基于动力吸振原理的低频多模态抑振器设计

程一鹏1,彭子龙1,温华兵1,宋昊2,郭有松3

振动与冲击 ›› 2023, Vol. 42 ›› Issue (3) : 150-158.

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振动与冲击 ›› 2023, Vol. 42 ›› Issue (3) : 150-158.
论文

基于动力吸振原理的低频多模态抑振器设计

  • 程一鹏1,彭子龙1,温华兵1,宋昊2,郭有松3
作者信息 +

Design of low-frequency multi-mode vibration suppressor based on dynamic vibration absorption principle

  • CHENG Yipeng1, PENG Zilong1, WEN Huabing1, SONG Hao2, GUO Yousong3
Author information +
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摘要

为实现结构低频振动控制,基于动力吸振(dynamic vibration absorber,DVA)原理设计了一种多模态抑振器。为研究吸振器阵列与抑振器阵列的抑振效果,建立了附加动力吸振器阵列四边简支板的动力学耦合模型,验证了动力吸振器阵列的振动控制效果;提出了以橡胶板-质量块、橡胶基体-金属柱壳为主要组成结构的多模态低频抑振器,从理论上计算了其各组成结构的轴向共振模态频率,并以动力吸振器参数为基准对抑振器几何参数和材料参数进行了调整,最终通过仿真和实验验证了抑振器阵列振动控制效果。结果表明:当吸振器阵列或抑振器阵列布置位置覆盖结构主要模态下最大变形位置时即可达到最佳控制效果;吸振器阵列与抑振器阵列均有一定的振动控制效果,与吸振器与受控对象间为点接触不同,面接触放大了阻尼在振动控制中的作用,因此抑振器阵列的振动控制效果更为明显。

Abstract

For the purpose of structural low-frequency vibration control, a multi-mode suppressor was designed based on the principle of dynamic vibration absorber (DVA). In order to study the vibration suppression effect of DVAs array and vibration suppressors array, dynamic coupling model of four-edge simply supported plate attached with DVAs array was established, vibration control effect of DVAs array was verified; A multi-mode low-frequency vibration suppressor was established, whose main component is rubber plate attached with mass block, rubber base attached with metal cylindrical shell. Axial resonance modal frequency of each component was theoretically calculated, geometrical parameters and material parameters of vibration suppressor was adjusted based on DVA parameters, vibration control effect of vibration suppressors array was verified by simulation and experiment. Results shows that: the best vibration control effect can be reached when biggest deformation location is covered by DVAs array or vibration suppressors array; both DVAs array and the vibration suppressors array have certain vibration control effect, different from the point contact between the vibration absorber and the controlled object, the surface contact amplifies the damping effect in vibration control, so the vibration control effect of the vibration suppressors array is more obvious.

关键词

动力吸振 / 抑振器 / 多模态控制 / 橡胶基体

Key words

dynamic vibration absorber (DVA) / vibration suppressor / multi-mode vibration control / rubber base

引用本文

导出引用
程一鹏1,彭子龙1,温华兵1,宋昊2,郭有松3. 基于动力吸振原理的低频多模态抑振器设计[J]. 振动与冲击, 2023, 42(3): 150-158
CHENG Yipeng1, PENG Zilong1, WEN Huabing1, SONG Hao2, GUO Yousong3. Design of low-frequency multi-mode vibration suppressor based on dynamic vibration absorption principle[J]. Journal of Vibration and Shock, 2023, 42(3): 150-158

