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Improvement of Mechanical Properties of Zr-Based Bulk Amorphous Alloys by High Temperature Heat Treatment

机译:高温热处理改善Zr基体积非晶合金的力学性能

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摘要

Zr-based bulk amorphous alloys which were heat-treated from 673 to 1073 K were investigated, and compressive fracture mechanisms related with improvement of mechanical properties were investigated by observing how the type, size and volume fraction of crystalline particles which is generated during the heat treatment affected the fracture mode. The Zr-based bulk amorphous alloys contained nano-sized crystalline particles showed excellent mechanical properties of compressive fracture strength over 2.0 GPa and compressive plastic strain of approximately 1%. The fracture modes of the alloys are changed depending on the heat treatment temperature and their microstructure. When the alloy is heat-treated at 673 K, the nano-sized Zr2Cu particles are generated in amorphous matrix. According to the observation of fractured specimens, in the alloy heat-treated at 673 K, the fine and elongated vein patterns were well developed. The heat treatment temperature increased above T-x, the Zr2Cu particles as well as complex crystalline particles are consist in the heat-treated alloy, which lead to the brittle fracture and the alloy show the low strength of 605 MPa. In the fractured surface of the alloy, large cleavage facets were evenly developed. When the heat treatment temperature up near T-m, the size of Zr2Cu and complex crystalline particles increased to approximately 1 mu m and the volume fraction of complex crystalline particles increased up to 52.3%. As the size of crystalline particles change, the size of facet decreased similarly to the size of crystalline particles. Graphic Zr-based bulk amorphous alloys which were heat-treated from 673 to 1073 K were investigated, and compressive fracture mechanisms related with improvement of mechanical properties were investigated by observing how the type and size of crystalline particles which is generated during the heat treatment affected the fracture mode. The fracture modes of the alloys are changed depending on the heat treatment temperature and their microstructure. When the alloy is heattreated at 673 K, the nano-sized Zr2Cu particles are generated in amorphous matrix. According to the observation of fractured specimens, in the alloy heat-treated at 673 K, the fine and elongated vein patterns were well developed. The heat treatment temperature increased near T-g, the Zr2Cu particles as well as complex crystalline particles are consist in the heat-treated alloy, which lead to the brittle fracture and the alloy show the low strength of 605 MPa. In the fractured surface of the alloy, large cleavage facets were evenly developed. When the heat treatment temperature up near T-m, the size of Zr2Cu and complex crystalline particles increased to approximately 1 mu m.
机译:研究了从673-1073k热处理的Zr基体非晶合金,并通过观察热量产生的结晶颗粒的类型,尺寸和体积分数,研究了与机械性能提高相关的压缩骨折机制。治疗影响了裂缝模式。含有纳米晶体颗粒的Zr基体积非晶合金显示出优异的电压裂缝强度的机械性能,超过2.0GPa,压缩塑性应变约为1%。根据热处理温度及其微观结构改变合金的断裂模式。当合金在673k被热处理时,在非晶基质中产生纳米尺寸的Zr 2Cu颗粒。根据裂缝标本的观察,在673K的合金中,精细和细长的静脉图案均发育良好。热处理温度升高超过T-X,Zr 2Cu颗粒以及复杂的结晶颗粒在热处理的合金中由脆性骨折和合金显示为605MPa的低强度。在合金的裂缝表面中,大的裂解面均匀开发。当热处理温度接近T-M时,Zr2Cu和复杂结晶颗粒的尺寸增加到约1μm,并且复杂结晶颗粒的体积分数增加至52.3%。随着结晶颗粒的尺寸变化,面部的尺寸与结晶颗粒的尺寸类似地降低。研究了从673-1073K热处理的图形Zr基团非晶合金,并通过观察在受热处理期间产生的结晶颗粒的类型和尺寸如何,研究了与机械性能提高相关的压缩骨折机制裂缝模式。根据热处理温度及其微观结构改变合金的断裂模式。当合金在673 k下加热合金时,在非晶基质中产生纳米尺寸的Zr 2Cu颗粒。根据裂缝标本的观察,在673K的合金中,精细和细长的静脉图案均发育良好。热处理温度在T-G附近增加,Zr 2Cu颗粒以及复杂的结晶颗粒在热处理的合金中由脆性断裂和合金显示为605MPa的低强度。在合金的裂缝表面中,大的裂解面均匀开发。当热处理温度接近T-M时,Zr 2Cu和复杂结晶颗粒的尺寸增加到约1μm。

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