A model of high-intensity film boiling of subcooled liquid is proposed for jet impingement cooling. This model allows us to explain the high heat flux densities on the surface recorded in experiments without taking into account direct contact with the liquid. The core assumptions of the model are based on the formation of a stationary vapor film that forms on large asperities on the heater surface. Vapor moving at a high speed leads to significant shear stress at the interfacial boundary. It has been shown that this shear stress can generate powerful small-scale vortices (several m/s intensity) in the liquid above the film, which enhances heat transfer into the liquid and ensures sufficient heat dissipation from the surface. A three-dimensional flow simulation was performed using the commercial computational fluid dynamics software FlowVision to validate the model. The simulation confirmed the possibility of achieving the required heat transfer rates under these conditions, confirming the validity of the proposed model.
Duplyankin et al. (Fri,) studied this question.
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