Numerical Analysis of Carbon-based Nozzle Erosion including Transient Heating and Shape Change
Численный анализ эрозии углеродсодержащего сопла с учетом нестационарного нагрева и изменения формы
2022-06-20
SCID: 54.1/wjfhnhyk
Discuss with AI
PATOaxisymmetric CFDcarbon-phenolic nozzlefinite-rate ablationnozzle erosion
Figures from the paper
Abstract (AI)
View Video Presentation: https://doi.org/10.2514/6.2022-3949.vid Nozzle erosion during solid rocket motors and hybrid rocket engines firings needs to be accurately predicted in order to get reliable performance predictions. Moreover, the accurate sizing of the ablative thermal protection system (TPS), ensuring lightweight (i.e., minimum thickness) structures and preventing excessive heating, is of fundamental importance. In this context, reliable numerical models are required to accurately predict the thermochemical and thermophysical behavior of ablative TPS. The aim of the present work is to perform a numerical investigation on the coupled effects of nozzle ablation and of its thermophysical material response. This is achieved by performing axisymmetric computational fluid dynamics (CFD) simulations including finite-rate ablative boundary conditions and simulations obtained with the recently developed Porous material Analysis Toolbox based on Open-FOAM (PATO). Finite-rate thermochemical ablation tables for propulsive nozzle applications are firstly generated and then provided to PATO. The main advantages of employing these finite-rate tables are highlighted by comparison with the classical chemical equilibrium approach. The results obtained by loosely coupling CFD and material response simulations (using both finite-rate and equilibrium ablation tables) are validated by comparison with firing tests data of a sub-scale Space Shuttle solid propellant booster employing a carbon-phenolic nozzle.
Key Findings
1
Axisymmetric CFD simulations with finite-rate ablative boundary conditions are coupled with PATO material-response simulations to model carbon-phenolic nozzle behavior.
2
Comparisons highlight advantages of finite-rate ablation tables over the classical chemical-equilibrium approach.
3
Finite-rate thermochemical ablation tables are generated for propulsive nozzle applications and supplied to PATO.
4
Loosely coupled CFD and material-response predictions, using both finite-rate and equilibrium tables, are validated against sub-scale Space Shuttle solid rocket booster firing-test data.
5
The study numerically investigates coupled nozzle ablation, transient thermophysical material response, and evolving nozzle shape during rocket motor operation.
Research Object
Carbon-phenolic rocket nozzle undergoing ablation during solid rocket motor firing
Research Subject
Coupled thermochemical and thermophysical ablation response, including transient heating, nozzle shape change, and the effects of finite-rate versus chemical-equilibrium ablation modeling
Publication Details
Publication Date
2022-06-20
Journal
Publisher
ISSN
Cited by
0
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest