Fatigue life of machined components

被引:32
|
作者
Pramanik, A. [1 ]
Dixit, A. R. [2 ]
Chattopadhyaya, S. [2 ]
Uddin, M. S. [3 ]
Dong, Yu [1 ]
Basak, A. K. [4 ]
Littlefair, G. [5 ]
机构
[1] Curtin Univ, Dept Mech Engn, Bentley, WA 6102, Australia
[2] Indian Sch Mines, Dept Mech Engn, Dhanbad 826004, Bihar, India
[3] Univ South Australia, Sch Engn, Mawson Lakes, SA 5095, Australia
[4] Univ Adelaide, Adelaide Microscopy, Adelaide, SA, Australia
[5] Deakin Univ, Sch Engn, Waurn Ponds, Vic, Australia
关键词
Traditional machining; Non-traditional machining; Fatigue strength; Surface roughness; Residual stress; Phase change; SURFACE RESIDUAL-STRESS; INTEGRITY; PERFORMANCE; STRENGTH; MICROSTRUCTURE; VARIABILITY; TOPOGRAPHY; TI-6AL-4V; BEHAVIOR; HARDNESS;
D O I
10.1007/s40436-016-0168-z
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A correlation between machining process and fatigue strength of machined components clearly exists. However, a complete picture of the knowledge on this is not readily available for practical applications. This study addresses this issue by investigating the effects of machining methods on fatigue life of commonly used materials, such as titanium alloys, steel, aluminium alloys and nickel alloys from previous literature. Effects of turning, milling, grinding and different non-conventional machining processes on fatigue strength of above-mentioned materials have been investigated in detail with correlated information. It is found that the effect of materials is not significant except steel in which phase change causes volume expansion, resulting in compressive/tensile residual stresses based on the amounts of white layers. It is very complex to identify the influence of surface roughness on the fatigue strength of machined components in the presence of residual stresses. The polishing process improves the surface roughness, but removes the surface layers that contain compressive residual stresses to decrease the fatigue strength of polished specimens. The compressive and tensile residual stresses improve and reduce fatigue strength, respectively. Grinding process induces tensile residual stresses on the machined surfaces due to high temperature generation. On the other hand, milling and turning processes induce compressive residual stresses. High temperature non-conventional machining generates a network of micro-cracks on the surfaces in addition to tensile residual stresses to subsequently reduce fatigue strength of machined components. Embedded grits of abrasive water jet machining degrade the fatigue performance of components machined by this method.
引用
收藏
页码:59 / 76
页数:18
相关论文
共 50 条
  • [21] Predicting the fatigue life of machined specimen based on its surface integrity parameters
    Song, Yanxuan
    Yin, Ming
    Lei, Pengyan
    Huang, Shuo
    Yin, Guofu
    Du, Yang
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2022, 119 (11-12): : 8159 - 8171
  • [22] Fracture and fatigue life of Al-based MMCs machined at different conditions
    Pramanik, A.
    Basak, A. K.
    [J]. ENGINEERING FRACTURE MECHANICS, 2018, 191 : 33 - 45
  • [23] Fatigue life and Fracture Morphology of Inconel 718 machined by spark EDM process
    Xavior, Anthony M.
    Ashwath, P.
    [J]. DIGITAL MANUFACTURING TRANSFORMING INDUSTRY TOWARDS SUSTAINABLE GROWTH, 2019, 30 : 292 - 299
  • [24] Predicting the fatigue life of machined specimen based on its surface integrity parameters
    Yanxuan Song
    Ming Yin
    Pengyan Lei
    Shuo Huang
    Guofu Yin
    Yang Du
    [J]. The International Journal of Advanced Manufacturing Technology, 2022, 119 : 8159 - 8171
  • [25] THE FATIGUE PERFORMANCE OF MACHINED SURFACES
    TAYLOR, D
    CLANCY, OM
    [J]. FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 1991, 14 (2-3) : 329 - 336
  • [26] Multiaxial fatigue and life prediction of elastomeric components
    Zarrin-Ghalami, Touhid
    Fatemi, Ali
    [J]. INTERNATIONAL JOURNAL OF FATIGUE, 2013, 55 : 92 - 101
  • [27] Fatigue life of randomly loaded notched components
    Bily, M
    Horansky, P
    Kliman, V
    [J]. MATERIALS SCIENCE, 1998, 34 (05) : 681 - 695
  • [28] Fatigue life prediction of notched composite components
    Shen, G.
    Glinka, G.
    Plumtree, A.
    [J]. Fatigue and Fracture of Engineering Materials and Structures, 1994, 17 (01): : 77 - 91
  • [29] Fatigue life estimation of the overloaded notched components
    Seifi, Rahman
    Mohammadi, Mohammad Reza
    [J]. JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2019, 42 (01)
  • [30] Fatigue life of randomly loaded notched components
    M. Bílý
    P. Horanský
    V. Kliman
    [J]. Materials Science, 1998, 34 : 681 - 695