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工艺参数对TC4合金航空发动机叶片精锻残余应力的影响
英文标题:Influence of process parameters on residual stress for TC4 alloy aero-engine blade in precision forging
作者:吴捍疆 张丰收 燕根鹏 
单位:河南科技大学 机电工程学院 
关键词:航空发动机叶片 TC4合金 精锻成形 残余应力 X射线衍射 正交试验 
分类号:X263.5;V263.1
出版年,卷(期):页码:2020,45(1):9-14
摘要:

 为获悉叶片精锻残余应力的分布情况,利用Simufact.Forming软件对TC4合金航空发动机叶片精锻过程进行了数值模拟研究。通过X射线衍射技术对叶片实体表层残余应力进行了测量,并与数值模拟结果进行对比,验证了有限元模型的合理性。通过设计正交试验优化了叶片精锻工艺,最终得到了最优工艺参数组合及不同工艺参数对叶片精锻残余应力的影响趋势。研究结果表明:航空发动机精锻叶片的残余应力主要集中在表层,当工艺性较差时,叶片前缘头、后缘头附近的高残余应力区域范围较大,开裂的风险系数较高;模具温度对叶片精锻残余应力的影响最大,上模速度、坯料温度、摩擦因子对其影响依次减小;在上模速度为40 mm·s-1、坯料温度为960 ℃、模具温度为300 ℃、摩擦因子为0.1的情况下,可以得到较小的叶片精锻残余应力。

 In order to obtain the distribution of residual stress in the precision forging of blade, the precision forging process of TC4 alloy aero-engine blade was simulated numerically by software Simufact.Forming, and the residual stress on the surface of blade entity was measured by X-ray diffraction technique. Then, the numerical simulation results were compared to verify the rationality of the finite element model, and the precision forging process of blade was optimized by designing orthogonal experiment. Finally, the optimal combination of process parameters and the influence trend of different process parameters on the residual stress of blade in precision forging were obtained. The results show that the residual stress of aero-engine blade in precision forging is mainly concentrated on the surface layer. When the process is poor, the areas  of high residual stress near the leading edge and the trailing edge of blade are larger, and the risk factor of cracking is higher. Furthermore, the mold temperature has the greatest influence on the residual stress of blade in precision forging, and the influences of upper mold speed, billet temperature and friction factor on the residual stress decrease successively. Thus, the smaller residual stress of blade in precision forging is obtained with the upper mold speed of 40 mm·s-1, the billet temperature of 960 ℃, the mold temperature of 300 ℃ and the friction factor of 0.1. 

Key words: aero-engine blade; TC4 alloy; precision forging; residual stress; X-ray diffraction; orthogonal experiment
基金项目:
国家自然科学基金资助项目(51475146,51475366)
作者简介:
吴捍疆(1992-),男,硕士研究生 E-mail:764649866@qq.com 通讯作者:张丰收(1972-),男,博士,教授 E-mail:fengshouzhang@163.com
参考文献:

 [1]罗守华,田少政,刘同胜,.基于残余应力监测的航空发动机转子叶片质量评定方法[J].装备制造技术,2014,(12):100-102.


Luo S H, Tian S Z, Liu T Set al. Quality assessment method of aeroengine rotor blade based on residual stress monitoring [J]. Equipment Manufacturing Technology, 2014, (12):100-102.


[2]谢小正,赵荣珍,陈惠贤.高速铣削汽轮机叶片表面残余应力影响因素研究[J].组合机床与自动化加工技术,2012,(11):15-17.


Xie X Z, Zhao R Z, Chen H X. Study on factors affecting surface residual stress of high speed milling steam turbine blades [J]. Modular Machine Tool and Automatic Machining Technology, 2012, (11):15-17.


[3]Liu D, Shi Y Y, Lin X J, et al. Study on improving surface residual stress of polished blade after polishing based on two-stage parameter method [J]. International Journal of Advanced Manufacturing, 2019, 100(7):1491-1503.


[4]张晓露,李付国,彭富华,.基于热加工图的TC4合金热成形性能研究[J].航空材料学报,2007,27(5):40-44.


Zhang X L, Li F G, Peng F H, et al. Study on hot forming properties of TC4 alloy based on hot working diagram [J]. Journal of Aeronautical Materials, 2007,27(5):40-44.


[5]霍光.70 MN叶片压制液压机研发设计[J].锻压装备与制造技术,2015,50(6):31-34.


Huo G. Research and design of 70 MN hydraulic press for blade [J]. China Metalforming Equipment and Manufacturing Technology, 2015,50(6):31-34.


[6]刘惠,康尚明,王少华,.大规格复杂曲面叶片精密模锻成形工艺设计及优化[J].锻压技术,2019,44(2):7-12.


Liu H, Kang S M, Wang S H, et al. Design and optimization on precision die forging process of large complex curved blade [J]. Forging & Stamping Technology, 2019, 44(2):7-12.


[7]李松杰.复杂曲面构造及基于VBCAD自动建模方法研究[D].西安:西安理工大学,2015.


Li S J. Research on Construction of Complex Surface and Automatic Modeling Method of CAD Based on VB [D]. Xian: Xian University of Technology, 2015.


[8]张铁浩,王洋,方喜风,.残余应力检测与消除方法的研究现状及发展[J].精密成形工程,2017,9(5):122-127.


Zhang T H, Wang Y, Fang X F, et al. Research status and development of residual stress detection and elimination methods [J]. Journal of Metshape Forming Engineering, 2017,9(5):122-127.


[9]杨铭伟.超声振动时效消除残余应力机理分析及试验研究[D].太原:太原理工大学,2015.


Yang M W. Mechanism Analysis and Experimental Study of Residual Stress Relief by Ultrasonic Vibration Aging [D]. Taiyuan: Taiyuan University of Technology, 2015.


[10]魏慧慧,余心宏.TC4钛合金型材热挤压过程坯料温度演变规律研究[J].重型机械,2015,(1):53-58.


Wei H H, Yu X H. Study on temperature evolution of TC4 titanium alloy during hot extrusion [J]. Heavy Machinery, 2015, (1):53-58.


[11]吴春雨. 干式硬态车削Cr12MoV表面残余应力的仿真研究[D].兰州:兰州理工大学,2017.


Wu C Y. Simulation Study on Surface Residual Stress of Cr12MoV in Dry Turning [D]. Lanzhou: Lanzhou University of Technology, 2017.


[12]肖田.航空钛合金Ti6Al4V的高速铣削表面完整性模拟分析研究[D].太原:中北大学,2013.


Xiao T. Simulation and Analysis of Surface Integrity in High Speed Milling of Ti6Al4V Aeronautical Titanium Alloy [D]. Taiyuan: North University of China, 2013.


[13]黄晓敏,王宝雨,李俊玲,.Ti-6Al-4V叶片楔横轧制坯热力耦合数值模拟与实验研究[J].锻压技术,2018,43(4):70-76.


Huang X M, Wang B Y, Li J L, et al. Thermo mechanical coupling numerical simulation and experimental study of Ti-6Al-4V blade cross wedge rolling blank [J]. Forging & Stamping Technology, 2018, 43(4):70-76.

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