A review of diaphragmless shock tubes for interdisciplinary applications
S. Janardhanraj, S. K. Karthick, A. Farooq

TL;DR
This review paper discusses the development, design, and applications of diaphragmless shock tubes, highlighting their advantages over traditional diaphragm-based systems and exploring their potential in advancing shockwave research.
Contribution
It provides a comprehensive overview of various diaphragmless shock tube designs, including a generalized mathematical model and analysis of their performance factors.
Findings
Diaphragmless shock tubes offer better repeatability and cleaner flow.
Valve design improvements enhance shock formation and efficiency.
Applications span multiple research fields, expanding shockwave technology.
Abstract
Shock tubes have emerged as an effective tool for applications in various fields of research and technology. The conventional mode of shock tube operation employs a frangible diaphragm to generate shockwaves. The last half-century has witnessed significant efforts to replace this diaphragm-bursting method with fast-acting valves. These diaphragmless methods have good repeatability, quick turnaround time between experiments, and produce a clean flow, free of diaphragm fragments in contrast to the conventional diaphragm-type operation. The constantly evolving valve designs are targeting shorter opening times for improved performance and efficiency. The present review is a compilation of the different diaphragmless shock tubes that have been conceptualized, developed, and implemented for various research endeavors. The discussions focus on essential factors, including the type of actuation…
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Taxonomy
TopicsHydraulic and Pneumatic Systems · Electromagnetic Launch and Propulsion Technology · Astro and Planetary Science
