Modelling of surface crack growth under lubricated rolling-sliding contact loading

被引:21
|
作者
Zafosnik, B
Ren, Z
Flasker, J
Mishuris, G
机构
[1] Univ Maribor, Fac Mech Engn, Maribor 2000, Slovenia
[2] Rzeszow Univ Technol, Dept Math, PL-35959 Rzeszow, Poland
关键词
contact loading; finite element analysis; internal pressure; maximum tangential stress; strain energy density; surface crack growth;
D O I
10.1007/s10704-005-8546-8
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The paper describes modelling approach to computational simulation of surface crack growth subjected to lubricated rolling-sliding contact conditions. The model considers the size and orientation of the initial crack, normal and tangential loading due to rolling-sliding contact and the influence of fluid trapped inside the crack by a hydraulic pressure mechanism. The motion of the contact sliding load is simulated with different load cases. The strain energy density (SED) and maximum tangential stress (MTS) crack propagation criteria are modified to account for the influence of internal pressure along the crack surfaces due to trapped fluid. The developed model is used to simulate surface crack growth on a gear tooth flank, which has been also experimentally tested. It is shown that the crack growth path, determined with modified crack propagation criteria, is more accurately predicted than by using the criteria in its classical form.
引用
收藏
页码:127 / 149
页数:23
相关论文
共 50 条
  • [21] Roughness in rolling-sliding elastohydrodynamic lubricated contacts
    Hooke, C. J.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY, 2006, 220 (J3) : 259 - 271
  • [22] Fluid Pressurization and Entrapment Effects on the SIFs of Cracks produced under lubricated Rolling-Sliding Contact Fatigue
    Ancellotti, Simone
    Benedetti, Matteo
    Dallago, Michele
    Fontanari, Vigilio
    21ST EUROPEAN CONFERENCE ON FRACTURE, (ECF21), 2016, 2 : 3098 - 3108
  • [23] DURABILITY AND TRIBOLOGICAL PROPERTIES OF THERMALLY SPRAYED WC CERMET COATING UNDER LUBRICATED ROLLING-SLIDING CONTACT
    Nuruzzaman, D. M.
    Nakajima, A.
    Mawatari, T.
    Ali, M. Y.
    IIUM ENGINEERING JOURNAL, 2007, 8 (01): : 49 - 62
  • [24] Modelling of crack growth under cyclic contact loading
    Glodez, S
    Ren, Z
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 1998, 30 (02) : 159 - 173
  • [25] Elasto-plastic analysis of subsurface layer under cyclic rolling-sliding contact loading
    Murakami, Yukitaka
    Sakae, Chu
    Ichimaru, Kazunori
    Morita, Takehiro
    Nippon Kikai Gakkai Ronbunshu, C Hen/Transactions of the Japan Society of Mechanical Engineers, Part C, 1990, 56 (527): : 1926 - 1934
  • [26] Effects of material heterogeneity on surface fatigue for rough lubricated rolling-sliding contacts
    Morales-Espejel, Guillermo E.
    Boffy, Hugo
    Venner, C. H.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY, 2017, 231 (02) : 274 - 290
  • [27] The role of the second body on the pressurization and entrapment of oil in cracks produced under lubricated rolling-sliding contact fatigue
    Ancellotti, Simone
    Benedetti, Matteo
    Dallago, Michele
    Fontanari, Vigilio
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2017, 91 : 3 - 16
  • [28] Analysis of the mechanisms of action within the dry lubricated rolling-sliding contact of coated surfaces
    Sklenak, Sebastian
    Brimmers, Jens
    Brecher, Christian
    FORSCHUNG IM INGENIEURWESEN-ENGINEERING RESEARCH, 2022, 86 (03): : 357 - 366
  • [29] Hydrogen Generation from Lubricant under Rolling-Sliding Contact
    Enami K.
    Yamada H.
    Komata H.
    Tribology Online, 2024, 19 (04) : 298 - 307
  • [30] Hydrogen Generation from Lubricant under Rolling-Sliding Contact
    Enami, Kakeru
    Yamada, Hiroki
    Komata, Hiroki
    TRIBOLOGY ONLINE, 2024, 19 (04): : 298 - 307