Aeroelastic Stability Analysis of Turbopumps Axial Balancing System

il y a 7 heures


Châtillon, Île-de-France ONERA Temps plein
Aeroelastic Stability Analysis of Turbopumps Axial Balancing System

Réf ABG-135353

Sujet de Thèse

30/01/2026

Contrat doctoral

ONERA

Lieu de travail

Châtillon - Ile-de-France - France

Intitulé du sujet

Aeroelastic Stability Analysis of Turbopumps Axial Balancing System

Champs scientifiques

  • Sciences de l'ingénieur
  • Mathématiques
  • Numérique

Mots clés

Turbopump, aeroelasticity, stability

Description du sujet

In aerospace turbo-pumps, turbines rotate at speeds up to 100,000 rpm to deliver propellant to the

rocket engine at high flow rates and optimized pressures. At such extreme conditions, mechanical

supports like ball bearings alone cannot maintain the rotor's axial position. Instead, part of the

propellant is diverted into a cavity behind the rotor, known as a hydrostatic bearing or Axial

Balancing System (ABS) to balance forces.

This cavity, bounded by inner and outer valves at the rotor's center

and periphery, stabilizes the rotor through pressure equilibrium. However, under certain conditions,

the compressible fluid's response to rotor motion can induce vibrations and instabilities. These

fluid-structure interactions are critical as they may degrade performance or even cause failure.

Understanding them is therefore essential to improving the reliability and performance of spatial

turbo-pumps.

To investigate the fundamental mechanisms of these instabilities, a simplified ABS test bench was set up at IRPHE [1]. In this setup, the motion of a disc changes the aperture of an inner valve, directly influencing the cavity flow and pressure fluctuations. Adjustment rings (A.R. in the sketch) allow precise tuning of the geometry, making it possible to couple acoustic modes in the cavity with structural modes of the disc. This can generate sustained oscillations, thereby reproducing instability mechanisms observed in real turbo-pumps. This experimental platform provides an ideal reference for validating numerical predictions.

Although fluid-structure coupling in such systems is conceptually understood, there is currently no accurate method to predict the onset of instability in ABS configurations. Existing studies [2,3,4] using Arbitrary Lagrangian Eulerian (ALE) frameworks have successfully captured oscillatory behavior and destabilization phenomena in other fluid–structure systems, but a systematic application to ABS geometries and conditions has not yet been undertaken.

This PhD project aims to address this gap by:

1. Developing a numerical framework based on linear stability analysis within the ALE approach to capture fluid-structure instabilities in a compressible, turbulent flow.

2. Providing predictive insights and confirm destabilization mechanisms.

3. Investigating the sensitivity of instability onset to key input parameters such as inflow velocity profiles, cavity dimensions, or disc rigidity.

4. Investigate the harmonic response to periodic perturbations.

The numerical predictions will be systematically compared with available experimental data from IRPHE to assess accuracy and refine the model, ultimately leading to a validated numerical tool capable of predicting ABS instabilities .

[1] Brunier-Coulin, Florian, Vandenberghe, Nicolas, Verhille, Gautier, and Le Gal, Patrice. Fluid–structure instabilities in the axial balancing system of a turbo-pump. Journal of Sound and Vibration, ,

[2] Pfister, Jean-Lou, Marquet, Olivier, and Carini, Marco. Linear stability analysis of strongly coupled fluid–structure problems with the Arbitrary-Lagrangian–Eulerian method. Computer Methods in Applied Mechanics and Engineering, ,

[3] Pfister, Jean-Lou, Fabbiane, Nicolo, and Olivier, Marquet. Global stability and resolvent analyses of laminar boundary-layer flow interacting with viscoelastic patches. Journal of Fluid Mechanics,

[4] Houtman, Jelle and Timme, Sebastian. Global stability analysis of elastic aircraft in edge-of-the-envelope flow. Journal of Fluid Mechanics,

Subject with figures is available at

Prise de fonction :

01/09/2026

Nature du financement

Contrat doctoral

Précisions sur le financement
Présentation établissement et labo d'accueil

ONERA

L'ONERA (Office national d'études et de recherches aérospatiales) a pour mission

  • De développer et d'orienter les recherches dans le domaine aérospatial
  • De concevoir, de réaliser, de mettre en œuvre les moyens nécessaires à l'exécution de ces recherches
  • D'assurer, en liaison avec les services ou organismes chargés de la recherche scientifique et technique, la diffusion sur le plan national et international des résultats de ces recherches, d'en favoriser la valorisation par l'industrie aérospatiale et de faciliter éventuellement leur application en dehors du domaine aérospatial

Le département Aérodynamique, aéroélasticité, acoustique, DAAA, prépare des réponses technologiques au profit de l'industrie pour améliorer les performances aérodynamique, aéroélastique et acoustique des aéronefs, et répondre aux enjeux de compétitivité, aux besoins sociétaux, environnementaux et de défense.

Site web :
Profil du candidat

Master degree required, in Fluid Mechanics, Applied Mathematics or relevant field of studies.

Date limite de candidature

06/03/2026


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