<listing id="l9bhj"><var id="l9bhj"></var></listing>
<var id="l9bhj"><strike id="l9bhj"></strike></var>
<menuitem id="l9bhj"></menuitem>
<cite id="l9bhj"><strike id="l9bhj"></strike></cite>
<cite id="l9bhj"><strike id="l9bhj"></strike></cite>
<var id="l9bhj"></var><cite id="l9bhj"><video id="l9bhj"></video></cite>
<menuitem id="l9bhj"></menuitem>
<cite id="l9bhj"><strike id="l9bhj"><listing id="l9bhj"></listing></strike></cite><cite id="l9bhj"><span id="l9bhj"><menuitem id="l9bhj"></menuitem></span></cite>
<var id="l9bhj"></var>
<var id="l9bhj"></var>
<var id="l9bhj"></var>
<var id="l9bhj"><strike id="l9bhj"></strike></var>
<ins id="l9bhj"><span id="l9bhj"></span></ins>
Volume 42 Issue 10
Oct.  2020
Turn off MathJax
Article Contents
ZHAO Yi-wei, LIU Yong-qiang, YANG Shao-pu, CHEN Zu-chen. An improved Bouc –Wen model for describing hysteretic characteristics of shock absorbers[J]. Chinese Journal of Engineering, 2020, 42(10): 1352-1361. doi: 10.13374/j.issn2095-9389.2019.10.18.001
Citation: ZHAO Yi-wei, LIU Yong-qiang, YANG Shao-pu, CHEN Zu-chen. An improved Bouc –Wen model for describing hysteretic characteristics of shock absorbers[J]. Chinese Journal of Engineering, 2020, 42(10): 1352-1361. doi: 10.13374/j.issn2095-9389.2019.10.18.001

An improved Bouc –Wen model for describing hysteretic characteristics of shock absorbers

doi: 10.13374/j.issn2095-9389.2019.10.18.001
More Information
  • Corresponding author: E-mail: liuyq@stdu.edu.cn
  • Received Date: 2019-10-18
  • Publish Date: 2020-10-25
  • The error between the actual damping force and the simulated damping force obtained using the Bouc–Wen model under non-identification excitation conditions is large, and the model is too sensitive to non-identification excitation amplitude and thus features poor accuracy. To solve this sensitivity problem, an improved model describing hysteretic characteristics of shock absorbers was proposed. Firstly, the mechanical properties of a magnetorheological (MR) damper were tested to obtain the damping force under various excitation amplitudes, frequencies and currents using a mechanical testing and simulation(MTS) fatigue testing machine. The smooth hysteresis loop curve was simulated based on the relationship between the slope of the hysteresis loop and the damping force. The quadratic polynomial function was used to characterize the relationship between the slope of hysteresis loop and the damping force according to the hysteresis curve characteristics. At the same time, the revision term of the exponential function for the velocity value was introduced, and the parameters of the established improved Simulink model were identified. The damping forces under different working conditions were obtained from the experiment, and the new model was simulated and validated. The damping forces obtained from new model and the experiment were compared, and the curves obtained from the model agree well with the experimental results under different working conditions. Meanwhile, the improved model was compared with the Bouc–Wen model based on the characteristic curves of the damping force. The results show that the improved model can better simulate the damping force values obtained from tests under different conditions, and is superior to the Bouc–Wen model. At the same time, the problem of poor accuracy of the Bouc–Wen model under non identification excitation conditions was improved. The new model lays the foundation for ensuring the accuracy of the vehicle suspension system response under various working conditions.

