微波雷达诊断自由活塞驱动膨胀管中的活塞运动

IF 1.7 4区 工程技术 Q3 MECHANICS
Y. Kurosaka, K. Shimamura
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引用次数: 0

摘要

应用微波雷达是测量自由活塞驱动装置中活塞运动的有效方法。与传统微波技术相关的一个困难是,它在隔膜破裂时速度快速变化时的空间分辨率。本研究不同于分析驻波峰值的标准做法,而是通过检查微波同相和正交信号的相移来引入一种替代方法。MX6.0 是一种紧凑型自由活塞驱动膨胀管,被用作该技术的试验台。在直径为 50 毫米、长度为 2.0 米的压缩管中使用 4.2 千兆赫的微波频率进行测量,跟踪活塞的运动。在布置微波雷达系统后,测量活塞的速度和位移轨迹。与使用传统微波波长间隔进行的低分辨率测量相比,使用微波相位可在分析活塞运动时获得极高的空间分辨率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Microwave radar diagnostics of piston motion in a free-piston-driven expansion tube

Microwave radar diagnostics of piston motion in a free-piston-driven expansion tube

Application of microwave radar is a useful approach to gauge piston motion in a free-piston driver. One difficulty associated with conventional microwave technique is its spatial resolution during rapid velocity shifts at diaphragm rupture timings. This study, while departing from the standard practice of analyzing standing wave peaks, introduces an alternative by examining the phase shift of the microwave in-phase and quadrature signals. A compact free-piston-driven expansion tube, MX6.0, is used as the test bed for this technique. A microwave frequency of 4.2 GHz is used to take measurements in a compression tube with a diameter of 50 mm and a length of 2.0 m, tracking the motion of the piston. After arranging the microwave radar systems, the piston velocity and displacement trajectory are measured. Compared to the lower-resolution measurements using conventional microwave wavelength intervals, the use of microwave phase allowed for an exceptionally high spatial resolution in analyzing the piston motion.

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来源期刊
Shock Waves
Shock Waves 物理-力学
CiteScore
4.10
自引率
9.10%
发文量
41
审稿时长
17.4 months
期刊介绍: Shock Waves provides a forum for presenting and discussing new results in all fields where shock and detonation phenomena play a role. The journal addresses physicists, engineers and applied mathematicians working on theoretical, experimental or numerical issues, including diagnostics and flow visualization. The research fields considered include, but are not limited to, aero- and gas dynamics, acoustics, physical chemistry, condensed matter and plasmas, with applications encompassing materials sciences, space sciences, geosciences, life sciences and medicine. Of particular interest are contributions which provide insights into fundamental aspects of the techniques that are relevant to more than one specific research community. The journal publishes scholarly research papers, invited review articles and short notes, as well as comments on papers already published in this journal. Occasionally concise meeting reports of interest to the Shock Waves community are published.
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