Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow

Hypersonic flows generate intense unsteady pressure and thermal loads, posing significant challenges for high-speed aerospace applications such as re-entry vehicles and hypersonic cruise systems. These extreme conditions necessitate effective flow control strategies to enhance aerodynamic performanc...

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Main Authors: Abhinav Aggarwal, Rajesh Ranjan
Format: Article
Language:English
Published: Frontiers Media S.A. 2025-07-01
Series:Frontiers in Mechanical Engineering
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Online Access:https://www.frontiersin.org/articles/10.3389/fmech.2025.1550464/full
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author Abhinav Aggarwal
Rajesh Ranjan
author_facet Abhinav Aggarwal
Rajesh Ranjan
author_sort Abhinav Aggarwal
collection DOAJ
description Hypersonic flows generate intense unsteady pressure and thermal loads, posing significant challenges for high-speed aerospace applications such as re-entry vehicles and hypersonic cruise systems. These extreme conditions necessitate effective flow control strategies to enhance aerodynamic performance and structural integrity. This study examines the influence of surface curvature on these loads in a double-wedge geometry, aiming to optimize flow control approaches. Unsteady Mach 7 flow simulations are conducted using a high-fidelity, time-accurate solver with third-order MUSCL as well as seventh-order WENO schemes, ensuring precise resolution of shock interactions and flow structures. A standard double-ramp configuration is analyzed alongside two smooth ramp configurations, where the faceted intersection of the front and aft wedges is replaced with different curvature levels. The computational results are validated against experimental heat-flux data to confirm the accuracy of the numerical approach. The findings reveal that the high-curvature geometry (curvature, κ=1.01) introduces only marginal variations in mean pressure and thermal loads. However, transient flow characteristics are notably altered. In contrast, the low-curvature configuration (κ=0.49) significantly reduces both pressure and thermal loads by 43% and 58%, respectively, while also minimizing the separation region. The reduced separation leads to a smoother and more stable flowfield, contributing to improved aerodynamic efficiency. Long-term analysis further indicates that the low-curvature configuration accelerates the decay of large-amplitude unsteady signals, suggesting enhanced flow stability over extended durations. These results underscore the potential benefits of surface curvature in mitigating aerodynamic heating and structural stresses in hypersonic flows, and therefore provide insights for the development of more efficient hypersonic vehicles with improved thermal management, enhanced vehicle survivability, and better overall performance in extreme flight conditions.
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spelling doaj-art-23b774391f5b4f70914bdd963e6759d22025-08-20T03:50:02ZengFrontiers Media S.A.Frontiers in Mechanical Engineering2297-30792025-07-011110.3389/fmech.2025.15504641550464Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flowAbhinav AggarwalRajesh RanjanHypersonic flows generate intense unsteady pressure and thermal loads, posing significant challenges for high-speed aerospace applications such as re-entry vehicles and hypersonic cruise systems. These extreme conditions necessitate effective flow control strategies to enhance aerodynamic performance and structural integrity. This study examines the influence of surface curvature on these loads in a double-wedge geometry, aiming to optimize flow control approaches. Unsteady Mach 7 flow simulations are conducted using a high-fidelity, time-accurate solver with third-order MUSCL as well as seventh-order WENO schemes, ensuring precise resolution of shock interactions and flow structures. A standard double-ramp configuration is analyzed alongside two smooth ramp configurations, where the faceted intersection of the front and aft wedges is replaced with different curvature levels. The computational results are validated against experimental heat-flux data to confirm the accuracy of the numerical approach. The findings reveal that the high-curvature geometry (curvature, κ=1.01) introduces only marginal variations in mean pressure and thermal loads. However, transient flow characteristics are notably altered. In contrast, the low-curvature configuration (κ=0.49) significantly reduces both pressure and thermal loads by 43% and 58%, respectively, while also minimizing the separation region. The reduced separation leads to a smoother and more stable flowfield, contributing to improved aerodynamic efficiency. Long-term analysis further indicates that the low-curvature configuration accelerates the decay of large-amplitude unsteady signals, suggesting enhanced flow stability over extended durations. These results underscore the potential benefits of surface curvature in mitigating aerodynamic heating and structural stresses in hypersonic flows, and therefore provide insights for the development of more efficient hypersonic vehicles with improved thermal management, enhanced vehicle survivability, and better overall performance in extreme flight conditions.https://www.frontiersin.org/articles/10.3389/fmech.2025.1550464/fullshocksheat-fluxseparationEdney interactionsflow controlhypersonic flow
spellingShingle Abhinav Aggarwal
Rajesh Ranjan
Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow
Frontiers in Mechanical Engineering
shocks
heat-flux
separation
Edney interactions
flow control
hypersonic flow
title Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow
title_full Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow
title_fullStr Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow
title_full_unstemmed Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow
title_short Role of curvature in controlling SWBLI behavior in a hypersonic double ramp flow
title_sort role of curvature in controlling swbli behavior in a hypersonic double ramp flow
topic shocks
heat-flux
separation
Edney interactions
flow control
hypersonic flow
url https://www.frontiersin.org/articles/10.3389/fmech.2025.1550464/full
work_keys_str_mv AT abhinavaggarwal roleofcurvatureincontrollingswblibehaviorinahypersonicdoublerampflow
AT rajeshranjan roleofcurvatureincontrollingswblibehaviorinahypersonicdoublerampflow