High-fidelity velocity and concentration measurements of turbulent buoyant jets
Valentina Valori, Sunming Qin, Victor Petrov, Annalisa Manera

TL;DR
This paper presents high-fidelity experimental data on turbulent buoyant jets, including velocity and concentration fields, to improve turbulence models for buoyancy-driven flows in nuclear reactor safety and thermal hydraulics.
Contribution
It provides detailed, high-resolution measurements of turbulent buoyant jets in stratified and uniform environments, addressing limitations of previous optical measurement techniques.
Findings
Turbulent statistics and entrainment rates characterized for buoyant jets.
Comparison with non-buoyant jets highlights buoyancy effects.
Data supports development and validation of improved turbulence models.
Abstract
Accurate models of turbulent buoyant flows are essential for the design of nuclear reactors thermal hydraulics and passive safety systems. However, available models fail to fully capture the physics of turbulent mixing when buoyancy becomes predominant with respect to momentum. Therefore, high-fidelity experiments of well-controlled fundamental flows are needed to develop and validate more accurate models. We analyze experiments of positive and negative turbulent buoyant jets, both in uniform and stratified environments, with the aim of understanding the thermal hydraulics of turbulent mixing with variable density and providing high-fidelity data for the development and validation of turbulence models. Non-intrusive, simultaneous Particle Image Velocimetry and Laser Induced Fluorescence measurements were carried out to acquire instantaneous velocity and concentration fields on a…
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Taxonomy
TopicsAerodynamics and Acoustics in Jet Flows · Particle Dynamics in Fluid Flows · Fluid Dynamics and Turbulent Flows
