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材料研究学报  2026, Vol. 40 Issue (1): 39-47    DOI: 10.11901/1005.3093.2025.195
  研究论文 本期目录 | 过刊浏览 |
高速电加热钛合金组织的演化
陈庆安1, 李雕峰2(), 贾清2, 王冉2, 张志强2, 柏春光2()
1.中国航发沈阳黎明航空发动机有限责任公司 沈阳 110043
2.中国科学院金属研究所 师昌绪先进材料创新中心 沈阳 110016
Effect of Rapid Electrical Heating on Microstructure Evolution in TC4 Alloy
CHEN Qingan1, LI Diaofeng2(), JIA Qing2, WANG Ran2, ZHANG Zhiqiang2, BAI Chunguang2()
1.AECC Shenyang Liming Aero-Engine Co., Ltd., Shenyang 110043, China
2.Shi -changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
引用本文:

陈庆安, 李雕峰, 贾清, 王冉, 张志强, 柏春光. 高速电加热钛合金组织的演化[J]. 材料研究学报, 2026, 40(1): 39-47.
Qingan CHEN, Diaofeng LI, Qing JIA, Ran WANG, Zhiqiang ZHANG, Chunguang BAI. Effect of Rapid Electrical Heating on Microstructure Evolution in TC4 Alloy[J]. Chinese Journal of Materials Research, 2026, 40(1): 39-47.

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摘要: 

将TC4合金高速电加热到不同温度和保温不同时间,系统研究了这种合金显微组织的演化。结果表明,随着电加热温度的升高和保温时间的延长,TC4合金中β转变组织的尺寸增大和体积分数提高;当温度较低/保温时间较短时,平均晶粒尺寸随着温度的升高或保温时间的延长先减小后增大;在保温时间较长或温度较高的条件下,晶粒尺寸随着温度的升高/保温时间的延长而增大。与传统热处理工艺相比,这种组织演化是在极短时间内完成的,表明高速电加热能高效率调控合金的显微组织。

关键词 金属材料高速电加热电子背散射衍射热处理    
Abstract

Rapid electrical heating is an effective method for the efficient heat treatment of metallic materials, offering high production efficiency and process flexibility. Compared with conventional heat treatment, rapid electrical heating—driven by the synergistic effects of Joule heating and non-thermal mechanisms—can achieve rapid phase transformation and microstructural refinement within an extremely short time, while effectively suppressing grain coarsening, thereby significantly altering the kinetics of microstructural evolution. However, this process involves multiple adjustable parameters, and current industrial production largely relies on the empirical experience of operators, lacking systematic studies and theoretical support for process optimization. Herein, TC4 alloy bars were subjected to rapid electrical heating up to various heating temperatures and holding for different times, in terms of the effect of process parameters on their microstructural evolution. The results indicate that both the size and volume fraction of the β-transformed microstructure increase with the rising temperature of electrical heating and the prolonging hold time. When the holding time is short or the heating temperature is relatively low, the average grain size first decreases and then increases with increasing temperature or holding time. By longer holding times or higher heating temperatures, the grain size increases monotonically with temperature or holding time. Compared with conventional heat treatment, these microstructural evolution behaviors occur within an extremely short duration, highlighting the unique efficiency of rapid electrical heating in microstructure control. This study elucidates the characteristics and mechanisms of microstructural evolution of TC4 alloy by rapid electrical heating. The findings may provide a reference for process optimization and performance tailoring for metallic materials.

Key wordsmetallic materials    rapid electrical heating    EBSD    heat treatment
收稿日期: 2025-06-09     
ZTFLH:  TG146.2  
基金资助:国家自然科学基金(52401178)
通讯作者: 李雕峰,副研究员,dfli16b@imr.ac.cn,研究方向为钛合金组织性能调控;
柏春光,研究员,cgbai@imr.ac.cn,研究方向为钛合金成型工艺
Corresponding author: LI Diaofeng, Tel: (024)83970071, E-mail: dfli16b@imr.ac.cn;
BAI Chunguang, Tel: (024)83970071, E-mail: cgbai@imr.ac.cn
作者简介: 陈庆安,男,1981年生
图1  初始态TC4钛合金试样的微观组织
图2  TC4合金在不同电流加热条件下的SEM照片
图3  电加热参数对TC4合金显微组织的影响
图4  TC4合金在不同电流加热条件下的电子背散射图片
图5  电加热参数对晶粒尺寸的影响
图6  电加热影响钛合金α→β相变的机理示意图
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