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铱合金在高温下的动态拉伸力学性能

陈军红 张方举 胡文军

爆炸与冲击2025,Vol.45Issue(12):154-163,10.
爆炸与冲击2025,Vol.45Issue(12):154-163,10.DOI:10.11883/bzycj-2025-0050

铱合金在高温下的动态拉伸力学性能

Dynamic high-temperature tensile characterization of an iridium alloy

陈军红 1张方举 1胡文军1

作者信息

  • 1. 中国工程物理研究院总体工程研究所,四川 绵阳 621999
  • 折叠

摘要

Abstract

Iridium alloys have been extensively utilized as structural materials in specific high-temperature applications,attributed to their superior strength and ductility at elevated temperatures.To enhance the understanding of high-speed impacts at elevated temperatures,it is imperative to characterize the mechanical properties of iridium alloys,including their failure response under high strain rates and elevated temperatures.In this study,the conventional split Hopkinson tension bar technique was modified to evaluate the tensile behavior of an iridium alloy at high strain rates and elevated temperatures.A dynamic high-temperature tensile testing technique for thin and flat specimens was established based on the high current heating method.A fixture with a slot was employed,enabling the specimen shoulder to bear the load and transmit it to the gauge section of the specimen.An integrated high current heater equipped with a self-controlled system was utilized to heat the iridium alloy specimen and maintain the desired high-temperature conditions.To prevent unintended heating of the bars,a pair of hollow water-cooled pillow blocks were installed.Moreover,to mitigate rapid cooling of the specimen,the cold contact time was meticulously controlled to be less than 1 ms.To elucidate the dynamic high-temperature properties of the iridium alloy,tensile tests were conducted using this technique at a strain rate of 103 s-1 and at temperatures of room temperature,600,900,and 1100℃.Experimental results revealed that as the temperature increased from room temperature to 900℃,the tensile strength of the iridium alloy decreased by 12%,while its ductility doubled.However,when the temperature was further elevated to 1100℃,the tensile strength decreased by 43%,and the ductility increased by a factor of 7.3.Macroscopic and microscopic analyses of the fracture morphologies were conducted to reveal the deformation mechanisms of the iridium alloy.It was found that with increasing temperature,the failure mode of the iridium alloy transitioned from predominantly intergranular fracture to plastic deformation and granular fracture.The dynamic fracture behavior of iridium alloy at high temperatures is governed by the competition between grain-boundary failure and granular softening.

关键词

分离式霍普金森拉杆/铱合金/高温/动态拉伸/失效机理

Key words

split Hopkinson tension bar/iridium alloy/high temperature/dynamic tension/failure mechanism

分类

数理科学

引用本文复制引用

陈军红,张方举,胡文军..铱合金在高温下的动态拉伸力学性能[J].爆炸与冲击,2025,45(12):154-163,10.

基金项目

国家自然科学基金(12172344) (12172344)

爆炸与冲击

OA北大核心

1001-1455

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