Show/Hide Menu
Hide/Show Apps
Logout
Türkçe
Türkçe
Search
Search
Login
Login
OpenMETU
OpenMETU
About
About
Open Science Policy
Open Science Policy
Open Access Guideline
Open Access Guideline
Postgraduate Thesis Guideline
Postgraduate Thesis Guideline
Communities & Collections
Communities & Collections
Help
Help
Frequently Asked Questions
Frequently Asked Questions
Guides
Guides
Thesis submission
Thesis submission
MS without thesis term project submission
MS without thesis term project submission
Publication submission with DOI
Publication submission with DOI
Publication submission
Publication submission
Supporting Information
Supporting Information
General Information
General Information
Copyright, Embargo and License
Copyright, Embargo and License
Contact us
Contact us
Effect of Particle Size Distribution and Complex Refraction Index of Alumina on Infrared Rocket Plume Signatures
Date
2023-01-01
Author
YAŞAR, MEHMET
Ozen, G.
Selçuk, Nevin
Külah, Görkem
Metadata
Show full item record
This work is licensed under a
Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License
.
Item Usage Stats
60
views
0
downloads
Cite This
Although there are several studies existing in the literature modeling the infrared radiation signatures of solid motor rocket plumes, none of them investigate the effect of some simplifying assumptions such as using gray optical properties, Sauter-mean/mass-mean diameters, temperature-independent optical properties, etc., on thermal radiation characteristics of rocket plumes. These assumptions have the potential to improve the computational efficiency of the radiative transfer calculations by reducing the CPU time required by the solution of Mie theory. Therefore, the objective of this study is to investigate the influence of using (i) mean diameters instead of a particle size distribution (PSD), (ii) optical properties for different phases and crystal structures of Al2O3, (iii) temperature-independent optical properties of Al2O3, and (iv) gray optical properties of Al2O3 particles instead of spectral ones on the radiative heat transfer predictions under rocket plume conditions. For this purpose, a 3-D radiation model based on discrete ordinates method (DOM) coupled with statistical narrow band correlated-k (SNBCK) and Mie theory is utilized. Based on the outcomes of this study, it can be concluded that utilizing mean diameters, temperature-independent optical properties, and gray optical properties of Al2O3 for the calculation of particle radiative properties provides reasonably accurate radiative heat transfer predictions. Moreover, presence of different phases and crystal structures of Al2O3 in the rocket plume leads to significantly different infrared radiation signatures.
Subject Keywords
Aluminized propellants
,
infrared plume signature
,
particle radiation
,
solid rocket motors
,
thermal radiation
URI
https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85165717729&origin=inward
https://hdl.handle.net/11511/104974
Journal
Combustion Science and Technology
DOI
https://doi.org/10.1080/00102202.2023.2239458
Collections
Graduate School of Natural and Applied Sciences, Article
Citation Formats
IEEE
ACM
APA
CHICAGO
MLA
BibTeX
M. YAŞAR, G. Ozen, N. Selçuk, and G. Külah, “Effect of Particle Size Distribution and Complex Refraction Index of Alumina on Infrared Rocket Plume Signatures,”
Combustion Science and Technology
, pp. 0–0, 2023, Accessed: 00, 2023. [Online]. Available: https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85165717729&origin=inward.