自动张紧器迟滞特性计算与试验分析

郭三本1,李广龙1,李利平1,上官文斌1,龙尚斌1,魏水生2,王军成2

振动与冲击 ›› 2020, Vol. 39 ›› Issue (24) : 278-286.

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振动与冲击 ›› 2020, Vol. 39 ›› Issue (24) : 278-286.
论文

自动张紧器迟滞特性计算与试验分析

  • 郭三本1,李广龙1,李利平1,上官文斌1,龙尚斌1,魏水生2,王军成2
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Calculation and experimental analysis of the hysteretic behavior of an automatic tensioner

  • GUO Sanben1, LI Guanglong1, LI Liping1, SHANGGUAN Wenbin1, LONG Shangbin1, WEI Shuisheng2, WANG Juncheng2
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摘要

以发动机前端附件驱动系统的自动张紧器为研究对象,分析张紧器摩擦副摩擦力矩的产生机理,建立张紧器在动静态激励下迟滞特性的计算模型,分析了各个摩擦副对张紧器摩擦力矩的贡献和区别了双阻尼件的作用。开展张紧器的耐久试验和在不同激励下的迟滞特性试验,验证了模型的正确性。研究张紧器在准静态激励下不同工作位置的输出力矩的计算结果和试验结果的误差与动摩擦因数的关系,提供用于优化计算结果的动摩擦因数的取值方法,分析了不同激励参数对张紧器迟滞特性的影响。本文的模型可有效预测张紧器的迟滞特性,获得张紧器的输出力矩、阻尼比等性能参数,对张紧器的设计开发具有工程意义。

Abstract

An automatic tensioner used in an engine front end accessory drive system was taken as a study object.The friction torque of friction pairs in tensioner was analyzed and a computational model was established to calculate the hysteresis characteristics of the tensioner under dynamic and static excitation.The contribution of each friction pair to the friction torque was analyzed and the role of the double dampers was distinguished.Experiment of the hysteresis characteristics of the tensioner under different excitation and the durability test were carried out to validate the presented model.The errors between the result of calculation and measurement for the output torque of the tensioner at different working positions under the static excitation were studied by different sliding friction factors.Meanwhile the method for choosing the sliding friction factor was given to optimize the calculating result.The influence of excitation parameters on the hysteresis characteristics of tensioner was investigated.The model presented in the paper can effectively predict the hysteresis characteristics of the tensioner.It is helpful to acquire the performance parameters such as the output torque and damping ratio and to make some engineering significance for the design of the tensioner.

关键词

自动张紧器 / 迟滞特性 / 模型 / 摩擦力矩 / 试验

Key words

automatic tensioner / hysteresis characteristics / model / friction torque / experimental test

引用本文

导出引用
郭三本1,李广龙1,李利平1,上官文斌1,龙尚斌1,魏水生2,王军成2. 自动张紧器迟滞特性计算与试验分析[J]. 振动与冲击, 2020, 39(24): 278-286
GUO Sanben1, LI Guanglong1, LI Liping1, SHANGGUAN Wenbin1, LONG Shangbin1, WEI Shuisheng2, WANG Juncheng2. Calculation and experimental analysis of the hysteretic behavior of an automatic tensioner[J]. Journal of Vibration and Shock, 2020, 39(24): 278-286

参考文献

[1]  Shangguan W B, Zeng X K. Modeling and validation of rotational vibration responses for accessory drive system—Part II: simulations and analyses[J]. Journal of Vibration and Acoustics, 2013, 135(3):031003(1-13).
[2] Zhu H, Hu Y, Pi Y. Transverse hysteretic damping characteristics of a serpentine belt: Modeling and experimental investigation[J]. Journal of Sound and Vibration, 2014, 333(25):7019-7035.
[3] Zhao J, Barker C, Oliver L, et al. Experimental testing and modeling of automotive automatic belt tensioners [C]//SAE Technical Paper 980839,1998.
[4] Michon G, Manin L, Dufour R. Hysteretic behavior of a belt tensioner: modeling and experimental investigation [J]. Journal of Vibration and control, 2005, 11(9):1147-1158.
[5] Jérome Bastien, Michon G, Manin L, et al. An analysis of the modified Dahl and Massing models: Application to a belt tensioner[J]. Journal of Sound and Vibration, 2007, 302(4):841-864.
[6] Chatelet E, Michon G, Manin L, et al. Stick/slip phenomena in dynamics: choice of contact model, numerical predictions & experiments [J]. Mechanism and Machine Theory, 2008, 43(10):1211-1224.
[7] 曾祥坤, 王红云, 刘建荣.附件驱动系统中自动张紧器的动态特性实测与建模分析[J].振动与冲击,2014,33(18):149-155.
ZENG Xiangkun, Wang Hongyun, LIU Jianrong. Tests for dynamic characteristic of an automatic tensioner in an accessory drive system and its modeling[J]. Journal of Vibration and Shock, 2014, 33(18):149-155.
[8] 胡玉梅, 张登明, 刘进,等. 一种自动张紧装置阻尼系数影响因素的研究[J]. 汽车工程, 2013, 35(9):785-789.
HU Yumei, ZHANG Dengming, LIU Jin, et al. A research on factors influencing the damping coefficient of an automatic tensioner[J]. Automotive Engineering, 2013, 35(9):785-789.
[9] Hao Z, Yumei H, Yangjun P, et al. Hysteretic damping characteristics of a mechanical tensioner: Modeling and experimental investigation[J]. Proceedings of the Institution of Mechanical Engineers Part D Journal of Automobile Engineering, 2018; 1-13.
[10] 张英会,罗圣国,郭荣生等.弹簧[M].北京:机械工业出版社,1997: 133-141.
ZHANG Yinghui, LUO Shengguo, GUO Rongsheng, et al. Spring[M]. Beijing, China Machine Press. 1997: 133-141.
[11] Vladimir Kobelev. Durability of Springs[M]. Berlin: Springer,2017:8-10.
[12] 潘承怡,车承斌,李降虎,等.扩张式自激超越弹簧离合器的原理与计算[J]. 哈尔滨理工大学学报, 2000, 5(3):55-58.
PAN Chengyi, CHE Chengbin, LI Xianghu, et al. Principle and calculation for expanding type of self-energizing overrunning spring clutch[J]. Jounal Harbin University of Science and Technology, 2000, 5(3):55-58.
[13] Zhang Y Q and Shangguan W B. A novel approach for lower frequency performance design of hydraulic engine mounts. Computers and Structures,2006; 84(8-9):572-584.
[14] 闻邦椿,张义民等.机械设计手册:第六卷[M].5版.北京:机械工业出版社,2011:4305-4307.
WEN Bangchun, ZHANG Yimin, et al. Hand book of mechanical design[M]. Beijing, China Machine Press. 2011: 4305-4307.
[15] Archard J F. Contact and rubbing of flat surfaces[J]. Journal of Applied Physics.,2004, 24(8):981-988.

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