Annular Air Gap Area Impact on Flame Regime Transition and Combustion in Low-chamber-pressure Air Heater

Document Type : Regular Article

Authors

Advanced Propulsion Technology Laboratory, College of Aerospace Science and Engineering, National University of Defense Technology, Changsha, 410073, China

10.47176/jafm.19.1.3721

Abstract

This study combines high-speed shadowgraph imaging with numerical simulations to systematically examine the effect of the annular air gap area on the spray combustion characteristics of an alcohol-liquid-oxygen-air tripropellant coaxial direct-flow injector in an air heater operating under a low chamber pressure of 1.2 MPa. The underlying mechanisms of ignition, flame structure, injector atomization, and combustion stability are analyzed in detail. Results show that the annular air gap area has a significant impact on flame morphology and combustion performance. When the air gap area is relatively large (corresponding to an annular gap spacing of 1.95 mm), an elongated attached flame forms, and ignition is completed within 19 ms. Although the short ignition time and favorable flame stability are advantageous, the combustion efficiency is relatively low (91%), and the nozzle and throat are prone to ablation. When the air gap area is moderate (1.41 mm spacing), a conical flame develops, exhibiting the longest ignition time (997.4 ms) and a stratified structure consisting of fuel-rich combustion at the core and fuel-lean combustion at the periphery. This configuration demonstrates good stability. When the air gap area is small (1.10 mm spacing), a lifted flame forms. Although mixing and ignition occur relatively quickly (around 386.4 ms), stability is poor, with large chamber pressure fluctuations and a high risk of extinction once the air velocity exceeds the critical threshold. Reducing the air gap area effectively shortens the liquid oxygen atomization distance by 50% and significantly improves evaporation efficiency; however, excessive reduction promotes ignition-quenching-reignition cycles and worsens flame instability. Further analysis indicates that flame stability is primarily governed by the ratio of injection velocity to flame propagation velocity. When this ratio exceeds a critical value, shear-layer instability arises, increasing the amplitude of chamber pressure fluctuations by up to 200%. This research provides a theoretical foundation for optimizing injector design and improving combustion stability control in air heaters. The insights gained are essential for enhancing ignition reliability and thermal protection in hypersonic applications.