     

  • loading
  • [1]
    Zheng S H, Lin S W. Research on the nonlinear hysteretic response characteristics of intelligent vibratory roller under horizontal excitation mode. Adv Mater Res, 2013, 694-697: 2964 doi: 10.4028/www.scientific.net/AMR.694-697.2964
    [2]
    張義民, 付立英, 聞邦椿. 單自由度隨機滯回系統的振動響應分析. 振動工程學報, 2004, 17(1):11

    Zhang Y M, Fu L Y, Wen B C. Vibration analysis of uncertain single-degree-of-freedom hysteretic system. J Vib Eng, 2004, 17(1): 11
    [3]
    Shen P H, Lin S W. Mathematic modeling and characteristic analysis for dynamic system with asymmetrical hysteresis in vibratory compaction. Meccanica, 2008, 43(5): 505 doi: 10.1007/s11012-008-9114-x
    [4]
    彭虎, 張進秋, 劉義樂, 等. 基于改進雙Sigmoid模型的磁流變減振器力學建模研究. 振動與沖擊, 2019, 38(15):216

    Peng H, Zhang J Q, Liu Y L, et al. MR damper’s modeling based on improved dual-sigmoid model. J Vib Shock, 2019, 38(15): 216
    [5]
    Khan M S A, Suresh A, Ramaiah N S. Numerical study of magnetic circuit response in magneto-rheological damper. J Eng Des Technol, 2016, 14(1): 196
    [6]
    Yu H J, Sun X T, Xu J, et al. The time-delay coupling nonlinear effect in sky-hook control of vibration isolation systems using Magneto-Rheological Fluid dampers. J Mech Sci Technol, 2016, 30(9): 4157 doi: 10.1007/s12206-016-0827-9
    [7]
    Dutta S, Chakraborty G. Performance analysis of nonlinear vibration isolator with magneto-rheological damper. J Sound Vib, 2014, 333(20): 5097 doi: 10.1016/j.jsv.2014.05.028
    [8]
    Wen Y K. Equivalent linearization for hysteretic systems under random excitation. J Appl Mech, 1980, 47(1): 150 doi: 10.1115/1.3153594
    [9]
    Peng Z L, Zhou C G. Research on modeling of nonlinear vibration isolation system based on Bouc–Wen model. Defence Technol, 2014, 10(4): 371 doi: 10.1016/j.dt.2014.08.001
    [10]
    Stanway R, Sproston J L, Stevens N G. Non-linear modelling of an electro-rheological vibration damper. J Electrostatics, 1987, 20(2): 167 doi: 10.1016/0304-3886(87)90056-8
    [11]
    Guneyisi E, Gesoglu M, Naji N, et al. Evaluation of the rheological behavior of fresh self-compacting rubberized concrete by using the Herschel–Bulkley and modified Bingham models. Arch Civil Mech Eng, 2016, 16(1): 9 doi: 10.1016/j.acme.2015.09.003
    [12]
    Jeong S W. Determining the viscosity and yield surface of marine sediments using modified Bingham models. Geosciences J, 2013, 17(3): 241 doi: 10.1007/s12303-013-0038-7
    [13]
    Turnip A, Hong K S, Park S. Control of a semi-active MR-damper suspension system: A new polynomial model. IFAC Proc Volumes, 2008, 41(2): 4683 doi: 10.3182/20080706-5-KR-1001.00788
    [14]
    段敏, 蘇海華. 汽車磁流變減振器多項式模型的研究. 遼寧工業大學學報: 自然科學版, 2010, 30(6):377

    Duan M, Su H H. Polynomial model research on automobiles magneto-rheological damper. J Liaoning Inst Technol Nat Sci Ed, 2010, 30(6): 377
    [15]
    Lau Y K, Liao W H. Design and analysis of magnetorheological dampers for train suspension. Proc Inst Mech Eng Part F J Rail Rapid Transit, 2005, 219(4): 261 doi: 10.1243/095440905X8899
    [16]
    Peng G R, Li W H, Du H, et al. Modelling and identifying the parameters of a magneto rheological damper with a force-lag phenomenon. Appl Math Model, 2014, 38(15-16): 3763 doi: 10.1016/j.apm.2013.12.006
    [17]
    王維銳, 吳參, 陳穎, 等. 磁流變減振器滯回特性的改進Bouc–Wen模型. 農業機械學報, 2011, 42(2):48

