Published December 9, 2024 | Version Published
Journal Article

Computational Fluid Dynamics Simulations of a Novel Dual-Throat Bent Nozzle

  • 1. ROR icon Korea Advanced Institute of Science and Technology
  • 2. ROR icon California Institute of Technology

Abstract

Thrust vectoring is a key technology that enables vertical takeoff and landing by controlling the direction of the thrust produced by a jet engine. A new hybrid thrust vectoring solution, the dual-throat bent nozzle (DTBN), has been introduced, and its performance is evaluated using computational fluid dynamics simulations. Both a 2D axisymmetric model and a 3D model with symmetry plane are developed with the k-ω SST turbulence model. The numerical results are validated against experimental data for a dual-throat nozzle by comparing the system resultant thrust ratio Cfg,sys, primary nozzle discharge coefficient Cd,prim, and upper wall pressure Pu. The DTBN design incorporates a transition region in the middle section, and its thrust vectoring angle is analyzed by varying the bent angle. Compared to the conventional three-bearing swivel nozzle-based duct nozzle, the DTBN demonstrates significant improvement in thrust vectoring angle and is expected to further advance hybrid thrust vectoring for vertical takeoff and landing applications.

Copyright and License

© 2024, The Author(s), under exclusive licence to The Korean Society for Aeronautical & Space Sciences

Acknowledgement

This work was supported by Korea Research Institute for defense Technology planning and advancement (KRIT) grant funded by the Korea government (DAPA(Defense Acquisition Program Administration)) (No. 20-105-E00-005 (KRIT-CT-23-010), VTOL Technology Research Center of Defense Applications, 2023).

Data Availability

The raw/processed data required to reproduce these findings cannot be shared at this time as the data also form part of an ongoing study.

Additional details

Identifiers

ISSN
2093-2480

Funding

Defense Acquisition Program Administration
No. 20-105-E00-005 (KRIT-CT-23-010)

Dates

Accepted
2024-11-09
Accepted
Available
2024-12-09
Published online

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Publication Status
Published