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leksandrov, V. Y., & Moseev, D. S. (2014). Comparison of methods of flight simulation using a combustion heated facility. Combustion, Explosion, and Shock Waves, 50, 144–149. https://doi.org/10.1134/S001050821402004X
Chang, X., Chen, L., Yu, G., & Qian, D. (2001). Development of the facility for model scramjet testing. In 10th AIAA/NAL-NASDA-ISAS International Space Planes and Hypersonic Systems and Technologies Conference (Paper 1857). https://doi.org/10.2514/6.2001-1857
Chen, H., Shi, Z., Wu, Y., Li, Y., & Wang, D. (2023). Investigation of the injection pressure impact on non-monotonic two-stage ignition delay of diesel engines under cold-start. Applied Thermal Engineering, 235, 121408. https://doi.org/10.1016/j.applthermaleng.2023.121408
Chu, P., Marksberry, C., & Saari, D. (2005). High temperature storage heater technology for hypersonic wind tunnels and propulsion test facilities. In AIAA/CIRA 13th International Space Planes and Hypersonics Systems and Technologies Conference (Paper 3442). https://doi.org/10.2514/6.2005-3442
Dai, J., & Yu, H. (2020). Numerical and experimental investigations of geometrical parameters on GH2/GO2 injector. Aerospace Science and Technology, 106, 106187. https://doi.org/10.1016/j.ast.2020.106187
Das, N., Pandey, K. M., & Sharma, K. K. (2021). A brief review on the recent advancement in the field of jet engine-scramjet engine. Materials Today: Proceedings, 45, 6857–6863. https://doi.org/10.1016/j.matpr.2020.12.1035
Debnath, P. and Pandey, K. M. (2017). Numerical Investigation of Detonation Combustion Wave in Pulse Detonation Combustor with Ejector. Journal of Applied Fluid Mechanics, 10(2), 725-733.  https://doi.org/10.1177/175682771665334
Debnath, P., & Pandey, K. M. (2025). Exergetic and thermal performance analysis of liquid and gaseous fuel–air mixture in PDC using computational fluid dynamics. Arabian Journal for Science and Engineering, 50(12), 8887-8902. https://doi.org/10.1007/s13369-024-09319-5
Hardi, J. S. (2012). Experimental investigation of high frequency combustion instability in cryogenic oxygen-hydrogen rocket engines (Ph.D. dissertation). University of Adelaide. https://doi.org/10.5962/p.361690
Hardi, J., Gröning, S., Webster, S., Beinke, S., Suslov, D., & Oschwald, M. (2016). Review of experimental test cases for modelling high frequency combustion instability. In 52nd AIAA/SAE/ASEE Joint Propulsion Conference (Paper 4893).  https://doi.org/10.2514/6.2016-4893
Harvazinski, M. E. (2012). Modeling self-excited combustion instabilities using a combination of two- and three-dimensional simulations (Ph.D. dissertation). Purdue University. Retrieved from https://www.proquest.com/docview/1238240720
Hashimoto, T. (1997). Combustion stability of a vitiated-air heater using coaxial injectors. Energy Conversion and Management, 38(10–13), 1083–1092. https://doi.org/10.1016/S0196-8904(96)00138-0
Holden, M. (1993). Recent advances in hypersonic test facilities and experimental research. In 5th International Aerospace Planes and Hypersonics Technologies Conference (Paper 5005). https://doi.org/10.2514/6.1993-5005
Indiana, C., Boust, B., Bellenoue, M., & Azuma, N. (2019). Effect of injector design on the combustion of ethanol and hydrogen-peroxide sprays. Journal of Propulsion and Power, 35(3), 652–661. https://doi.org/10.2514/1.B37286
Kaario, O. T., Karimkashi, S., Bhattacharya, A., Vuorinen, V., Larmi, M., & Bai, X. S. (2024). A comparative study on methanol and n-dodecane spray flames using Large-Eddy Simulation. Combustion and Flame, 260, 113277. https://doi.org/10.1016/j.combustflame.2023.113277
Kawashima, H., Kobayashi, K., Tomita, T., & Kaneko, T. (2010). A combustion instability phenomenon on a LOX/Methane subscale combustor. In 46th AIAA/ASME/SAE/ASEE Joint Propulsion Conference & Exhibit (Paper 7082). https://doi.org/10.2514/6.2010-7082
Kim, D., & Koo, J. (2015). Ignition of nitrous oxide and ethanol spray in a subscale thruster. Journal of Visualization, 18, 645–653. https://doi.org/10.1007/s12650-014-0270-x
