带限位隔振系统的冲击响应分析

刘海超1,闫明1,冯麟涵2

振动与冲击 ›› 2019, Vol. 38 ›› Issue (21) : 172-177.

PDF(922 KB)
PDF(922 KB)
振动与冲击 ›› 2019, Vol. 38 ›› Issue (21) : 172-177.
论文

带限位隔振系统的冲击响应分析

  • 刘海超1,闫明1,冯麟涵2
作者信息 +

Shock response of a vibration isolation system with displacement restrictors

  • LIU Haichao1,  YAN Ming1,  FENG Linhan2
Author information +
文章历史 +

摘要

为了提高舰载设备的抗冲击性能,改善限位参数不匹配造成的二次冲击问题,建立了八参数可独立设置的带限位隔振系统数学模型,利用四阶龙格库塔的方法进行冲击仿真计算,并与冲击试验结果进行对比,分析了限位器参数(刚度比,安装间隙)对冲击响应的影响。研究结果表明:当刚度比足够大,存在一个使系统加速度响应取得最大值的特殊间隙,称为共振间隙。共振间隙的存在,增大了系统的加速度响应,加剧了系统的冲击碰撞,但可以通过选择更小的安装间隙,匹配合理刚度比来有效的避免共振间隙现象的产生,进而可以有效的提高舰载设备的抗冲击性能。

Abstract

In order to improve impact resistance of shipborne equipment and ameliorate the secondary impact problem caused by mismatch of limit parameters, the mechanical model with 8 parameters set independently for a vibration isolation system with displacement restrictors was established.The shock simulation computation results obtained with this model and the 4-order Runge-Kutta integration algorithm were compared with those of impact tests.The effects of restrictor parameters including stiffness ratio and installation gap on the system’s shock responses were analyzed.The results showed that when stiffness ratio is large enough, there is a specific gap making the system acceleration response the maximum, it is called resonance gap; the existence of resonance gap amplifies the system’s acceleration response and intensifies the system’s impact collision; but the resonance gap phenomenon can be effectively avoided by choosing a smaller installation gap and matching a reasonable stiffness ratio to effectively improve impact resistance of shipborne equipment.

关键词

限位器 / 龙格库塔 / 刚度比 / 共振间隙 / 抗冲击性能

Key words

displacement restrictors / Runge -Kutta / stiffness ratio / resonance gap / impact resistance

引用本文

导出引用
刘海超1,闫明1,冯麟涵2. 带限位隔振系统的冲击响应分析[J]. 振动与冲击, 2019, 38(21): 172-177
LIU Haichao1, YAN Ming1, FENG Linhan2. Shock response of a vibration isolation system with displacement restrictors[J]. Journal of Vibration and Shock, 2019, 38(21): 172-177

