AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
PDF (6.1 MB)
Collect
Submit Manuscript AI Chat Paper
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Research Article | Publishing Language: Chinese | Open Access

Numerical study on mixing and combustion characteristics in an inter-stage turbine combustor

Zhao Du1,2Yan Hao1Cheng Gong1( )Yu Zhou1Ping Jiang2
Aerospace Technology Research Institute , China Aerodynamics Research and Development Center, Mianyang 621000, China
School of Power and Energy, Nanchang Hangkong University, Nanchang 330063, China
Show Author Information

Abstract

This study conducts a numerical investigation on fuel/air mixing and combustion characteristics in an inter-turbine combustor, with a focus on elucidating the influence mechanisms of fuel injection schemes on mixing dynamics and combustion control strategies. By introducing macro- and micro-mixing concepts, a numerical model is established using ANSYS Fluent software, where the FGM (Flamelet Generated Manifold) method is employed to simulate turbulent combustion processes. Transport equation analysis is implemented to characterize fuel residence time properties in the cavity recirculation zone. Four distinct fuel injection configurations (front-wall, top-wall, rear-wall, and coupled injection schemes) are systematically designed and compared regarding their effects on mixing efficiency, combustion efficiency, and flame stability. Results demonstrate that injection schemes significantly alter fuel residence time in the cavity recirculation zone, with rear-wall injection (Scheme 3) achieving the longest residence time (exceeding 4 ms), which enhances flame stabilization. The mixing process is predominantly governed by convection-dominated macro-mixing, while micro-mixing shows significant dependence on turbulent fluctuations. At a position 20 mm downstream of the afterburning zone outlet, the comprehensive mixing efficiency of Scheme 3 reached 98.5%, while that of other schemes at the same location was only 92%–94%. In terms of combustion performance, the overall combustion efficiency of Scheme 3 at the combustor outlet reached 95.1%, which is higher than that of Scheme 1 (93.2%), Scheme 2 (92.8%), and Scheme 4 (94.0%), further validating the advantage of its rear-wall injection in overall combustion performance. The combustion regime primarily follows diffusion flame characteristics, but strong turbulence induces local extinction and re-ignition phenomena, exhibiting partially premixed features. The cavity recirculation zone maintains flame stability through sustained forced ignition of combustible gases by high-temperature products, while the primary fuel oxidation and heat release processes occur in the mainstream channel outside the cavity. These findings provide theoretical foundations for optimizing fuel injection strategies and combustion organization design in inter-stage combustors.

CLC number: V231.2 Document code: A Article ID: 0258-1825(2026)03-0044-13

References

【1】
【1】
 
 
Acta Aerodynamica Sinica
Pages 44-56

{{item.num}}

Comments on this article

Go to comment

< Back to all reports

Review Status: {{reviewData.commendedNum}} Commended , {{reviewData.revisionRequiredNum}} Revision Required , {{reviewData.notCommendedNum}} Not Commended Under Peer Review

Review Comment

Close
Close
Cite this article:
Du Z, Hao Y, Gong C, et al. Numerical study on mixing and combustion characteristics in an inter-stage turbine combustor. Acta Aerodynamica Sinica, 2026, 44(3): 44-56. https://doi.org/10.7638/kqdlxxb-2025.0004

269

Views

0

Downloads

0

Crossref

0

Scopus

0

CSCD

Received: 02 January 2025
Revised: 12 April 2025
Published: 26 August 2025
© The journal of Acta Aerodynamica Sinica.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).