Effect of corrosive environment on fatigue property and crack propagation behavior of Al 2024 friction stir weld
腐蚀环境对2024铝合金搅拌摩擦焊缝疲劳与裂纹扩展性能的影响
查看参考文献18篇
文摘
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In this investigation, 2024 aluminium alloy plates were friction stir welded, a sequence of experiments was performed including fatigue and crack propagation tests in air, under pre-corrosion and in a 3.5% NaCl solution, in combination with fractography analyses of near-threshold region, Paris region and finial fracture region with the aid of scanning electron microscopy (SEM). Results showed that the corrosive environment caused a dramatical decrease in fatigue lives of FS welds, the corrosion fatigue lives of FS welds were almost a half of those of the as-welded specimens. The crack growth rates in FS welds were higher than their counterparts in base materials, under the corrosive environment, the crack growth rate differences between base materials and FS welds become increasingly apparent with the increase of stress intensity factor range ΔK, but the pre-corrosion process had little effect on the FS welds' crack propagation behavior except for shortening the crack initiation lives greatly. |
其他语种文摘
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研究2024铝合金搅拌摩擦焊缝在空气、预腐蚀与3.5%盐水腐蚀液中的疲劳与裂纹扩展性能,并采用SEM对断口的近门槛区、稳定扩展区与瞬断区进行观测。结果表明,腐蚀环境对铝合金搅拌摩擦焊缝的寿命产生很大影响,焊缝的腐蚀疲劳寿命只有空气中的一半左右;焊缝的裂纹扩展速率比母材快,在腐蚀环境下,随着应力强度因子幅度的增大,母材与焊缝裂纹扩展速率的差距越来越大,但预腐蚀损伤对焊缝的裂纹扩展速率影响较小,只是降低了裂纹萌生寿命。 |
来源
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Transactions of Nonferrous Metals Society of China
,2016,26(11):2830-2837 【核心库】
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DOI
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10.1016/S1003-6326(16)64411-4
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关键词
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friction stir welding
;
aluminium alloy
;
fatigue
;
crack growth rate
;
corrosion
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地址
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Department of Electromechanical Engineering, Shenyang Aerospace University, Shenyang, 110136
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语种
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英文 |
文献类型
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研究性论文 |
ISSN
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1003-6326 |
学科
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金属学与金属工艺 |
基金
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国家自然科学基金
;
supported by the General Project of Scientific Research of Liaoning Provincial Education Department, China
;
辽宁省自然科学基金
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文献收藏号
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CSCD:5874610
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参考文献 共
18
共1页
|
1.
Rohlin S I. Effect of pitting corrosion on fatigue crack initiation and fatigue life.
Engineering Fracture Mechanics,1999,62:425-444
|
CSCD被引
33
次
|
|
|
|
2.
Chlistovsky R M. Corrosion-fatigue behaviour of 7075-T651 aluminum alloy subjected to periodic overloads.
International Journal of Fatigue,2007,29:1941-1949
|
CSCD被引
11
次
|
|
|
|
3.
Crawford B R. Can pitting corrosion change the location of fatigue failures in aircraft.
International Journal of Fatigue,2014,61:304-314
|
CSCD被引
5
次
|
|
|
|
4.
Hall M M Jr. Effect of cyclic crack opening displacement rate on corrosion fatigue crack velocity and fracture mode transitions for Al-Zn-Mg-Cu alloys.
Corrosion Science,2014,81:132-143
|
CSCD被引
2
次
|
|
|
|
5.
Chemin A E A. Effect of saline corrosion environment on fatigue crack growth of 7475-T7351 aluminum alloy under TWIST flight loading.
Engineering Fracture Mechanics,2015,141:274-290
|
CSCD被引
9
次
|
|
|
|
6.
Genel K. Environmental effect on the fatigue performance of bare and oxide coated 7075-T6 alloy.
Engineering Failure Analysis,2013,32:248-260
|
CSCD被引
1
次
|
|
|
|
7.
Paglia C S. A look in the corrosion of aluminum alloy friction stir welds.
Scripta Materialia,2008,58:383-387
|
CSCD被引
22
次
|
|
|
|
8.
Wang Qingzhao. Corrosion behavior of spray formed 7055 aluminum alloy joint welded by underwater friction stir welding.
Materials & Design,2015,68:97-103
|
CSCD被引
8
次
|
|
|
|
9.
Seetharaman R. Corrosion performance of friction stir welded AA2024 aluminium alloy under salt fog conditions.
Transactions of Nonferrous Metals Society of China,2015,25:1427-1438
|
CSCD被引
6
次
|
|
|
|
10.
Pao P S. Corrosion-fatigue crack growth in friction stir welded Al 7050.
Scripta Materialia,2001,45:605-612
|
CSCD被引
15
次
|
|
|
|
11.
Uematsu Y. Fatigue behaviour of friction stir welded A7075-T6 aluminium alloy in air and 3% NaCl solution.
Welding International,2013,27:441-449
|
CSCD被引
2
次
|
|
|
|
12.
Czechowski M. Low-cycle fatigue of friction stir welded Al-Mg alloys.
Journal of Materials Processing Technology,2005,164:1001-1006
|
CSCD被引
11
次
|
|
|
|
13.
Ma Y. Effect of welding parameters on mechanical and fatigue properties of friction stir welded 2198 T8 aluminum-lithium alloy joints.
Engineering Fracture Mechanics,2013,114:1-11
|
CSCD被引
5
次
|
|
|
|
14.
Ilman M N. Fatigue crack growth rate behaviour of friction-stir aluminium alloy AA2024-T3 welds under transient thermal tensioning.
Materials & Design,2013,50:235-243
|
CSCD被引
5
次
|
|
|
|
15.
Sivaraj P. Fatigue crack growth behaviour of friction stir welded AA7075-T651 aluminium alloy joints.
Transactions of Nonferrous Metals Society of China,2014,24:2459-2467
|
CSCD被引
11
次
|
|
|
|
16.
Boni L. "Size effect" in the fatigue behavior of friction stir welded plates.
International Journal of Fatigue,2015,80:238-245
|
CSCD被引
2
次
|
|
|
|
17.
Besel M. Fatigue behavior of friction stir welded Al-Mg-Sc alloy.
International Journal of Fatigue,2015,77:1-11
|
CSCD被引
3
次
|
|
|
|
18.
Ma Yue. Mechanical properties and fatigue crack growth rates in friction stir welded nugget of 2198-T8 Al-Li alloy joints.
Materials Science and Engineering A,2013,569:41-47
|
CSCD被引
8
次
|
|
|
|
|