基于立体热成像的电磁驱动灭火弹设计
庹忠曜 1 ,江珊 2 ,黄洵桢 3 ,许增博 4 ,孙科学 2 ,吴润强 2*
1.南京邮电大学 自动化学院、人工智能学院,江苏 南京 210023;2.南京邮电大学 电子与光学工程学院、柔性电子(未来技术)学院,江苏 南京 210023;3.南京邮电大学 通信与信息工程学院,江苏 南京 210023;4.南京邮电大学经济学院,江苏 南京 210023
Design of Electromagnetic Driven Fire Extinguishing Ammunition Based on Stereoscopic Thermal Imaging
TUO Zhongyao 1 ,JIANG Shan 2 ,HUANG Xunzhen 3 ,XU Zengbo 4 ,SUN Kexue 2 ,WU Runqiang 2*
摘要
针对现有灭火弹灭火技术仍需人工操作,且具有延迟久、准度低、仅适用于明火环境等缺点,设计出一款基于立体热成像的电磁驱动灭火弹技术。该设计可通过数据插值以及三维成像原理确定当前区域内的最佳灭火点,并通过电磁炮驱动的形式使灭火弹垂直命中最佳灭火点,实现了在时间占用与灭火功能上的双重高效性,对于目前的灭火弹智能化领域以及潜在火灾的防范具有一定应用价值。
关键词:
灭火弹
热成像
电磁炮
火灾防范
Abstract:
A three-dimensional thermal imaging based electromagnetic driven fire extinguishing technology is designed to address the shortcomings of existing fire extinguishing technologies that still require manual operation and have long delays,low accuracy,and are only suitable for open fire environments.This design can determine the optimal fire extinguishing point in the current area through data interpolation and three- dimensional imaging principles,and use electromagnetic cannon driving to vertically hit the optimal fire extinguishing point,achieving dual efficiency in time occupation and fire extinguishing function.It has certain application value for the current intelligent field of fire extinguishing shells and potential fire prevention.
Key words:
fire extinguisher
thermal imaging
electromagnetic gun
fire prevention
出版日期: 2024-02-25
发布日期: 2024-02-25
整期出版日期: 2024-02-25
引用本文:
庹忠曜 , 江 珊 , 黄洵桢 , 许增博 , 孙科学 , 吴润强 .
基于立体热成像的电磁驱动灭火弹设计
[J]. 大学物理实验, 2024, 37(1): 69-74.
TUO Zhongyao, JIANG Shan , HUANG Xunzhen , XU Zengbo , SUN Kexue , WU Runqiang .
Design of Electromagnetic Driven Fire Extinguishing Ammunition Based on Stereoscopic Thermal Imaging
. Physical Experiment of College, 2024, 37(1): 69-74.
链接本文:
http://dawushiyan.jlict.edu.cn/CN/10.14139/j.cnki.cn22-1228.2024.01.015
或
http://dawushiyan.jlict.edu.cn/CN/Y2024/V37/I1/69
[1]
. [J]. Physical Experiment of College, 2020, 33(1): 0
.
[2]
. [J]. Physical Experiment of College, 2020, 33(1): 0
.
[3]
WU Ming, ZENG Hong, ZHANG Wenpeng, ZHANG Yuanwei, DAI Zhenbing.
Theoretical and Experimental Research of A zimuthal-Radial Pendulum
[J]. Physical Experiment of College, 2020, 33(1): 1
-6
.
[4]
LIU Weiwei, SUN Qing, LIU Chenglin. Research on Selection of Critical Magnetization Current for Measuring Charge-Mass Ratio of Electron by Magnetron Controlling
[J]. Physical Experiment of College, 2020, 33(1): 7
-9
.
[5]
DENG Li, LIU Yang, ZHANG Hangzhong, ZHOU Kewei, ZHAO guoru, WEI luanyi.
MATLAB simulation of Fourier transform of Gaussian beam and the spatial filtering effects basing on 4F optical imaging system
[J]. Physical Experiment of College, 2020, 33(1): 10
-16
.
[6]
MA Kun.
Experiment Study on the Measuring Young' s Modulus by Stretching
[J]. Physical Experiment of College, 2020, 33(1): 17
-20
.
[7]
FEI Xianxiang, CHEN Chunlei, WANG Wenhua, SHI Wenqing, HUANG Cunyou.
Design of Lens Group Focal Length Measurement System Based on Object-Image Parallax Comparison
[J]. Physical Experiment of College, 2020, 33(1): 21
-24
.
[8]
LI Chunjiang, LI Luyu, YANG Jinglei, LI Tingrong, XIANG Wenli.
A New Method for Simple and Rapid Measurement of Refractive Index
[J]. Physical Experiment of College, 2020, 33(1): 25
-28
.
[9]
WANG Cuiping, YAO Mengyu, YE Liu, LI Aixia, ZHANG Ziyun, DAI Peng.
Progress and Applications of Electron Spin Resonance in Biology
[J]. Physical Experiment of College, 2020, 33(1): 29
-33
.
[10]
CHEN Yingmo, SHEN Siyi, WANG Jie.
Study on the Characteristics of Silicon Photocells
[J]. Physical Experiment of College, 2020, 33(1): 34
-36
.
Viewed
Full text
Abstract
Cited
Shared
Discussed