BMGs with low T<inf>g</inf>, large T<inf>x</inf> and high GFA for the thermoplastic processing, we investigated the effect of alloying additions on the thermal stability, GFA, magnetic properties of the Fe-P-C-B metallic glasses with low T<inf>g</inf>. ? 2015 IEEE.