参考文献

[ 1 ]  闫明,刘栋,张磊,等. 舰艇电气设备中簧片式触点开关冲击响应分析[J]. 振动与冲击,2016,35(01):183-187.
YAN Ming, LIU Dong, ZHANG Lei, et al. Shock response analysis for reed contact switches in naval ships’electrical equipment [J]. Journal of Vibration and Shock, 2016,35(01):183-187.
[ 2 ]  高霄汉,汪玉,杜志鹏,等. 一种柴油机机脚螺栓连接结构冲击极限载荷快速计算方法[J]. 振动与冲击,2015,34(18):200-204.
GAO Xiao-han, WANG Yu, DU Zhi-peng, et al. Fast computation method for limit shock load of engine bracket bolts [J]. Journal of Vibration and Shock, 2015,34(18):200-204.
[ 3 ]  王乾勋,闫明,杜志鹏,等. 趋势项误差的低频极限特征理论模型与处理方法研究[J]. 振动与冲击,2018,37(12):239-243.
WANG Qian-xun, YAN Ming, DU Zhi-peng, et al. A low frequency limit theoretical model and a Processingmethod of trend error [J]. Journal of Vibration and Shock, 2018,37(12):239-243.
[ 4 ]  沈荣瀛,华宏星. 舰船机械设备冲击隔离技术研究进展[J]. 船舶力学,2010,20(5):299-301.
SHEN Rong-ying, HUA Hong-xing. Advances in study on shock isolation of naval quipment [J]. Ship Mchanics, 2010, 20(5): 299-301.
[ 5 ]  历行军,赵建华,张春辉. 带限位的隔离系统抗冲击性能分段建模法研究[J]. 兵器装备工程学报,2016,37(8):30-31.
LING Xing-jun, ZHAO Jian-hua, ZHANG Chun-hui. Research on subsection modeling method of shock resistance performance of the single stage vibration isolating system with displacement restrictors [J]. Journal of Ordnance Equipment Engineering, 2016,37(8): 30-31.
[ 6 ]  Scavuzzo R J, Hill G D J, Saxe P. The “Spectrum Dip”: Dynamic Interaction of System Components [J]. Journal of Pressure Vessel Technology, 2015, 137(4): 044701.
[ 7 ]  张春辉,汪玉,吴一红,等. 双限位器隔离系统的冲击响应计算及参数影响分析[J]. 振动与冲击,2015,34(9):125-130.
ZHANG Chun-hui, WANG Yu, WU Yi-hong, et al. Shock response calculation and effects of structural oarameters on shock isolation system with double displacement restrictors[J]. Journal of Vibration and Shock, 2015,34(9): 125-130.
[ 8 ]  Bonet, Javier, Richard D.,et al. Nonliner contiunnm mechanics for finite elemnet analysis [M]. Cambridge University Press, 1997.
[ 9 ]  Rodolph J S,Henry C P. Naval shock analysis and design [M]. The Shock and Vibration Information Analysis Center Booz, Allen and Hamiltion, inc. USA, 2000.
[10] Pfeiffer F, Glocker C. Multibody Dynamics with Unilateral Contacts [M]. Wiley-Interscience, 1996.
[11] Feng Q, Tu J. Modeling and algorithm on a class of mechanical systems with unilateral constraints [J]. Archive of Applied Mechanics, 2006, 76(1-2): 103-116.
[12] 温建明,冯奇. 弹性限位浮筏隔振系统的动力学建模与算法[J]. 船舶力学,2010,14(5):449-555.
WEN Jian-ming,Feng Qi. Model and algorithm for floating raft with elastic limiters [J].Ship Ship Mchanics, 2010, 14(5): 449-555.
[13] 温建明. 神经网络算法在弹性限位浮筏系统中的应用[J].长春理工大学学报(自然科学版),2010,33(1):141-143.
WEN Jian-ming. Algorithm of neural network in floating raft with elastic limners [J]. Journal of Changchun University of Science and Technology (Natural Science Edition), 2010, 33(1): 141-143.
[14] Pogrilyi. Analysis of a Vibration Isolator with Dual Rate Spring and Damper [D]. RMIT Univesity, 2015.
[15] 楼京俊,李爽,杨庆超,等. 长方体形气囊隔振器试验方法及垂向刚度特性研究[J]. 振动与冲击,2017,36(13):184-188.
LOU Jing-jun, LI Yu, YANG Qing-chao, et al. Test method and vertical stiffiless characteristic of a rectangular airbag vibration isolator [J]. Journal of Vibration and Shock, 2017,36(13):184-188.
[16] 金著,何琳,赵应龙. 气囊隔振器囊体帘线等效平衡缠绕角理论与试验研究[J]. 振动与冲击,2018,37(11):160-165.
JIN Zhu, HE Lin, ZHAO Ying-long. Theoretical studyand tests for cord’s equivalent equilibrium winding angle of an air spring capsule [J]. Journal of Vibration and Shock, 2018,37(11): 160-165.
[17] 赵应龙,何琳,黄映云,等. 限位器对隔振系统抗冲击性能的影响[J]. 振动与冲击,2005,24(2):71-76.
ZHAO Ying-long, HE Lin, HUANG Ying-yun, et al. A Inlluence of the displacement restrictor on shock resistance performance of vibration isolation system [J]. Journal of Vibration and Shock, 2005,24 (6):71-76.
[18] 马炳杰,沈建平,王志刚. 弹性限位器对双层隔振装置抗冲击性能影响分析[J]. 噪声与振控,2011,31(6):72-75.
MA Bing-jie, SHEN Jian-ping, WANG Zhi-gang. Affect of displacement restrictor on shock resistance performance of double-stage vibration isolation system[J]. Noise and Vibration Control, 2011,31 (6):72-75.
[19] 江国和,尹立国,吴广明,等. 筏体和基础弹性对设备冲击响应影响的有限元分析[J]. 噪声与振动控制,2004,24(6):11-14.
JIANG Guo-he, YI Li-guo, WU Guang-ming. Effect on No-linear Shock Response of Shipboard Equipment Caused by Elasticity of Raft Body and Base [J]. Noise andVibration Control, 2004, 24(6): 11-14.
[20] 张春辉,汪玉,杜俭业,等. 被动式恒力缓冲装置的设计与性能研究[J]. 振动与冲击,2015,34(13):176-181.
ZHANG Chun-hui, WANG Yu, DU Jian-ye, et al. Design of a passive constant force shock absorber and its characteristics [J]. Journal of Vibration and Shock, 2015,34(13):176-181.
[21] 孙靖雅,焦素娟,张磊,等. 粘滞流体阻尼器冲击缓冲特性研究[J]. 振动与冲击,2013,32(14):196-199.
SUN Jing-ya, JIAO Su-juan, ZHANG Lei. Shock absorption characteristics of a viscous fluid damper [J]. Journal of Vibration and Shock, 2013,32(14):196-199.

PDF(922 KB)

Accesses

Citation

Detail

段落导航
相关文章

/