New Method to Determine the Velocities of Particles on a Solid Propellant Surface in a Solid Rocket Motor

Author:

Xiao Yumin1,Amano R. S.21,Cai Timin3,Li Jiang3

Affiliation:

1. Mechanical Engineering Department, University of Wisconsin-Milwaukee, Milwaukee, WI 53211

2. Fellow ASME

3. College of Astronautics, Northwestern Polytechnical University, Xi’an, Shaanxi Province, 710072 People’s Republic of China

Abstract

Use of aluminized composite solid propellants and submerged nozzles are common in solid rocket motors (SRM). Due to the generation of slag, which injects into a combusted gas flow, a two-phase flow pattern is one of the main flow characteristics that need to be investigated in SRM. Validation of two-phase flow modeling in a solid rocket motor combustion chamber is the focus of this research. The particles’ boundary conditions constrain their trajectories, which affect both the two-phase flow calculations, and the evaluation of the slag accumulation. A harsh operation environment in the SRM with high temperatures and high pressure makes the measurement of the internal flow field quite difficult. The open literature includes only a few sets of experimental data that can be used to validate theoretical analyses and numerical calculations for the two-phase flow in a SRM. Therefore, mathematical models that calculate the trajectories of particles may reach different conclusions mainly because of the boundary conditions. A new method to determine the particle velocities on the solid propellant surface is developed in this study, which is based on the x-ray real-time radiography (RTR) technique, and is coupled with the two-phase flow numerical simulation. Other methods imitate the particle ejection from the propellant surface. The RTR high-speed motion analyzer measures the trajectory of the metal particles in a combustion chamber. An image processing software was developed for tracing a slug particle path with the RTR images in the combustion chamber, by which the trajectories of particles were successfully obtained.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

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1. Influence of Aluminum Content and Agglomerates Initial Velocity on Erosion in Solid Rocket Motor;Journal of Energy Resources Technology;2024-07-26

2. Study of Particle Size Measurement by the Extinction Method in Flame;Energies;2023-06-19

3. Mechanical Erosion Investigation in Solid Rocket Motor Nozzle Through Droplet Breakup and Surface Tension Influence;Journal of Energy Resources Technology;2023-03-28

4. Investigation of Liquid Breakup Process in Solid Rocket Motor;Proceeding of 10th International Symposium on Turbulence, Heat and Mass Transfer, THMT-23, Rome, Italy, 11-15 September 2023;2023

5. Investigation of Liquid Breakup Process in Solid Rocket Motor;Proceeding of 10th International Symposium on Turbulence, Heat and Mass Transfer, THMT-23, Rome, Italy, 11-15 September 2023;2023

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