参考文献

[1] Frahm H. Device for damping vibrations of bodies: US, US989958 A[P]. 1911.
[2] Arnold F R. Steady-state behavior of systems provided with nonlinear dynamic vibration[J]. Journal of Applied Mechanics, 1955, 22(4):487-492.
[3] Pipes L A. Analysis of a Nonlinear Dynamic Vibration Absorber[J]. Journal of Applied Mechanics, 1953, 20(4).
[4] 宋伟志,周辉,赵艳青,赵海军,姚永玉.基于磁流变弹性体变刚度动力吸振器的研究[J].舰船科学技术,2015,37(11):64-68.
SONG Weizhi, ZHOU Hui, ZHAO Yanqing, et al. Research on dynamic vibration absorber with variable stiffness based on magnetorheological elastomer[J]. Ship Science and technology, 2015,37(11):64-68.
[5] Lerner A A, Cunefare K A. Performance of MRE-based Vibration Absorbers[J]. Journal of Intelligent Material Systems and Structures, 2008, 19(5):551-563.
[6] 胡海岩,郭大蕾,翁建生.振动半主动控制技术的进展[J]. 振动、测试与诊断,2001(04):3-12+60.
HU Haiyan, GUO Dalei, WENG Jiansheng. Progress of semi-active vibration control technology[J]. Journal of Vibration, Measurement and Diagnosis, 2001(04): 3-12+60.
[7] 孙志卓,王全娟,王付山.一种主动电磁式动力吸振器的研究与设计[J].振动与冲击,2006(03):198-201+218.
SUN Zhizhuo, WANG Quanjuan, WANG Fushan. Research and design of an active electromagnetic dynamic vibration absorber[J]. Journal of Vibration and Shock, 2006(03):198-201+218.
[8] May C, Kuhnen K, Pagliarulo P, et al. Magnetostrictive dynamic vibration absorber (DVA) for passive and active damping[J]. Acta Acustica, 2003.
[9] Daley S, Johnson F A, Pearson J B, et al. Active vibration control for marine applications[J]. Control Engineering Practice, 2004, 12(4):465-474.
[10] 周荣亚.悬臂梁式动力吸振器多频减振研究[J].噪声与振动控制,2017,37(04):197-200.
ZHOU Rongya. Research on multi-frequency vibration reduction of cantilever beam dynamic vibration absorber[J]. Noise and Vibration Control, 2017, 37(04): 197-200.
[11] 陈文华,牛军川.可调频悬臂梁式动力吸振器多频减振研究[J].噪声与振动控制,2021,41(01):188-193.
CHEN Wenhua, NIU Junchuan. Research on multi-frequency vibration reduction of frequency-adjustable cantilever beam dynamic vibration absorber[J]. Noise and Vibration Control,  2021, 41(01): 188-193.
[12]王光. 橡胶减震器设计与计算[J].机电设备, 1978(04):3-7.
WANG Guang. Design and calculation of rubber shock absorber[J]. Mechanical and Electrical Equipment. 1978(04):3-7.
[13] Leissa A W. Vibration of plates[M]. Scientific and Technical Information Division, National Aeronautics and Space Administration, 1969.
[14] 林孔勇. 橡胶工业手册 第六分册: 工业橡胶制品[M]. 化学工业出版社, 1993.
LIN Kongyong. Rubber Industry Handbook, The sixth volume: Industrial rubber product[M]. Chemical Industry Press, 1993
[15] Wang C Y. Vibration of a circular plate with an attached core[J]. Journal of Sound & Vibration, 2005, 280(3-5):1075-1082.
[16] Weisensel G N. Natural frequency information for circular and annular plates[J]. Journal of Sound & Vibration, 1989, 133(1):129-137.
[17]王钰杰,陶猛,符磊,赵雪峰.低频抑振器用于抑制水下薄板振动和声辐射的研究[J].振动与冲击,2020,39(21):233-240.
WANG Yujie, TAO Meng, FU Lei, et al. Low-frequency vibration suppressor applied in suppressing vibration and acoustic radiation of underwater thin plate[J]. Journal of Vibration and Shock, 2020, 39(21): 233-240.
[18]马建刚,盛美萍,韩玉迎.多带隙局域共振单元抑振设计与实验验证[J].振动工程学报,2019,32(06):943-949.
MA Jiangang, SHENG Meiping, HAN Yuying. Design and experimental verification of multiple band gap local resonance unit[J]. Journal of Vibration Engineering, 2019, 32(06): 943-949.
[19]曹志远. 板壳振动理论[M]. 中国铁道出版社, 1989.
CAO Zhiyuan. Vibration theory of plate and shell [M]. China Railway Publishing house Co., 1989

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