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基于皮托管结构的动态压力传感器研究

A study on dynamic pressure sensor based on Pitot tube structure.

作者信息

Yu Hao, Wang Xiaofeng, Liu Yan, Bai Fan

机构信息

State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, People's Republic of China.

Beijing Institute of Technology Chongqing Innovation Center, Chongqing 401120, People's Republic of China.

出版信息

Rev Sci Instrum. 2024 Mar 1;95(3). doi: 10.1063/5.0194794.

Abstract

To meet the demand for the accurate measurements of the dynamic pressure of a shock wave, a composite dynamic pressure sensor design method is proposed based on the formation mechanism, propagation characteristics, special testing environment of the dynamic pressure, and Pitot tube structure. The dynamic pressure of the shock wave is evaluated by the total pressure and static pressure units installed in the composite sensor. FLUENT simulation software was used to analyze the aerodynamic characteristics of the dynamic pressure sensor, and parameters such as the structural size and inlet position of the sensor were determined. In response to the special experimental environment of the shock wave, the requirements for the dynamic pressure measurements under damage conditions were analyzed, and a dynamic pressure testing system was established. Dynamic pressure tests with four 2,4,6-trinitrotoluene [C7H5(NO2)3] equivalents of 1, 2, 15, and 20 kg were carried out. The experimental results show that the proposed sensor design method can accurately and effectively measure the dynamic pressure signal, and the dynamic pressure gain multiple decreases with an increase in the proportional distance. This provides an effective testing method for evaluating the dynamic pressure damage effect of ammunition systems.

摘要

为满足对冲击波动压进行精确测量的需求,基于动压的形成机理、传播特性、特殊测试环境以及皮托管结构,提出了一种复合动压传感器设计方法。冲击波的动压由复合传感器中安装的总压和静压单元进行评估。使用FLUENT仿真软件分析动压传感器的气动特性,并确定传感器的结构尺寸和入口位置等参数。针对冲击波的特殊实验环境,分析了损伤条件下动压测量的要求,并建立了动压测试系统。进行了当量为1、2、15和20 kg的4次2,4,6-三硝基甲苯[C7H5(NO2)3]的动压测试。实验结果表明,所提出的传感器设计方法能够准确有效地测量动压信号,且动压增益倍数随比例距离的增加而减小。这为评估弹药系统的动压损伤效应提供了一种有效的测试方法。

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