Analysis Of Turbulence-Induced Crossflow And Coolant Mixing Under Various Flow Interventions In Rod Bundle Geometries
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Annals of Nuclear Energy
Abstract
In recent times efforts have been made to understand turbulence-induced crossflow and coolant mixing in fuel
rod bundles. This phenomenon in nuclear reactors is essential for optimizing heat removal. This study in
vestigates the contribution of fuel bundles with split vane, swirl vane, spacer grid and no spacer grid to the
development of secondary flows, turbulence, and crossflow. High-fidelity simulations were employed to quantify
axial and lateral flow redistribution, turbulent kinetic energy (TKE) evolution, dissipation behaviour, vorticity
and velocity distribution patterns across bundle subchannels. Results show that vane-type spacers substantially
intensify crossflow by generating strong streamwise vortices that persist downstream, with swirl vanes producing
the most sustained mixing effects. Turbulence metrics reveal elevated TKE, localized production peaks, and
enhanced dissipation in all vane-equipped configurations, consistent with classical energy cascade behaviour.
Collectively, the findings demonstrate that fuel rod bundles equipped with flow mixing interventions induce
turbulence which significantly improves crossflow and coolant mixing, providing a foundation for improved
crossflow correlation development and supporting the design of next-generation high-performance rod bundle
assemblies.
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Research Article
Citation
Amoah, P., Agbodemegbe, V. Y., Shitsi, E., & Ampomah-Amoako, E. (2026). Analysis of turbulence-induced crossflow and coolant mixing under various flow interventions in rod bundle geometries. Annals of Nuclear Energy, 236, 112420.
