Mechanics and sliding friction in belt drives with pulley grooves

被引:18
|
作者
Kong, LY [1 ]
Parker, RG [1 ]
机构
[1] Ohio State Univ, Dept Mech Engn, Columbus, OH 43202 USA
关键词
D O I
10.1115/1.2168469
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The steady mechanics of a two-pulley belt drive system are examined where the pulley grooves, belt extension and wedging in the grooves, and the associated friction are considered. The belt is modeled as an axially moving string with the tangential and normal accelerations incorporated. The pulley grooves generate two-dimensional radial and tangential friction forces whose undetermined direction depends on the relative speed between belt and pulley along the contact arc. Different from single-pulley analyses, the entry and exit points between the belt spans and pulleys must be determined in the analysis due to the belt radial penetration into the pulley grooves and the coupling of the driver and driven pulley solutions. A new computational technique is developed to find the steady mechanics of a V-belt drive. This allows system analysis, such as speed/torque loss and maximum tension ratio. The governing boundary value problem (BVP) with undetermined boundaries is converted to a fixed boundary form solvable by a general-purpose BVP solver. Compared to flat belt drives or models that neglect radial friction, significant differences in the steady belt-pulley mechanics arise in terms of belt radial penetration, free span contact points, tension, friction, and speed variations.
引用
收藏
页码:494 / 502
页数:9
相关论文
共 50 条
  • [31] Transient Dynamics of the Metal V-Belt CVT: Effects of Pulley Flexibility and Friction Characteristic
    Srivastava, Nilabh
    Haque, Imtiaz
    JOURNAL OF COMPUTATIONAL AND NONLINEAR DYNAMICS, 2007, 2 (01): : 86 - 97
  • [32] Friction lining coefficient of the drive friction pulley
    Krešák J.
    Peterka P.
    Ambriško Ľ.
    Mantič M.
    Eksploatacja i Niezawodnosc, 2021, 23 (02) : 338 - 345
  • [33] Friction lining coefficient of the drive friction pulley
    Kresak, Jozef
    Peterka, Pavel
    Ambrisko, Lubomir
    Mantic, Martin
    EKSPLOATACJA I NIEZAWODNOSC-MAINTENANCE AND RELIABILITY, 2021, 23 (02): : 338 - 345
  • [34] The mechanics of sliding friction between a rigid indenter and a rubber surface
    Gabriel, P.
    Fukahori, Y.
    Thomas, A. G.
    Busfield, J. J. C.
    CONSTITUTIVE MODELS FOR RUBBER VI, 2010, : 305 - 309
  • [35] Dynamics of belt/pulley frictional contact
    Leamy, MJ
    Barber, JR
    Perkins, NC
    IUTAM SYMPOSIUM ON UNILATERAL MULTIBODY CONTACTS, 2000, 72 : 277 - 286
  • [36] FORCES BETWEEN AN ABRASIVE BELT AND PULLEY
    KIM, H
    MARSHEK, K
    NAJI, M
    MECHANISM AND MACHINE THEORY, 1987, 22 (01) : 97 - 103
  • [37] Eulerian description of non-stationary motion of an idealized belt-pulley system with dry friction
    Oborin, Evgenii
    Vetyukov, Yury
    Steinbrecher, Ivo
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2018, 147 : 40 - 51
  • [38] Adaptive sliding mode control of ball screw drives with friction compensation
    Bao, Dafei
    Tang, Wencheng
    Dong, Liang
    Dongnan Daxue Xuebao (Ziran Kexue Ban)/Journal of Southeast University (Natural Science Edition), 2015, 45 (03): : 455 - 460
  • [39] The theory and mechanics analysis of the belt transmission coupled with elastic engagement and friction
    Chen, Y.
    Huang, P.
    Xu, L.
    Huanan Ligong Daxue Xuebao/Journal of South China University of Technology (Natural Science), 2001, 29 (03): : 47 - 50
  • [40] Transmission error in helical synchronous belt drives in bidirectional operation under no transmitted load (influence of pulley flanges)
    Kagotani, M
    Makita, K
    Ueda, H
    Koyama, T
    JOURNAL OF MECHANICAL DESIGN, 2004, 126 (05) : 881 - 888