气动式振动台振动信号低频能量改善研究

王考;陶俊勇;陈循

振动与冲击 ›› 2009, Vol. 28 ›› Issue (2) : 137-140.

PDF(1481 KB)
PDF(1481 KB)
振动与冲击 ›› 2009, Vol. 28 ›› Issue (2) : 137-140.
论文

气动式振动台振动信号低频能量改善研究

  • 王考,陶俊勇,陈循
作者信息 +

Study on improvement of low frequency energy of vibration signal produced by repetitive shock machine

  • WANG Kao,TAO Jun-yong,CHEN Xun
Author information +
文章历史 +

摘要

摘要:气动式振动台振动信号的低频能量较低,这限制了该类设备在电子产品可靠性强化试验中的进一步应用。由于商业竞争和技术保密等原因,目前国内对该设备的优化设计与自主研发尚未全面展开。本文以气动式振动台的关键部件——气锤为切入点,在全面掌握气锤产生激励信号机理的基础上,推导了气锤产生激励信号的自谱和低频能量的解析表达式,研究了气锤参数(材料参数和结构参数)对气锤产生的激励信号乃至振动台振动信号低频能量的影响,提出了一种改善气动式振动台低频能量的工程可行途径,这对该类设备的性能改善以及自主研发均具有一定的指导意义。

Abstract

Abstract:The early Repetitive Shock (RS) machine has some inherent flaws, such as energy uniformity in frequency domain, lower energy below 2KHz, and so on. These characters confine the application of RS machine in the Reliability Enhancement Testing of electronic assemblies. However, many key technologies of RS machine have not been studied in detail in our country because of lacking technology stuff. In this paper, vibrators which are crucial components of RS machine are regarded as the specific objects. Based on the generating mechanism of exciting signals produced by vibrators, the analysis formulas of power spectrum density and low frequency energy of exciting signals are concluded respectively, the relationships between the parameters of vibrators and the low frequency energy of exiting signals produced by vibrators are studied deeply, and the effective approach to improve the low frequency energy of vibration signal produced by RS machine is put forward at last. In a word, the results of this paper are useful not only to the optimization design but also to the self exploiture of RS machine.

关键词

气动式振动台 可靠性强化试验 气锤 激励信号 低频能量

Key words

Repetitive Shock machine Reliability Enhancement Testing vibrator exciting signal low frequency energy

引用本文

导出引用
王考;陶俊勇;陈循. 气动式振动台振动信号低频能量改善研究 [J]. 振动与冲击, 2009, 28(2): 137-140
WANG Kao;TAO Jun-yong;CHEN Xun. Study on improvement of low frequency energy of vibration signal produced by repetitive shock machine [J]. Journal of Vibration and Shock, 2009, 28(2): 137-140

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