CLASSICAL AREAS OF PHENOMENOLOGY |
Prev
Next
|
|
|
Scaling study of the combustion performance of gas–gas rocket injectors |
Wang Xiao-Wei(汪小卫), Cai Guo-Biao(蔡国飙)†, and Jin Ping(金平) |
School of Astronautics, Beijing University of Aeronautics and Astronautics, Beijing 100191, China |
|
|
Abstract To obtain the key subelements that may influence the scaling of gas-gas injector combustor performance, the combustion performance subelements in a liquid propellant rocket engine combustor are initially analysed based on the results of a previous study on the scaling of a gas-gas combustion flowfield. Analysis indicates that inner wall friction loss and heat-flux loss are two key issues in gaining the scaling criterion of the combustion performance. The similarity conditions of the inner wall friction loss and heat-flux loss in a gas-gas combustion chamber are obtained by theoretical analyses. Then the theoretical scaling criterion was obtained for the combustion performance, but it proved to be impractical. The criterion conditions, the wall friction and the heat flux are further analysed in detail to obtain the specific engineering scaling criterion of the combustion performance. The results indicate that when the inner flowfields in the combustors are similar, the combustor wall shear stress will have similar distributions qualitatively and will be directly proportional to pc0.8 dt-0.2 quantitatively. In addition, the combustion peformance will remain unchanged. Furthermore, multi-element injector chambers with different geometric sizes and at different pressures are numerically simulated and the wall shear stress and combustion efficiencies are solved and compared with each other. A multi-element injector chamber is designed and hot-fire tested at several chamber pressures and the combustion performances are measured in a total of nine hot-fire tests. The numerical and experimental results verified the similarities among combustor wall shear stress and combustion performances at different chamber pressures and geometries, with the criterion applied.
|
Received: 16 March 2011
Revised: 16 May 2011
Accepted manuscript online:
|
PACS:
|
47.70.-n
|
(Reactive and radiative flows)
|
|
84.60.Bk
|
(Performance characteristics of energy conversion systems; figure of merit)
|
|
62.40.+i
|
(Anelasticity, internal friction, stress relaxation, and mechanical resonances)
|
|
28.50.Ky
|
(Propulsion reactors)
|
|
Fund: Project supported by the National High Technology Research and Development Program of China (Grant No. 2009AA702*) and the Innovation Foundation of Beijing University of Aeronautics and Astronautics for PhD Graduates (Grant No. 430569). |
Cite this article:
Wang Xiao-Wei(汪小卫), Cai Guo-Biao(蔡国飙), and Jin Ping(金平) Scaling study of the combustion performance of gas–gas rocket injectors 2011 Chin. Phys. B 20 104701
|
[1] |
Dexter C E, Fisher M F, Hulka J R, Denisov K P, Shibanov A A and Agarkov A F 2004 Liquid Rocket Thrust Chambers: Aspects of Modeling, Analysis and Design ed. Yang V, Habiballah M, Hulka J and Popp M Progress in Astronautics and Aeronautics 200 p. 553
|
[2] |
Kenny R J, Moser M D, Hulka J R and Jones G 2006 AIAA Paper No. 4705
|
[3] |
Hulka J R 2008 AIAA Paper No. 5113
|
[4] |
Davis J A and Campbell R L 1997 AIAA Paper No. 3318
|
[5] |
Wim A, de Groot, Thomas J, McGuire and Steven J Schneider 1997 AIAA Paper No. 2847
|
[6] |
Calhoon D, Ito J and Kors D 1973 NASA CR-121234, Contract NAS3-13379
|
[7] |
Foust M J, Deshpande M, Pal S, Ni T, Merkle C L and Santoro R J 1996 AIAA Paper No. 0646
|
[8] |
Schley C A, Hagemann G and Tucker P K 1997 AIAA Paper No. 3302
|
[9] |
Tucker P K, Klemt M D and Smith T D 1997 AIAA Paper No. 3350
|
[10] |
Farhangi S, Yu T, Rojas L, Sprouse K and McKinnon J 1999 AIAA Paper No. 2757
|
[11] |
Archambault M R, Talley D and Peroomian O 2002 AIAA Paper No. 1088
|
[12] |
Smith T D, Klem M D and Breisacher K J 2002 NASA/TM-2002-211982
|
[13] |
Marshall W M, Pal S, Woodward R D and Santoro R J 2005 AIAA Paper No. 3572
|
[14] |
Lin J, West J S, Williamst R W, Tucker P K and Chenoweth J D 2005 AIAA Paper No. 4524
|
[15] |
Tucker P K, Menon S, Merkle C L, Oefelein J C and Yang V 2007 AIAA Paper No. 5572
|
[16] |
Tucker P K, Menon S, Merkle C L, Oefelein J C and Yang V 2008 AIAA Paper No. 5226
|
[17] |
Vaidyanathan R, Tucker P K, Papial N and Shyy W 2004 J. Propul. Power 20 705
|
[18] |
Sozer E, Vaidyanathan A, Segal C and Shyy W 2009 AIAA Paper No. 0449
|
[19] |
Cai G B, Wang X W, Jin P and Gao Y S 2008 AIAA Paper No. 4562
|
[20] |
Wang X W, Cai G B and Gao Y S 2009 AIAA Paper No. 5042
|
[21] |
Wang X W, Gao Y S and Cai G B 2010 J. Aerospace Power 25 691 (in Chinese)
|
[22] |
Wang X W, Gao Y S and Cai G B 2010 J. Aerospace Power 25 1401 (in Chinese)
|
[23] |
Wang X W, Jin P, Zhang G Z and Cai G B 2008 J. Propul. Technol. 4 407 (in Chinese)
|
[24] |
Wang X W, Jin P and Cai G B 2009 J. Beijing University of Aeronautics and Astronautics 35 1095 (in Chinese)
|
[25] |
Wang X W, Jin P and Cai G B 2010 Acta Aeronautica et Astronautica Sinica 32 1305 (in Chinese)
|
[26] |
Cai G B, Wang X W, Jin P and Gao Y S 2011 J. Propul. Power (accepted)
|
[27] |
Wang X W, Cai G B and Jin P 2010 Chin. Phys. B 19 019401
|
[28] |
Wang X W, Cai G B and Gao Y 2011 Chin. Phys. B 20 064701
|
[29] |
JANNAF Rocket Engine Performance Prediction and Evaluation Manual 1975 CPIA Publication p. 246
|
[30] |
Coats D E 2004 Liquid Rocket Thrust Chambers: Aspects of Modeling, Analysis and Design ed. Yang V, Habiballah M, Hulka J and Popp M Progress in Astronautics and Aeronautics 200 p. 601
|
[31] |
Huzel D K and Huang D H 1992 Modern Engineering for Design of Liquid-Propellant Rocket Engines, Progress in Astronautics and Aeronautics 147 AIAA, Washington, DC
|
[32] |
Gao Y W 2002 Experimental Fluid Dynamics (Xian: Northwestern Polytechnical University Press) (in Chinese)
|
[33] |
Pope S B 2000 Turbulent Flows (Cambridge: Cambridge University Press)
|
[34] |
Bian B M, He A Z, Li Z H, Yang L, Zhang P, Shen Z H and Ni X W 2005 Acta Phys. Sin. 54 5534 (in Chinese)
|
[35] |
Liu G Q 1993 Theory of Rocket Engines (Beijing: Aerospace Press) (in Chinese)
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|