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Title:Mechanical properties of aerospace aluminum alloy sheet at cryogenic temperature
Authors: Zhang Kun  Zhang Hao  Tao Zherui  Han Yingjie 
Unit: AVIC Shenyang Aircraft Corporation  Shenyang 110850  China 
KeyWords: aluminum alloy sheet  cryogenic temperature  mechanical properties  elongation  strength 
ClassificationCode:TG115.5
year,vol(issue):pagenumber:2025,50(5):129-135
Abstract:

The specimens that can be used for uniaxial tensile at ultra-low temperature were designed, and the mechanical properties of common aerospace aluminum alloy sheet under cryogenic temperature condition (liquid nitrogen, -196 ℃) were tested,which were compared and analyzed with those at room temperature in terms of elongation, strength and work hardening rate. The results show that the elongation, strength and work hardening rate of annealed and solution-treated aerospace aluminum alloy sheet can be significantly improved under cryogenic temperature condition. Therefore,the cryogenic temperature condition could be introduced into the forming process of annealed and solution state aluminum alloy sheet to significantly improve their formability. For aged aluminum alloy sheet, the strength is greatly improved at cryogenic temperature condition, while the work hardening rate is not significantly improved, and the elongation is improved less or even reduced. Therefore, it is not advisable to introduce the ultra-low temperature condition into the forming process of aged aluminum alloy sheet. Cryogenic temperature condition can eliminate the serrated rheological phenomenon of aluminum alloy sheet so as to improve the stability of material rheological stress significantly. Thus, the research results provide directional guidance for the application of cryogenic temperature forming technology and a basis for the optimization of process parameter design.

Funds:
装备预先研究共用技术项目(50923040302)
AuthorIntro:
作者简介:张坤(1990-),男,博士,高级工程师,E-mail:zhangk223@avic.com
Reference:


[1]Li S S, Yue X, Li Q Y, et al. Development and applications of aluminum alloys for aerospace industry
[J]. Journal of Materials Research and Technology, 2023, 27: 944-983.


 


[2]Zheng K L, Politis D J, Wang L L, et al. A review on forming techniques for manufacturing lightweight complex-shaped aluminium panel components
[J]. International Journal of Lightweight Materials and Manufacture, 2018, 1(2): 55-80.

 


[3]Yuan S J, Fan X B. Developments and perspectives on the precision forming processes for ultra-large size integrated components
[J]. International Journal of Extreme Manufacturing, 2019, 1: 1-18.

 


[4]王晨光. 2024铝合金双曲度蒙皮超低温拉深成形工艺研究
[D]. 长沙: 中南大学, 2021.

 

Wang C G. Research on Ultra-low Temperature Deep Drawing Process of 2024 Aluminum Alloy Hyperbolic Thin-walled Skin Part
[D]. Changsha: Central South University, 2021.

 


[5]Yuan S J, Qi J, He Z B. An experimental investigation into the formability of hydroforming 5A02 Al-tubes at elevated temperature
[J]. Journal of Materials Processing Technology, 2006, 177: 680-683.

 


[6]Hong J H, Yoo D H, Kwon Y N, et al. Evaluation of rate-dependent forming limit for AA7075 sheets under pneumatic stretching method at elevated temperatures
[J]. Journal of Materials Research and Technology, 2023, 22: 1839-1854.

 


[7]Fan X B, He Z B, Yuan S J. Deformation behavior of 5A06 aluminum alloy sheet for rapid gas forming at elevated temperature
[J]. Transactions of Nonferrous Metals Society of China, 2012, 22: 389-394.

 


[8]冯贞伟,蒋少松,康良炜. 航空领域用5A90铝锂合金高温变形性能及组织变化规律
[J].锻压技术,2024,49(9):186-194.

 

Feng Z W,Jiang S S,Kang L W.High temperature deformation properties and microstructure variation law of 5A90 Al-Li alloy used in aviation field
[J]. Forging & Stamping Technology,2024,49(9):186-194.

 


[9]涂振杰. 铝合金钣金件淬火变形分析与控制
[J]. 金属热处理,1994,19(2):47-50.

 

Tu Z J. Analysis and control of quenching deformation of aluminum alloy plate parts
[J]. Heat Treatment of Metals, 1994, 19(2):47-50.

 


[10]邓涛, 靳舜尧, 刘乐. 2024 铝合金薄壁板材淬火过程建模仿真
[J]. 塑性工程学报,2021,28(9):207-216.

 

Deng T, Jin S Y, Liu L. Simulation of quenching process of 2024 aluminum alloy thin-walled sheet
[J]. Journal of Plasticity Engineering, 2021, 28(9): 207-216.

 


[11]束飞,拓建峰,张宇岑,等.飞机铝合金深锥型面零件多道次充液拉深技术
[J].精密成形工程,2016,8(5): 96-102.

 


Shu F, Tuo J F, Zhang Y C, et al. Multi-step hydrodynamic deep drawing of aluminium alloy conical part with deep cavity
[J]. Journal of Netshape Forming Engineering, 2016, 8(5): 96-102.

 


[12]刘晓滕,赵佳蕾,孙有政,等.中间退火对Al-Mg-Si系铝合金汽车板组织和性能的影响
[J]. 金属热处理,2020,45(10): 119-124.

 

Liu X T, Zhao J L, Sun Y Z, et al. Effect of intermediate annealing on microstructure and properties of Al-Mg-Si series aluminum alloy automobile sheet
[J]. Heat Treatment of Metals, 2020, 45(10): 119-124.

 


[13]Cheng W J,Liu W,Yuan S J.Deformation behavior of Al-Cu-Mn alloy sheets under biaxial stress at cryogenic temperatures
[J]. Materials Science and Engineering: A, 2019, 759: 357-367.

 


[14]Feng B, Gu B, Li S H.An efficient pre-hardened cryogenic forming process for AA7075 aluminum alloy sheets
[J]. Journal of Manufacturing Processes, 2023, 92: 534-547.

 


[15]Fan X B, Yuan S J. Innovation for forming aluminum alloy thin shells at ultra-low temperature by the dual enhancement effect
[J]. International Journal of Extreme Manufacturing, 2022, 4: 033001.

 


[16]凡晓波,刘洋,邬方兴,等.2219铝合金差厚球壳梯度超低温拉深成形规律
[J]. 锻压技术,2023,48(5): 155-161.

 

Fan X B, Liu Y, Wu F X, et al. Gradient ultra-low temperature deep drawing law of 2219 aluminum alloy spherical shell with differential thickness
[J]. Forging & Stamping Technology, 2023, 48(5): 155-161.

 

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