弹药技术

水下冲击波超压高速存储测试系统的研究

  • 刘浩 ,
  • 尤文斌 ,
  • 裴东兴 ,
  • 牛跃听
展开
  • 1 中北大学电子测试技术国家重点实验室,太原 030051
    2 中北大学仪器科学与动态测试教育部重点实验室,太原 030051
    3 解放军军械工程学院,石家庄 050003

刘浩(1990-),男,四川内江人,硕士研究生,研究方向:智能控制和动态信息获取。

收稿日期: 2016-04-28

  网络出版日期: 2025-05-23

基金资助

国家自然科学基金(61471385)资助

Research on a Overpressure High-speed Memory and Test System of Underwater Shock Wave

  • LIU Hao ,
  • YOU Wenbin ,
  • PEI Dongxing ,
  • NIU Yueting
Expand
  • 1 National Key Laboratory for Electronic Measurement Technology, North University of China, Taiyuan 030051, China
    2 Key Laboratory of Instrumentation Science and Dynamic Measurement (North University of China), Ministry of Education, Taiyuan 030051, China
    3 Ordnance Engineering College of PLA, Shijiazhuang 050003, China

Received date: 2016-04-28

  Online published: 2025-05-23

摘要

针对当前水下冲击波超压测试中存在仪器布设繁杂、采样频率低、关键数据难以及时获取等问题,设计了一种水下冲击波超压存储系统。提出双级流水线循环存储结构实现数据高速存储,运用触发地址回溯检索算法精准定位有效数据存储位置,以ZigBee无线网络交互通信完成测试系统的智能配置、状态监控和关键数据及时提取。试验表明该系统能以10MB/s的速率完整记录冲击波超压瞬态信号,具有智能化、易布设等特点,适用于水下冲击波超压信号的测试。

本文引用格式

刘浩 , 尤文斌 , 裴东兴 , 牛跃听 . 水下冲击波超压高速存储测试系统的研究[J]. 弹箭与制导学报, 2017 , 37(1) : 60 -64 . DOI: 10.15892/j.cnki.djzdxb.2017.01.014

Abstract

In order to solve the problems of underwater shock wave overpressure test, such as the complicated arrangement of instruments, the low sampling frequency and the difficulty of obtaining the key data in time, the underwater shock wave overpressure storage system was designed. To realize high-speed data storage, a new two-stage pipeline circular storage structure was proposed seriously. Applying the trigger address back-track retrieval algorithm to position data storage location precisely. The intelligent configuration, condition monitoring and key data timely extraction were completed by ZigBee wireless network. The test results indicated that the system could fully record the shock wave overpressure transient signal with 10 MB/s rate, which had advantages of intelligence and easy to layout, and it was applicable for the test of underwater shock wave overpressure signal.

参考文献

[1]
WANG GH, ZHANG SR, YU M, et al. Investigation ofthe shock wave propagation characteristics and cavitationeffects of underwater explosion near boundaries[J]. Applied Ocean Researoh, 2014. 46: 40- 53.
[2]
宫国田, 金辉, 张姝红,等. 国外舰艇抗水下爆炸研究进展. 兵工学报, 2010, 31(增刊1): 293-298.
[3]
丁永红, 尤文斌, 马铁华. 舰用动爆冲击波记录系统的设计与应用.爆炸与冲击,2013, 33(2):194-199.
[4]
李丽萍, 孔德仁, 苏建军. 毁伤工况条件下冲击波压力电测法综述.爆破,2015, 32(2):39-46.
[5]
IGRA Ozer, SEILER Friedrich. Experimental methods ofshock wave research [M]. Swifzerland: Springer International Publishing, 2016: 53-86.
[6]
杨帆, 梁永烨, 杜红棉,等. 毁伤威力场冲击波无线分布式测试方法研究[J].传感技术学报,2015,28(1): 71-76.
[7]
许其容, 尤文斌, 马铁华,等. 基于无线控制的爆炸场多参数存储测试系统 电子器件,2014,37(2): 307-310.
[8]
尚兴宏. 无线传感器网络若干关键技术的研究[D]. 南京: 南京理工大学, 2013.
[9]
刘帆, 杜红棉, 范锦彪,等. 炮口冲击波超压无线存储测试系统设计[J].传感技术学报,2014,27(2): 272-276.
[10]
杜红棉, 祖静. 无线冲击波超压测试系统研究[J]. 火力与指挥控制,2012,37(1):198-200.
[11]
李澎, 徐更光. 水下爆炸冲击波传播的近似计算. 火炸药学报,2006, 29(4): 21-24.
[12]
朱锡, 牟金磊, 洪江波,等. 水下爆炸气泡脉动特性的试验研究.哈尔滨工程大学学报,2007, 28(4): 365-368.
[13]
张姝红, 周华, 权琳,等. 水下爆炸气泡脉动试验研究[J].爆破,2014, 31(1): 106-109.
文章导航

/