    Wang W R, Wu C, Chen Y, et al. Modified Bouc–Wen model based on hysteretic characteristics experiment of magneto-rheological damper. Trans Chin Soc Agric Machinery, 2011, 42(2): 48
    [18]
    鐘根全, 周云, 李麗娟, 等. 基于GSO算法的BRB改進Bouc–Wen模型參數識別. 建筑結構學報, 2018, 39(增刊1): 387

    Zhong G Q, Zhou Y, Li L J, et al. Parameter identification of BRB based on improved Bouc–Wen model using GSO algorithm. J Building Struct, 2018, 39(Suppl1): 387
    [19]
    Yao G Z, Yap F F, Chen G, et al. MR damper and its application for semi-active control of vehicle suspension system. Mechatronics, 2002, 12(7): 963 doi: 10.1016/S0957-4158(01)00032-0
    [20]
    劉永強, 楊紹普, 廖英英. 一種磁流變阻尼器模型參數識別新方法. 機械工程學報, 2018, 54(6):62 doi: 10.3901/JME.2018.06.062

    Liu Y Q, Yang S P, Liao Y Y. A new method of parameter identification for magnetorheological damper model. J Mech Eng, 2018, 54(6): 62 doi: 10.3901/JME.2018.06.062
    [21]
    Ni Y Q, Ko J M, Wong C W. Nonparametric identification of nonlinear hysteretic systems. J Eng Mech, 1999, 125(2): 206 doi: 10.1061/(ASCE)0733-9399(1999)125:2(206)
    [22]
    彭君義, 李惠, 鈴木祥之. 非線性滑移滯回模型建模. 沈陽建筑大學學報: 自然科學版, 2005, 21(4):325

    Peng J Y, Li H, Susuki Y. Modeling of nonlinear hysteresis with pinching. J Shenyang Jianzhu Univ Nat Sci, 2005, 21(4): 325
    [23]
    劉永強, 楊紹普, 廖英英, 等. 基于遺傳算法的磁流變阻尼器Bouc–Wen模型參數辨識. 振動與沖擊, 2011, 30(7):261

    Liu Y Q, Yang S P, Liao Y Y, et al. Parameter identification of Bouc–wen model for MR damper based on genetic algorithm. J Vib Shock, 2011, 30(7): 261
    [24]
    劉偉棟, 廖英英, 劉永強. 基于GA–PS的軌道橡膠隔振器滯回模型參數識別. 石家莊鐵道大學學報: 自然科學版), 2017, 30(4):46

    Liu W D, Liao Y Y, Liu Y Q. Parameter identifying of the rubber damper hysteresis loop based on GA–PS. J Shijiazhuang Tiedao Univ Nat Sci Ed, 2017, 30(4): 46
    [25]
    廖英英, 劉永強, 劉金喜, 等. MRD模型參數識別及其在振動控制中的應用. 振動、測試與診斷, 2012, 32(2):223

    Liao Y Y, Liu Y Q, Liu J X, et al. MRD model parameter identification and its application in vibration control of vehicle. J Vib Meas Diagn, 2012, 32(2): 223
    [26]
    Liu Y Q, Yang S P, Liao Y Y. A quantizing method for determination of controlled damping parameters of magnetorheological damper models. J Intell Mater Syst Struct, 2011, 22(18): 2127 doi: 10.1177/1045389X11425278
  • 加載中

Catalog

    通訊作者: 陳斌, bchen63@163.com
    • 1. 

      沈陽化工大學材料科學與工程學院 沈陽 110142

    1. 本站搜索
    2. 百度學術搜索
    3. 萬方數據庫搜索
    4. CNKI搜索

    Figures(11)  / Tables(1)

    Article views (3212) PDF downloads(72) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return
    久色视频