Lee, J. H., Lee, E. S., Han, H. S., Kim, M. S., & Choi, J. Y. (2023). A study on a vitiated air heater for a direct-connect scramjet combustor and preliminary test on the scramjet combustor ignition. Aerospace, 10(5), 415. https://doi.org/10.3390/aerospace10050415
Liu, C., Liu, F., Yang, J., Mu, Y., & Xu, G. (2015). Investigations of the effects of spray characteristics on the flame pattern and combustion stability of a swirl-cup combustor. Fuel, 139, 529–536. https://doi.org/10.1016/j.fuel.2014.08.072
Mayer, W. O., Ivancic, B., Schik, A., & Hornung, U. (2001). Propellant atomization and ignition phenomena in liquid oxygen/gaseous hydrogen rocket combustors. Journal of Propulsion and Power, 17(4), 794–799. https://doi.org/10.2514/2.5835
Parthasarathy, T. A., Petry, M. D., Jefferson, G., Cinibulk, M. K., Mathur, T., & Gruber, M. R. (2011). Development of a test to evaluate aerothermal response of materials to hypersonic flow using a scramjet wind tunnel. International Journal of Applied Ceramic Technology, 8(4), 832–847. https://doi.org/10.1111/j.1744-7402.2010.02515.x
Rahmanian, B., Safaei, M. R., Kazi, S. N., Ahmadi, G., Oztop, H. F., & Vafai, K. (2014). Investigation of pollutant reduction by simulation of turbulent non-premixed pulverized coal combustion. Applied thermal engineering, 73(1), 1222-1235. https://doi.org/10.1016/j.applthermaleng.2014.09.016
Ren, Z., Wang, B., Xiang, G., Zhao, D., & Zheng, L. (2019). Supersonic spray combustion subject to scramjets: Progress and challenges. Progress in Aerospace Sciences, 105, 40–59. https://doi.org/10.1016/j.paerosci.2018.12.002
Sam, L., Idithsaj, P. T., Nair, P. P., Suryan, A., & Narayanan, V. (2023). Prospects for scramjet engines in reusable launch applications: A review. International Journal of Hydrogen Energy, 48(92), 36094–36111. https://doi.org/10.1016/j.ijhydene.2023.05.341
Samineni, N. B., Prabu, T., Yadav, D. R., & Rao, G. A. P. (2018). A mathematical framework for design and optimization of regenerative storage heater. Applied Thermal Engineering, 135, 521–529. https://doi.org/10.1016/j.applthermaleng.2018.02.041
Shen, C., & Yuan, L. (2019). Study on ignition process of air/liquid oxygen/ethanol tripropellant coaxial jets in a subscale air heater. Acta Astronautica, 162, 41–49. https://doi.org/10.1016/j.actaastro.2019.05.038
Smith, R., Xia, G., Anderson, W., & Merkle, C. (2010). Extraction of combustion instability mechanisms from detailed computational simulations. In 48th AIAA Aerospace Sciences Meeting (Paper 1152). https://doi.org/10.2514/6.2010-1152
Staschus, C., & Frederick, R. A. (2016). An overview of combustion instabilities and rocket engine injector design. In 52nd AIAA/SAE/ASEE Joint Propulsion Conference (Paper 4724).  https://doi.org/10.2514/6.2016-4724
Sung, B. K., & Choi, J. Y. (2021). Design of a Mach 2 shape transition nozzle for lab-scale direct-connect supersonic combustor. Aerospace Science and Technology, 117, 106906. https://doi.org/10.1016/j.ast.2021.106906
Tsohas, J. (2009). Hydrodynamics of shear coaxial liquid rocket injectors (Ph.D. dissertation). Purdue University. https://www.proquest.com/docview/304989425
Yuan, L. (2018). Study on the maintenance mechanism of high-frequency combustion instability in air heaters. National University of Defense Technology. https://doi.org/10.27052/d.cnki.gzjgu.2018.000089
Zhang, J. Q., Li, Q. L., & Shen, C. B. (2018). Ignition characteristics and combustion performances of a LO2/GCH4 small thrust rocket engine. Journal of Central South University, 25(3), 646–652. https://doi.org/10.1007/s11771-018-3767-y
Zhu, S., Huang, Y., Li, L., Wei, X., & Liu, B. (2024). Research on laser induced plasma ignition of gas oxygen/methane. Acta Astronautica, 217, 208–220. https://doi.org/10.1016/j.actaastro.2024.01.015
Zhu, Z., Hou, J., Ma, C., & Wang, G. (2024). Experimental investigation on dynamics of spray atomization, ignition, and flame propagation in an annular combustor. Physics of Fluids, 36(6), 067145. https://doi.org/10.1063/5.0215437
Volume 19, Issue 1 - Serial Number 105
January 2026
Pages 3202-3220
  • Received: 06 June 2025
  • Revised: 19 August 2025
  • Accepted: 01 September 2025
  • Available online: 05 November 2025