Related Experiment Video
Updated: Mar 14, 2026

Simulating Impacts of Ice Storms on Forest Ecosystems
Published on: June 30, 2020
Atmospheric Spray Freeze-Drying: Numerical Modeling and Comparison With Experimental Measurements
Israel Borges Sebastião1, Thomas D Robinson2, Alina Alexeenko1
1School of Aeronautics and Astronautics, Purdue University, West Lafayette, Indiana 47907.
Abstract:
Atmospheric spray freeze-drying (ASFD) represents a novel approach to dry thermosensitive solutions via sublimation. Tests conducted with a second-generation ASFD equipment, developed for pharmaceutical applications, have focused initially on producing a light, fine, high-grade powder consistently and reliably. To better understand the heat and mass transfer physics and drying dynamics taking place within the ASFD chamber, 3 analytical models describing the key processes are developed and validated. First, by coupling the dynamics and heat transfer of single droplets sprayed into the chamber, the velocity, temperature, and phase change evolutions of these droplets are estimated for actual operational conditions. This model reveals that, under typical operational conditions, the sprayed droplets require less than 100 ms to freeze. Second, because understanding the heat transfer throughout the entire freeze-drying process is so important, a theoretical model is proposed to predict the time evolution of the chamber gas temperature. Finally, a drying model, calibrated with hygrometer measurements, is used to estimate the total time required to achieve a predefined final moisture content. Results from these models are compared with experimental data.
Related Concept Videos
Sublimation
Atomic Absorption Spectroscopy: Atomization Methods
Freezing Point Depression and Boiling Point Elevation
Freezing Point Depression and Boiling Point Elevation
The boiling point of a liquid is the temperature at which its vapor pressure is equal to ambient atmospheric pressure. Since the vapor pressure of a solution is lowered due to the presence of nonvolatile solutes, it stands to reason that the solution’s boiling point will subsequently be increased. Vapor pressure increases with temperature, and so a solution will require a higher temperature than will pure solvent to achieve any given vapor pressure, including one...

