Mechanical steering compensators for high-performance motorcycles

被引:97
|
作者
Evangelou, Simos
Limebeer, David J. N. [1 ]
Sharp, Robin S.
Smith, Malcolm C.
机构
[1] Univ London Imperial Coll Sci Technol & Med, Dept Elect & Elect Engn, London SW7 2AZ, England
[2] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England
关键词
D O I
10.1115/1.2198547
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
This paper introduces the idea of using mechanical steering compensators to improve the dynamic behavior of high-performance motorcycles. These compensators are seen as possible replacements for a conventional steering damper and comprise networks of springs, dampers, and a less familiar component called the inerter The inerter was recently introduced to allow the synthesis of arbitrary passive mechanical impedances, and finds a potential application in the present work. The design and synthesis of these compensation systems make use of the analogy between passive electrical and mechanical networks. This analogy is reviewed alongside the links between passivity, positive reality, and network synthesis. Compensator design methods that are based on classical Bode-Nyquist frequency-response ideas are presented. Initial designs are subsequently optimized using a sequential quadratic programing algorithm. This optimization process ensures improved performance over the machine's entire operating regime. The investigation is developed from an analysis of specific mechanical networks to the class of all biquadratic positive real functions. This aspect of the research is directed to answering the question: "What is the best possible system performance achievable using any simple passive mechanical network compensator?" The study makes use of computer simulations, which exploit a state-of-the-art motorcycle model whose parameter set is based on a Suzuki GSX-R1000 sports machine. The results show that, compared to a conventional steering damper, it is possible to obtain significant improvements in the dynamic properties of the primary oscillatory modes, known as "wobble" and "weave."
引用
收藏
页码:332 / 346
页数:15
相关论文
共 50 条
  • [41] Fabrication and mechanical properties of high-performance aluminum alloy
    Wei-Wei Yang
    Zhi-Meng Guo
    Hui-Qin Cao
    Ji Luo
    An-Ping Ye
    Rare Metals, 2014, 33 (04) : 400 - 403
  • [42] MECHANICAL BANDWIDTH AS A GUIDELINE TO HIGH-PERFORMANCE MANIPULATOR DESIGN
    TOWNSEND, WT
    SALISBURY, JK
    PROCEEDINGS - 1989 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION, VOL 1-3, 1989, : 1390 - 1395
  • [43] Electro-mechanical characterization of high-performance piezoactuators
    Janker, P
    MATHEMATICS AND CONTROL IN SMART STRUCTURES - SMART STRUCTURES AND MATERIALS 1997, 1997, 3039 : 670 - 677
  • [44] Fabrication and mechanical properties of high-performance aluminum alloy
    Wei-Wei Yang
    Zhi-Meng Guo
    Hui-Qin Cao
    Ji Luo
    An-Ping Ye
    Rare Metals, 2014, 33 : 400 - 403
  • [45] MANUFACTURE ORIENTED DESIGN OF HIGH-PERFORMANCE MECHANICAL FILTERS
    GUNTHER, AE
    THIELE, E
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS, 1980, 27 (12): : 1241 - 1250
  • [46] Measurement the longitudinal mechanical properties of high-performance fibres
    Kawabata, S
    Kotani, T
    Yamashita, Y
    JOURNAL OF THE TEXTILE INSTITUTE, 1995, 86 (02) : 347 - 359
  • [47] Structural and mechanical properties of a high-performance BN fibre
    Bernard, S
    Chassagneux, F
    Berthet, MP
    Vincent, H
    Bouix, J
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2002, 22 (12) : 2047 - 2059
  • [48] Dynamic mechanical and thermal characterization of high-performance polybenzoxazines
    Shen, SB
    Ishida, H
    JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 1999, 37 (23) : 3257 - 3268
  • [49] Investigating the mechanical performance of nano additives reinforced high-performance concrete
    Mokhtar, M. M.
    Morsy, M.
    Taha, N. A.
    Ahmed, Emad M.
    CONSTRUCTION AND BUILDING MATERIALS, 2022, 320
  • [50] Common underlying steering curves for motorcycles in steady turns
    Karanam, Venkata Mangaraju
    Chatterjee, Anindya
    VEHICLE SYSTEM DYNAMICS, 2011, 49 (06) : 931 - 948